WO2006046155A2 - Loadable polyphosphazene-comprising particles for therapeutic and/or diagnostic applications and methods of preparing and using the same - Google Patents

Loadable polyphosphazene-comprising particles for therapeutic and/or diagnostic applications and methods of preparing and using the same Download PDF

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Publication number
WO2006046155A2
WO2006046155A2 PCT/IB2005/004007 IB2005004007W WO2006046155A2 WO 2006046155 A2 WO2006046155 A2 WO 2006046155A2 IB 2005004007 W IB2005004007 W IB 2005004007W WO 2006046155 A2 WO2006046155 A2 WO 2006046155A2
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WIPO (PCT)
Prior art keywords
particle
particles
core
coating
phosphazene
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PCT/IB2005/004007
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French (fr)
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WO2006046155A3 (en
Inventor
Philipp Harder
Olaf Fritz
Ulf Fritz
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Polyzenix Gmbh
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Priority to AT05825096T priority Critical patent/ATE503465T1/en
Priority to BRPI0518383-9A priority patent/BRPI0518383A2/en
Priority to CA2584122A priority patent/CA2584122C/en
Priority to JP2007537420A priority patent/JP4885866B2/en
Application filed by Polyzenix Gmbh filed Critical Polyzenix Gmbh
Priority to DE602005027229T priority patent/DE602005027229D1/en
Priority to EP05825096A priority patent/EP1804773B1/en
Priority to AU2005298344A priority patent/AU2005298344B2/en
Priority to CN2005800366229A priority patent/CN101090710B/en
Priority to KR1020077011286A priority patent/KR101153785B1/en
Priority to TW094137269A priority patent/TW200626178A/en
Priority to MYPI20055024A priority patent/MY147841A/en
Publication of WO2006046155A2 publication Critical patent/WO2006046155A2/en
Publication of WO2006046155A3 publication Critical patent/WO2006046155A3/en
Priority to IL182650A priority patent/IL182650A/en
Priority to HK08105450.4A priority patent/HK1116058A1/en

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • A61K9/5005Wall or coating material
    • A61K9/5021Organic macromolecular compounds
    • A61K9/5031Organic macromolecular compounds obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds, e.g. polyethylene glycol, poly(lactide-co-glycolide)
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/14Particulate form, e.g. powders, Processes for size reducing of pure drugs or the resulting products, Pure drug nanoparticles
    • A61K9/16Agglomerates; Granulates; Microbeadlets ; Microspheres; Pellets; Solid products obtained by spray drying, spray freeze drying, spray congealing,(multiple) emulsion solvent evaporation or extraction
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K49/00Preparations for testing in vivo
    • A61K49/04X-ray contrast preparations
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K49/00Preparations for testing in vivo
    • A61K49/04X-ray contrast preparations
    • A61K49/0404X-ray contrast preparations containing barium sulfate
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K49/00Preparations for testing in vivo
    • A61K49/04X-ray contrast preparations
    • A61K49/0409Physical forms of mixtures of two different X-ray contrast-enhancing agents, containing at least one X-ray contrast-enhancing agent which is not a halogenated organic compound
    • A61K49/0414Particles, beads, capsules or spheres
    • A61K49/0419Microparticles, microbeads, microcapsules, microspheres, i.e. having a size or diameter higher or equal to 1 micrometer
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K49/00Preparations for testing in vivo
    • A61K49/22Echographic preparations; Ultrasound imaging preparations ; Optoacoustic imaging preparations
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/14Particulate form, e.g. powders, Processes for size reducing of pure drugs or the resulting products, Pure drug nanoparticles
    • A61K9/16Agglomerates; Granulates; Microbeadlets ; Microspheres; Pellets; Solid products obtained by spray drying, spray freeze drying, spray congealing,(multiple) emulsion solvent evaporation or extraction
    • A61K9/1605Excipients; Inactive ingredients
    • A61K9/1629Organic macromolecular compounds
    • A61K9/1641Organic macromolecular compounds obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds, e.g. polyethylene glycol, poloxamers
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/14Particulate form, e.g. powders, Processes for size reducing of pure drugs or the resulting products, Pure drug nanoparticles
    • A61K9/16Agglomerates; Granulates; Microbeadlets ; Microspheres; Pellets; Solid products obtained by spray drying, spray freeze drying, spray congealing,(multiple) emulsion solvent evaporation or extraction
    • A61K9/1682Processes
    • A61K9/1694Processes resulting in granules or microspheres of the matrix type containing more than 5% of excipient
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • A61K9/5073Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals having two or more different coatings optionally including drug-containing subcoatings
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • A61K9/5073Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals having two or more different coatings optionally including drug-containing subcoatings
    • A61K9/5078Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals having two or more different coatings optionally including drug-containing subcoatings with drug-free core
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • A61K9/5089Processes
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P1/00Drugs for disorders of the alimentary tract or the digestive system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P15/00Drugs for genital or sexual disorders; Contraceptives
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P7/00Drugs for disorders of the blood or the extracellular fluid

Definitions

  • the particles settle out or tend to "float” in the solution such that they are not uniformly suspended for even delivery. Furthermore, particles may tend to aggregate or agglomerate within the delivery solution and/or adhere to some part of the delivery device, making it necessary to compensate for these adhesive/attractive forces.
  • suitable dispersing agents that may include surfactants directed at breaking down attractive particle interaction.
  • the following materials may be used: cationic, anionic or nonionic surfactants such as TweenTM 20, TweenTM 40, TweenTM 80, polyethylene glycols, sodium dodecyl sulfate, various naturally occurring proteins such as serum albumin, or any other macromolecular surfactants in the delivery formulation.
  • thickening agents can be used help prevent particles from settling by sedimentation and to increase solution viscosity, for example, polyvinyl alcohols, polyvinyl pyrrolidones, sugars or dextrins. Density additives may also be used to achieve buoyancy.
  • barium sulfate in particle form is known as an additive for bone cement, for silicones for rendering items visible during X-ray examination and for providing radiopacity to polymeric acrylate particles. See Jayakrishnan et al., Bull. Mat. ScL Vol. 12, No. 1, pp. 17-25 (1989).
  • the barium sulfate also is known for improving fluidization, and is often used as an inorganic filler to impart anti-stick behavior to moist, aggregated particles.
  • Other prior art attempts to increase visualization of microparticles include use of gold, for example, Embosphere GoldTM provides a magenta color to acrylate microparticles using small amounts of gold.
  • the invention includes a particle for use in a therapeutic and/or diagnostic procedure.
  • the particle comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
  • a method of minimizing blood flow to a tissue in a mammal comprising occluding at least a portion of a blood vessel of the mammal with at least one particle, wherein the particle comprises a poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
  • a method of delivering an active agent to a localized area within a body of a mammal comprising contacting the localized area with at least one of a particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and an active agent, such that an effective amount of the active agent is exposed to the localized area.
  • a sustained release formulation of an active agent for oral administration the formulation comprising a polymer capsule and an active agent, wherein the polymeric capsule comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
  • the invention further includes a method of tracing the passage of a particle through a blood vessel in a mammal, the method comprising injecting into the bloodstream of a mammal at least one tracer particle, the tracer particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and a contrast agent, and imaging the route of the particle.
  • a method of enhanced ultrasound imaging is described herein. The method comprises administering to an ultrasound subject at least one hollow microcapsule comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof to an area of the ultrasound subject, and imaging the area of the subject using ultrasound.
  • the invention also includes a method of delivering an active agent to a localized area within the body of a mammal comprising contacting the localized area with at least one of a particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and an active agent, such that an effective amount of the active agent is exposed to the localized area, wherein the particle comprises an agent to increase density.
  • a method for minimizing agglomeration and/or aggregation of particles formed from acrylic-based polymers is described in which the method comprises providing barium sulfate to the core and/or surface of the particles.
  • FIG. 3A and Fig. 3B show unloaded polyphosphazene particles (microspheres) as prepared by one embodiment of the cryoextraction method as described herein.
  • Figure 3 A shows a 4x optical microscope view and Fig. 3B shows a 10Ox scanning electron microscope view;
  • FIG. 4 shows a particle (microsphere) formed according to one embodiment of the invention loaded with bovine insulin (20% (wt/wt)) at 10Ox magnification SEM;
  • Fig. 5 A and Fig. 5B show the surface morphology of unloaded polyphosphazene microspheres.
  • Fig. 5 A is an image obtained using an atomic force microscope and
  • Fig. 5B is a scanning electron micrograph showing the surface of an unloaded polyphosphazene microsphere at 500Ox magnification;
  • FIGs. 6 and 7 show a cryoextraction setup for use in an embodiment of the invention wherein Fig. 6 is a cryoextraction vessel and Fig. 7 is a syringe pump;
  • Fig. 8 is a cross-sectional view of an apparatus for use in microcatheter testing of microparticles in Example 14 herein;
  • Figs 9A and 9B show an SEM at 1.0KX magnification of the surface of the Sample C microparticles just after the hydration/dehydration cycle and at a 50.00KX magnification of the film thickness of microparticles formed in accordance with Sample C of Example 12 used in the evaluation of Example 14, respectively;
  • Figs. 1OA, 1OB, 1OC and 1OD are SEMs of microparticles made in accordance with Sample C of Example 12 used in the evaluation of Example 14 after passing through a catheter showing surface features (Figs. 1OA, 1OB and 10C) at 1.0KX magnification and at 5.0KX magnification (Fig. 10D); and [0028] Figs. 1 IA, 1 IB, 11C and 1 ID are SEMs of microparticles formed in accordance with Sample C of Example 12 after thermal stress testing in Example 14. Fig. 1 IA is a 50X magnification of a minor amount of delamination in the strong white contrast portion. Fig. 1 IB is a 200X magnification of the microparticles of Fig.
  • Figs. 11C and 1 ID are, respectively, 200X and l.OKX magnified SEMs of other Sample C microparticles showing only minor defects.
  • DETAILED DESCRIPTION OF THE INVENTION [0029] Described herein are particles that may be manufactured using poly[bis(trifluoroethoxy) phosphazene] and/or derivatives thereof, as well as methods of preparing such particles.
  • sustained release drug delivery formulations for oral administration including the particles for localized delivery of an active agent to the gastrointestinal system and/or systemic delivery of an active agent as well as a sustained release drug delivery formulation that can be injected subcutaneously or intravenously for localized delivery of an active agent.
  • All of the methods, compositions and formulations of the invention utilize at least one particle as described herein.
  • Particle and “particles” as used herein mean a substantially spherical or ellipsoid article(s), hollow or solid, that may have any diameter suitable for use in the specific methods and applications described below, including a microsphere(s) and a nanosphere(s), beads and other bodies of a similar nature known in the art.
  • the preferred particles of the invention according to one embodiment described herein are composed, in whole or in part, the specific polyphosphazene polymer known as poly[bis(trifluoroethoxy) phosphazene] or a derivative of poly[bis(trifluoroethoxy) phosphazene].
  • this specific polymer provides particles that are at least in part inorganic in that they include an inorganic polymer backbone and which are also biocompatible in that when introduced into a mammal (including humans and animals), they do not significantly induce a response of the specific or non-specific immune systems.
  • the scope of the invention also includes the use(s) of such particles as controlled drug delivery vehicles or tracer particles for the visualization of blood vessels and other organs.
  • the particles are useful in a variety of therapeutic and/or diagnostic procedures in part because they can be prepared in sizes large enough to occlude a blood vessel as well as small enough to easily pass through the smaller vessels, e.g., visualization or drug delivery purposes.
  • the particles facilitate avoidance or elimination of immunogenic reactions generally encountered when foreign bodies are introduced into a mammalian body, such as "implant rejection” or “allergic shock,” and other adverse reactions of the immune system.
  • the particles of the invention exhibit reduced biodegradation in vivo, thereby increasing the long-term stability of the particle in the biological environment.
  • the products released from the degradation include only non-toxic concentrations of phosphorous, ammonia, and trifluoroethanol, which, advantageously, is known to promote anti-inflammatory responses when in contact with mammalian tissue.
  • Each of the particles in the invention is formed in part of the polymer, poly[bis(2,2,2-trifluoroethoxy) phosphazene] or a derivative thereof (referred to further herein as either "poly[bis(trifluoroethoxy) phosphazene]" or "PTFEP").
  • the preferred poly[bis(trifluoroethoxy) phosphazene] polymer is made up of repeating monomers represented by the formula (I) shown below:
  • R to R are all trifluoroethoxy (OCH2CF3) groups and n may vary from at least about
  • n is about 4,000 to about 300,000, more preferably, n is about 4,000 to about 3,000 and most preferably n is about 13,000 to about 30,000.
  • derivatives it is meant polymers made up of monomers having the structure of formula (I) but where one or more of the R -R functional groups or backbone atom(s) is substituted by a different atom(s) or functional group(s), but where the biological inertness of the polymer is not substantially altered.
  • exemplary functional groups include ethoxy (OCH2CH3), 2,2,3,3,3-pentafluoropropyloxy (OCH2CF2CF3), 2,2,2,2',2',2'-
  • the molecular weight of the polymer used to prepare the particles of the invention has a molecular weight based on the above formula, and more preferably, a molecular weight of at least about 70,000 g/mol, more preferably at least about 1,000,000 g/mol, and still more preferably a molecular weight of at least about 3x10 6 g/mol to about 2OxIO 6 g/mol. Most preferred are polymers having molecular weights of at least about 10,000,000 g/mol.
  • the diameter of a particle formed according to the invention will necessarily vary depending on the end application in which the particle is to be used.
  • the diameter of such particles is preferably about 1 to about 5,000 ⁇ m, with a diameter of about 1 to about 1,000 ⁇ m being most preferred.
  • Other common sizes include diameters of about 200 to about 500 ⁇ m, about 1 to about 200 ⁇ m and greater than about 500 ⁇ m, however, it should be understood based on this disclosure that various combinations of particles sizes and various ranges within the broader range of from about 1 to about 5,000 ⁇ m are within the scope of this disclosure.
  • precisely calibrated particles may be prepared having exemplary ranges as follows:
  • the particles may also include other compounds which function to enhance, alter or otherwise modify the behavior of the polymer or particle either during its preparation or in its therapeutic and/or diagnostic use.
  • active agents such as peptides, proteins, hormones, carbohydrates, polysaccharides, nucleic acids, lipids, vitamins, steroids and organic or inorganic drugs may be incorporated into the particle.
  • Excipients such as dextran, other sugars, polyethylene glycol, glucose, and various salts, including, for example, chitosan glutamate, may be included in the particle.
  • polymers other than the poly[bis(trifluoroethoxy) phosphazene] and/or its derivative may be included with in the particle.
  • examples of polymers may include poly(lactic acid), poly(lactic-co-glycolic acid), poly(caprolactone), polycarbonates, polyamides, polyanhydrides, polyamino acids, polyorthoesters, polyacetals, polycyanoacrylates, and polyurethanes.
  • polymers include polyacrylates, ethylene-vinyl acetate co-polymers, acyl substituted cellulose acetates and derivatives thereof, degradable or non-degradable polyurethanes, polystyrenes, polyvinylchloride, polyvinyl fluoride, poly( vinyl imidazole), chlorosulphonated polyolefins, and polyethylene oxide.
  • the loaded or unloaded particle may be coated with an additional polymer layer or layers, including polymers such as those mentioned hereinabove.
  • PTFEP or its derivatives may be used to form such a coating on a particle formed of other suitable polymers or copolymers known or to be developed in the art that are used to form particles as described herein.
  • PTFEP is applied as a coating on a microparticle(s) formed of an acrylic-based polymer as set forth in further detail below.
  • Coatings are beneficial, for example, if the particle(s) are to be used in a sustained release, orally administered, drug delivery formulation (enteric coating) or if the particles are to be loaded with a potentially toxic contrast agent (non-biodegradable coating).
  • the microspheres may be prepared by any means known in the art that is suitable for the preparation of particles containing poly[bis(trifluoroethoxy) phosphazene]. In a procedure according to an embodiment herein a "polymer solution" is prepared by mixing one or more polymer solvent(s) and the PTFEP and/or a derivative thereof until the polymer is dissolved.
  • Suitable solvents for use in the preparation of the polymer solution include any in which the polymer PTFEP and/or its derivatives are soluble.
  • Exemplary solvents include, without limitation, ethyl-, propyl-, butyl-, pentyl-, octylacetate, acetone, methylethylketone, methylpropylketone, methylisobutylketone, tetrahydrofurane, cyclohexanone, dimethylacetamide, acetonitrile, dimethyl ether, hexafluorobenzene or combinations thereof.
  • the polymer solution contains the PTFEP and/or its derivative polymer in a concentration of about 1% by weight of polymer to 20% by weight of polymer, preferably about 5% to 10% by weight of polymer.
  • Other polymers as discussed above, may be present in the solution, or may be added to the vessel in the form of a second solution powder or other form, if one wishes to include such polymers in the final particle.
  • the polymer solution is next dispensed, preferably in the form of drops or an aerosol, into a vessel containing a non-solvent.
  • non-solvent it is meant any organic or inorganic solvents that do not substantially dissolve the PTFEP polymer and which have a melting point that is lower relative to the melting point of the solvent in which the polymer is dissolved (“polymer solvent”), so that the non-solvent thaws before the solvent thaws in the course of the incubation step.
  • this difference between the melting point of the non-solvent and the polymer solvent is about 10° C, more preferably about 15° C, and most preferably, greater than about 20° C. Under certain conditions it has been found that the structural integrity of the resultant particle may be enhanced if the difference of the melting points of the polymer solvent and of the non-solvent is greater than 15° C.
  • non-solvent point is merely slightly lower than that of the polymer solvent.
  • the non-solvent/polymer solvent combination is incubated for approximately 1 to 5 ' days or until the polymer solvent has been completely removed from the particles. While not wishing to be bound by theory, it is hypothesized that during the incubation, the non-solvent functions to extract the polymer solvent from the microscopic polymer solution droplets from the particles such that the polymer is at least gelled. As the incubation period passes, the droplets will shrink and the solvent becomes further extracted, leading to a hardened outer polymeric shell containing a gelled polymer core, and finally, after completion of the incubation, a complete removal of the residual solvent.
  • the non- solvent temperature may stay below the melting point of the solvent during the cryoextraction process.
  • polymer solution droplets are shown being dispensed either with a syringe or other device at a controlled rate onto a top layer of liquid nitrogen.
  • the nitrogen layer is situated over a bottom layer consisting of the selected non-solvent, which will eventually serve to extract the solvent from the frozen polymer solution droplets.
  • the non-solvent layer has been previously frozen with liquid nitrogen prior to the dispensing of the polymer solution.
  • the vessel labeled (b) shows the onset of the dewing of the frozen nonsolvent, into which the frozen polymeric droplets will sink.
  • the vessel labeled (c) shows the cryoextraction procedure after approximately three days of incubation wherein the polymer solution droplets, incubated within the non-solvent, have been depleted of a substantial amount of solvent.
  • the result is a gelled, polymeric particle in the form of a bead having a hardened outer shell.
  • the non-solvent height within the vessel is slightly reduced due to some evaporation of the non-solvent.
  • the size of the beads will shrink quite substantially during this process depending on the initial concentration of the polymer in the polymer solution.
  • such particles can be formed using any way known or to be developed in the art.
  • Two exemplary preferred methods of accomplishing this include wherein (i) the non-solvent residing in the vessel in the method embodiment described above is cooled to close to its freezing point or to its freezing point prior to the addition of the polymer solution such that the polymer droplets freeze upon contact with the pre-cooled non-solvent; or (ii) the polymer droplets are frozen by contacting them with a liquefied gas such as nitrogen, which is placed over a bed of pre-frozen non-solvent (see, Fig. 2).
  • a liquefied gas such as nitrogen
  • the particles of the invention can be prepared in any size desired, "Microspheres" may be obtained by nebulizing the polymer solution into a polymer aerosol using either pneumatic or ultrasonic nozzles, such as, for example a Sonotek 8700-60ms or a Lechler US50 ultrasonic nozzle, each available from Sono[.tek] Corporation, Milton, New York, U.S.A. and Lechler GmbH, Metzingen, Germany. Larger particles may be obtained by dispensing the droplets into the non-solvent solution using a syringe or other drop-forming device.
  • pneumatic or ultrasonic nozzles such as, for example a Sonotek 8700-60ms or a Lechler US50 ultrasonic nozzle, each available from Sono[.tek] Corporation, Milton, New York, U.S.A. and Lechler GmbH, Metzingen, Germany.
  • Larger particles may be obtained by dispensing the droplets into the non-solvent solution using a syringe
  • the size of the particle may also be altered or modified by an increase or decrease of the initial concentration of the polymer in the polymer solution, as a higher concentration will lead to an increased sphere diameter.
  • the particles can include a standard and/or a preferred core based on an acrylic polymer or copolymer with a shell of PTFEP. Such particles can provide a preferred spherical shape and improved specific gravity for use in a suspension of contrast media for embolization.
  • the acrylic polymer based polymers with PTFEP shell described herein provide a substantially spherical shape, mechanical flexibility and compressibility, improved specific gravity properties.
  • the core polymers may be formed using any acceptable technique known in the art, such as that described in B. Thanoo et al., "Preparation of Hydrogel Beads from Crosslinked Poly(Methyl Methacrylate) Microspheres by Alkaline Hydrolysis," J. Appl. P. Sci., Vol. 38, 1153-1161 (1990), incorporated herein by reference with respect thereto.
  • Such acrylic-based polymers are preferably formed by polymerizing unhydrolyzed precursors, including, without limitation, methyl acrylate (MA), methyl methacrylate (MMA), ethylmethacrylate (EMA), hexamethyl (HMMA) or hydroxyethyl methacrylate (HEMA), and derivatives, variants or copolymers of such acrylic acid derivatives. Most preferred is MMA.
  • the polymer should be present in the core in a hydrated or partially hydrated (hydrogel) form.
  • Such polymers are preferably cross- linked in order to provide suitable hydrogel properties and structure, such as enhanced non- biodegradability, and to help retain the mechanical stability of the polymer structure by resisting dissolution by water.
  • the core prepolymers are formed by dispersion polymerization that may be of the suspension or emulsion polymerization type.
  • Emulsion polymerization results in substantially spherical particles of about 10 run to about 10 microns.
  • Suspension polymerization results in similar particles but of larger sizes of about 50 to about 1200 microns.
  • Suspension polymerization may be initiated with a thermal initiator, which may be solubilized in the aqueous or, more preferably, monomer phase.
  • Suitable initiators for use in the monomer phase composition include benzoyl peroxide, lauroyl peroxide or other similar peroxide-based initiators known or to be developed in the art, with the most preferred initiator being lauroyl peroxide.
  • the initiator is preferably present in an amount of about 0.1 to about 5 percent by weight based on the weight of the monomer, more preferably about 0.3 to about 1 percent by weight based on the weight of the monomer.
  • a cross-linking co- monomer is preferred for use in forming the hydrated polymer.
  • Suitable cross-linking co- monomers for use with the acrylic-based principle monomer(s) used in preparing a polymerized particle core include various glycol-based materials such as ethylene glycol dimethacrylate (EGDMA), diethylene glycol dimethacrylate (DEGDMA) or most preferably, Methylene glycol dimethacrylate (TEGMDA).
  • a chain transfer agent may also be provided if desired. Any suitable MA polymerization chain transfer agent may be used. In the preferred embodiment herein, dodecylmercaptane may be used as a chain transfer agent in amounts acceptable for the particular polymerization reaction.
  • the aqueous phase composition preferably includes a surfactant/dispersant as well as a complexing agent, and an optional buffer is necessary.
  • Surfactants/dispersants should be compatible with the monomers used herein, including Cyanamer® 370M, polyacrylic acid and partially hydrolyzed polyvinyl alcohol surfactants such as 4/88, 26/88, 40/88.
  • a dispersant should be present in an amount of about 0.1 to about 5 percent by weight based on the amount of water in the dispersion, more preferably about 0.2 to about 1 percent by weight based on the amount of water in the dispersion.
  • An optional buffer solution may be used if needed to maintain adequate pH.
  • a preferred buffer solution includes sodium phosphates
  • a suitable complexing agent is ethylene diamine tetraacetic acid
  • EDTA which may be added to the aqueous phase in a concentration of from about 10 to about 40 ppm EDTA, and more preferably about 20 to about 30 ppm. It is preferred that in the aqueous phase composition, the monomer to water ratio is about 1 :4 to about 1 :6.
  • the polymerization should take place at about ambient conditions, preferably from about 60° C to about 80° C with a time to gelation of about one to two hours. Stirring at rates of 100 to 500 rpm is preferred for particle formation, with lower rates applying to larger sized particles and higher rates applying to smaller sized particles.
  • PMMA particles such as microparticles
  • they are preferably subjected to hydrolysis conditions typical of those in the art, including use of about 1-10 molar excess of potassium hydroxide per mol of PMMA.
  • potassium hydroxide is provided in a concentration of about 1-15% potassium hydroxide in ethylene glycol.
  • the solution is then heated preferably at temperatures of about 150-185° C for several hours.
  • lesser amounts of potassium hydroxide be used which are less than about 5 molar excess of potassium hydroxide per mole of PMMA, more preferably about 3 molar excess or less.
  • a concentration of about 10-15% potassium hydroxide in ethylene glycol is also preferably used, and more preferably about 14% to about 15%. It will be understood by one skilled in the art, that heating conditions at higher temperatures may be used to decrease overall reaction times. Reaction times may be varied depending on the overall diameter of the resultant particles.
  • the following conditions are able to provide particles having about 35% compressibility and desired stability: for diameters of about 200-300 ⁇ m, the solution should be heated for about 7.5 to about 8.5 hours; for diameters of about 300-355 ⁇ m, about 9.5 to about 10.5 hours; for diameters of about 355-400 ⁇ m, about 11.5 to about 12.5 hours; and for about 400-455 ⁇ m, about 13.5 to about 14.5 hours, etc.
  • the particle size can be adjusted using variations in the polymerization process, for example, by varying the stirring speed and the ratio of the monomer to the aqueous phase. Further, smaller sizes can be achieved by increasing surfactant/dispersant ratio.
  • particles are separated from the reaction mixture and their pH may be adjusted to any range as suited for further processing steps or intended uses.
  • the pH of the particle core may be adjusted in from about 1.0 to about 9.4, preferably about 7.4 if intended for a physiological application. Since size, swelling ratio and elasticity of the hydrogel core material are dependent on pH value, the lower pH values may be used to have beneficial effects during drying to prevent particle agglomeration and/or structural damage.
  • Particles are preferably sieved into different size fractions according to intended use. Drying of particles preferably occurs using any standard drying process, including use of an oven at a temperature of about 40° -80° C for several hours up to about a day.
  • the surface of the hydrogel may be subjected to treatment with any suitable ionic or non-ionic surfactant, such as tetraalkylammonium salts, polyalcohols and similar materials.
  • ionic or non-ionic surfactant such as tetraalkylammonium salts, polyalcohols and similar materials.
  • a more permanent change in adhesion properties is brought about by rendering the surface of the particles hydrophobic by reaction of its polymethacrylic acid groups with a suitable reactant.
  • suitable reactants include, but are not limited to, hydrophobic alcohols, amides and carboxylic acid derivatives, more preferably they include halogenated alcohols such as trifluoroethanol.
  • Such surface treatment also prevents delamination of the coating from the core once the coating is applied.
  • Preferred surface treatments may include, without limitation, an initial treatment with thionyl chloride followed by reaction with trifluoroethanol.
  • the surface may be treated by suspending the particles in a mixture of sulfuric acid and a hydrophobic alcohol, such as trifluoroethanol. Such treatments are preferred if the particles are to be coated in that they minimize any delamination of a coating.
  • the PMA core particles may be coated with a surface layer of and/or infused with barium sulfate.
  • the barium sulfate is radiopaque and aids in visualization of the finished particles when in use. It also provides enhanced fluidization properties to the particles such that it reduces agglomeration especially during drying and allows for fluid bed coating of the PMA particles with an outer coating of PTFEP, thereby providing improved adhesion between a PTFEP outer core and a polymeric acrylate core particles. By allowing fluidization even when the core particles are swollen, barium sulfate also improves the overall coating and adhesion properties.
  • barium sulfate By enabling the coating of the core particles even in a swollen state with PTFEP, barium sulfate also reduces the potential tendency of the PTFEP shells to crack or rupture in comparison with coating the particles in a dry state and then later exposing the particles to a suspension in which the core particles swell and exert force on the shell of PTFEP.
  • a coating of barium sulfate on the core particles is preferably applied by adhesion of the barium sulfate in the form of an opaque coating on the hydrogel surface of the PMA beads. Barium sulfate can further assist in reducing electrostatic effects that limit particle size. By allowing for absorption of additional humidity, the barium sulfate tends to counteract the electrostatic effects.
  • Barium sulfate crystals adhering only loosely to the PMA particles may be covalently crosslinked or chemically grafted to the particle surface by spraycoating a sufficient amount of an aminosilane adhesion promoter onto the PMA particle. This will help to effectively reduce barium sulfate particulate matter in solution after hydration of the particles.
  • Exemplary particles include 3-aminopropyl-trimethoxysilane and similar silane-based adhesion promoters.
  • a further alternative for improving visualization of microparticles made as noted herein include the absorption of a water soluble organic dye inside the hydrogel core particles.
  • exemplary dyes are preferably those FDA dyes approved for human use and which are known or to be developed for safe, non-toxic use in the body and which are capable of providing acceptable contrast.
  • Organic dyes may include dyes such as D&C Violet no. 2 and others preferably approved for medical device uses, such as for contact lenses and resorbable sutures.
  • barium sulfate operates as an inorganic filler and finely dispersed pigment that makes the particles visible by light diffraction due to small crystal size, the dyes when impregnated in the particles absorb the complementary part of the visible color spectrum. .
  • Particles including microparticles made in accordance with the foregoing process for forming a core hydrogel polymer are then coated with PTFEP and/or its derivatives.
  • Any suitable coating process may be used, including solvent fluidized bed and/or spraying techniques. However, preferred results may be achieved using fluidized bed techniques in which the particles pass through an air stream and are coated through spraying while they spin within the air stream.
  • the PTFEP or derivative polymer is provided in dilute solution for spraying to avoid clogging of the nozzle.
  • Exemplary solvents for use in such solutions include ethyl acetate, acetone, hexafluorbenzene, methyl ethyl ketone and similar solvents and mixtures and combinations thereof, most preferred is ethyl acetate alone or in combination with isoamyl acetate.
  • Typical preferred concentrations include about 0.01 to about 0.3 weight percent PTFEP or its derivative in solution, more preferably about 0.02 to 0.2 weight percent PTFEP, and most preferably about 0.075 to about 0.2 weight percent.
  • the type of hydrogel core can be varied as can the technique for coating a particle, however it is preferred that a core which is useful in the treatment techniques and applications described herein is formed and subsequently coated with PTFEP and/or its derivatives as described herein.
  • the particles can be used in various medical and therapeutic applications, such as embolization, drug delivery, imaging (ultrasound) and as tracer particles.
  • the invention includes a method of minimizing blood flow to a specific tissue in a mammal.
  • embolization includes occluding or obstructing at least a portion of a vessel, or the entire vessel, with one or more of the particles of the invention.
  • Such procedure is particularly useful in the treatment of diseases and pathologies that involve undesirable vascularized tissues, for example, tumor tissue or disorders involving the uncontrolled proliferation of certain cells such as endometriosis.
  • the particle(s) are prepared in accordance with the procedures described above, and may be inserted into the blood vessel by any invasive or non-invasive medical practice known or to be developed in the art such as via a catheter, a syringe, or a surgical incision.
  • the embolization can be carried out such that only a portion of the blood vessel is occluded, or the entire vessel may be occluded.
  • an active agent such as a cytostatic agent, an anti-inflammatory agent, an anti-mitogenic or cell proliferation active agent, a hormone, or any other desirable active agent, as described herein.
  • Embolization particles according to the present invention are capable of demonstrating improved optical visibility, additional radiopacity, and an optimum
  • embolization particles in this invention may be used with different dyes as markers as noted above for particle sizes, embedded pharmaceuticals for localized drug delivery and controlled drug elution characteristics.
  • particle density is preferably taken into consideration to ensure beneficial properties for particle delivery. Possible clogging of a catheter-based delivery system may occur if using a density-mismatched delivery medium.
  • the polymethacrylate hydrogel density is between 1.05 g/cm and 1.10 g/cm depending on the equilibrium water content.
  • the most common iodinated nonionic contrast agent media with 300 mg iodine per ml have densities of 1.32-1.34 g/cm .
  • buoyancy refers to the ability of the particles to be substantially free floating in solution that occurs when the density of the particle is substantially the same as the medium in which it is suspended.
  • Coated particles formed in accordance with the present invention as described herein can reach buoyancy when there is approximately 30% contrast agent in the delivery medium, however, such levels can be adjusted for such preferred use according to techniques described herein.
  • One method for increasing the density of the particles is by use of heavy water or deuterium oxide (D2O). When heavy water is used to swell the particles, D2O displaces H2O, thereby increasing the weight of the particles for better dispersion and buoyancy levels. Typically this leads to the ability to add higher amounts of contrast agent of at least about 5% using such a technique. However, some equilibrating effect can occur over time when the particles are contacted with an aqueous solution of contrasting agent. Thus, it is preferred that when using D2O for this purpose, either that suspension times are kept to a minimum or, more
  • the contrast agent be provided in a solution which also uses D2O.
  • particles of pH 1 can be neutralized with cesium hydroxide and/or the final neutralized particles can be equilibrated with cesium chloride.
  • Such compounds diffuse cesium into the particles, such that either the cesium salt of polymethacrylic acid is formed or polymethacrylic acid is diffused and thereby enriched with cesium chloride.
  • the cesium increases the density of the particles, thereby increasing the ability to add higher amounts of contrast agent.
  • Typical buoyancy levels can be adjusted using the cesium technique such that about 45 to about 50% contrast agent may be added to the delivery medium as is desired for embolization.
  • Cesium salts are non-toxic and render the particles visible using fluoroscopy.
  • Cesium's atomic weight of 132.9 g/mol is slightly higher than that of iodine providing beneficial effects including increase in overall density and enhancement of X-ray contrast visibility even without a contrast agent.
  • active agent can be used as an alternative cesium source rendering the particles buoyant in an embolic solution as well as able to be used as an active treatment source.
  • barium sulfate may be used between the core particles and the preferred PTFEP coating or introduced into the interior of the core particles using any technique known or to be developed in the art.
  • organic dyes may similarly be included in the particle core.
  • These materials, particularly the barium sulfate, also contribute to an increase in density as well as providing radiopacity.
  • the barium sulfate allows this benefit even upon substantial and/or full hydration, allowing particles in suspension to remain isotonic.
  • a barium sulfate powder coating can provide an inert precipitate having no effect on physiological osmolarity.
  • the invention also includes methods of delivering an active agent to a localized area within the body of a mammal.
  • the method includes contacting the localized area with at least one of the particles of the invention as described above, such that an effective amount of the active agent is released locally to the area.
  • Diseases or pathologies that may be treated by this method include any wherein the localized or topical application of the active agent achieves some benefit in contrast to the systemic absorption of the drug.
  • Suitable active agents include NSAIDS, steroids, hormones, nucleic acids, agents used in the treatment of disorders of the gastrointestinal tract, such as, ulcers, Crohn's disease, ulcerative colitis, and irritable bowel syndrome.
  • Other active agents may include tacrolimus, sirolimus, paclitaxel, cis-/carboplatins, antineoplastic agents, doxorubicine and/or receptor blocking agents, e.g., av ⁇ 3 integrin blockers, which inhibit cell attachment.
  • the particle formulated for delivery of an active agent to a localized area is about 1 to about 1 ,000 ⁇ m in diameter
  • the drug loaded microspheres can be applied to localized areas within the mammalian body using syringes and/or catheters as a delivery device, without causing inadvertent occlusions.
  • a catheter can be inserted into the groin artery and its movement monitored until it has reached the area where the localized administration is desired.
  • a dispersion of the particles in a suitable injection medium can be injected through the catheter, guaranteeing only a specific area of the body will be subjected to treatment with drug loaded beads (particles).
  • injection mediums include any pharmaceutically acceptable mediums that are known or to be developed in the art, such as, e.g., saline, PBS or any other suitable physiological medium.
  • the invention includes an i ⁇ jectible dispersion including particles and a contrasting agent which particles are substantially dispersed in the solution. In a preferred embodiment, the particles are also detectible through fluoroscopy.
  • the polymeric particles of the invention may be used to prepare a sustained release formulation of an active agent for oral administration.
  • the formulation comprises a particle, as described above, loaded with an active agent.
  • the polymeric particle utilized may be hollow, substantially hollow or solid.
  • the particle can be loaded with the active agent either by dispersion or solvation of the active agent in the polymer solution prior to the production of micro-sized particles through spray droplets, pastillation of a polymer melt or carrying out of a cryoextraction process.
  • an unloaded polymer particle can be prepared and subsequently immersed in solutions containing active agents. The particles are then incubated in these solutions for a sufficient amount of time for the active agent to diffuse into the matrix of the polymer. After drying the particles, the active agent will be retained in the polymer particle. If this loading mechanism is utilized, drug loading can be controlled by adjusting drug concentrations of the incubation medium and removing the particles from the incubation medium when an equilibrium condition has been attained.
  • the active agent can be selected so as to complement the action of the particles in a synergistic fashion, especially if the particles are being used in an occlusive or embolization procedure.
  • the tissue to which one wishes to minimize blood flow is a tumor tissue, one may wish to load the particles used in the occlusion with a cytostatic drug or an antimitotic drug.
  • a method of tracing the passage of a particle through a blood vessel or other cavity in a mammalian body includes injecting into the vessel, cavity, or a conduit adjacent to such cavity or vessel, at least one tracer particle, wherein the tracer particle is at least a particle prepared in accordance with the procedures described above.
  • the tracer particle may include a contrast agent that may aid in the visualization of the particle as it passes through the body cavity, blood vessel, and/or other locale.
  • a contrast agent that may aid in the visualization of the particle as it passes through the body cavity, blood vessel, and/or other locale.
  • smaller particles are preferred, such as those in the range of about 1 to about 10 ⁇ m, especially if the particles are to be injected into the bloodstream.
  • the particles may be of any size so long as, for this purpose, they are not large enough to occlude the blood vessel, body cavity, or adjacent cavity or vessel to which the procedure is being applied.
  • the particles are loaded with a contrast agent, their movement can be visualized with X-ray machines, or any other contrasting procedure, depending on the contrast agent utilized.
  • the flow of the particles may be visualized using 19 F-NMR based computer tomography.
  • one may coat the tracer particle containing a contrast agent with a polymer coating.
  • the polymer coating may comprise any polymer known or to be developed in the art, including any phosphazene polymers. If there is any toxicity or concern of toxicity with respect to the contrast agent, it is desirable that the one or more coating is non-biodegradable.
  • the invention also includes the method of carrying out an enhanced ultrasound imaging procedure (sonography). In order to do this, one must administer to the ultrasound subject at least one hollow microcapsule to the area of the ultrasound subject that one wishes to visualize.
  • Such administration can be accomplished by any means known or to be developed in the art, including by use of a syringe, catheter or other invasive or non-invasive medical device, and/or by a surgical incision.
  • particles which are hollow or substantially hollow, i.e. having an inner cavity that is equal to at least about 20%, at least about 30%, at least about 40%, at least about 50%, at least about 80%, at least about 90%, of the volume of the entire particle.
  • the hollow particles are administered to a portion of the ultrasound subject which one wishes to image. While not wishing to be bound by theory, it is speculated that the particles enhance the ultrasound image by increasing the ultrasound "echo" due to their abrupt density change, when compared to the surrounding tissue.
  • the hollow cavities of the particles act to reflect the ultrasound, thereby enhancing the image.
  • Microspheres having a diameter of approximately 500 to 600 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x10 6 g/mol in the polymer solvent ethyl acetate to obtain a 2% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of pentane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel, and were air dried at 21° C.
  • Microspheres having a diameter of approximately 350 to 450 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3xlO 6 g/mol in ethyl acetate to obtain a 1% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of pentane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and were air dried at 21° C.
  • Microspheres having a diameter of approximately 500 to 600 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 12x10 6 g/mol in methylisobutylketone to obtain a 2% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of a 1 :9 (v/v) ethanol/pentane mixture (See Fig. 2.). The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel, and dried under reduced pressure at 21° C.
  • Microspheres having a diameter of approximately 500 to 600 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 9x10 6 g/mol in isoamylketone to obtain a 2% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of pentane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric polymers were retrieved from the reaction vessel and dried under reduced pressure at 21° C.
  • Microspheres having a diameter of approximately 500 to 600 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 16x10 6 g/mol in cyclohexanone to obtain a 2% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dropped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of a 1 :1 (v/v) ethanol/diethyl ether mixture. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and dried under reduced pressure at 21° C.
  • Microspheres having a diameter of approximately 500 to 600 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x10 6 g/mol in ethyl acetate to obtain a 2% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of hexane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and air dried at 21° C.
  • Microspheres having a diameter of approximately 500 to 600 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x10 6 g/mol in ethyl acetate to obtain a 2% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of ethanol. (See Fig. 2.) The cryoextraction was allowed to proceed for three days.
  • polymeric particles were retrieved from the reaction vessel and air dried at 21 ° C. The particles were noticeably gel-like and after drying were ellipsoid in shape.
  • Microspheres having a diameter of approximately 500 to 600 ⁇ m were prepared.
  • a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x10 6 g/mol in ethyl acetate to obtain a 2% (wt/v) polymer solution.
  • Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of diethylether. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and air dried at 21° C. The resultant particles were, after drying, compact and uniformly spherical.
  • a two liter cryovessel as shown in Fig. 6 was filled with 100 milliliters of diethyl ether as a non-solvent.
  • the cyrovessel had the features and typical dimension as shown below in Table 1.
  • the syringe pump as shown in Fig. 7, was used to dispense between 5 to 15 milliliters of the 5 to 40 mg/ml polymer solution in ethyl acetate, slowly into the cryovessel.
  • the syringe pump had the following features: a pump housing (J), a syringe (K) and a Teflon® distributor with Teflon® tubing attached (L). The rate of the pump was adjusted to approximately 10 milliliters dispensing volume per hour.
  • a Teflon ® cylinder with one inlet and one to eight outlets is used to distribute the dispensed volumes into several vessels in parallel.
  • the needle tips used for dispensing are small, such as the G33 size. Additionally, the dropping distance should be more than 5 cm, so that the droplets aided by gravity immediately sink into the liquid nitrogen upon hitting the surface.
  • EXAMPLE 10 [0093] The microspheres prepared by the process of Example 1 were examined for shape and surface morphology by optical microscope, scanning electron microscope (SEM) and atomic force microscopy. The results of these analyses are shown in Figs. 3 A and 3B).
  • Fig. 3 A shows the microspheres as they appear using an optical microscope at 4x magnification.
  • Fig. 3B shows a microsphere as it appears using a scanning electron microscope at 10Ox magnification.
  • Hydrogel microparticles formed in accordance with the procedures described herein were evaluated for buoyancy and suspension properties for use in embolization applications.
  • the microparticles included a sample using unmodified polymethacrylic acid potassium salt hydrogel particles (Sample A); a sample using trifluoroethyl esterified polymethacrylic acid potassium salt hydrogels (Sample B); and a sample using the same hydrogel as Sample B, but wherein the particles were coated with PTFEP (Sample C).
  • An isotonic phosphate buffered saline solution of pH 7.4 having 0.05 volume % TweenTM 20 was prepared by dissolving 5 phosphate buffered saline tablets (Fluka® ) in 999.5 ml of milliQ ultrapure water. 0.5 ml of Tween 20TM surfactant was added to the solution. Solutions having between 20 and 50 percent by volume of Imeron300® contrast agent in the isotonic buffered saline solution were then prepared for evaluation.
  • the contrast agent solutions that were prepared were then placed in 4 ml vials in aliquots of 2 ml each. To the vials, 50-80 mg of the hydrated hydrogel Samples A-C were added. Each Sample was first hydrated by adding to 100 mg of dry hydrogel microparticles either 900 mg of isotonic phosphate buffered saline solution or D2O to obtain 1 ml swollen hydrogel. Buoyancy properties were measured immediately and every 10 minutes thereafter until buoyancy equilibrium was achieved and/or surpassed.
  • microparticles hydrated with D2O would be able to increase the contrast agent percentage achievable with adequate buoyancy by as much as 5%. Particles began to float to the top over time when the contrast agent was added in percentages of 40%-50%.
  • FIG. 8 An automated syringe plunger 2 having a motor 4 for providing a variable feed rate of 0 to 250 mm/h and a gear box 6 was further equipped with a Lorenz pressure transducer 8 capable of measuring forces in the 0 to 500 N range.
  • the syringe plunger 2 was in communication with a syringe body 10 as shown.
  • the digital output of the transducer was recorded using a personal computer.
  • the syringe body 10 was filled with 5 ml of a solution of contrast agent in isotonic phosphate buffer/surfactant (T weenTM 20) solution in a concentration of about 30-32 volume percent contrast agent. Microparticles were provided to the syringe as well in an amount of 56 mg dry mass. The syringe contents were then injected through the microcatheter 12 which was attached to the distal end 14 of the syringe. The microcatheter had a lumen diameter of 533 ⁇ m. The force needed to push the microparticles through the catheter into the Petri dish 16 (shown for receiving microparticle solution) was measured and recorded as pressure.
  • T weenTM 20 isotonic phosphate buffer/surfactant
  • microspheres for embolization typically have a water content of about 90% such that a vial for embolization would therefore contain 0.2 mg of embolization particles in 9.8 ml of injection liquid (2 ml of hydrated microparticles in 8 ml supernatant liquid).
  • the solution is typically drawn up in 1 ml syringes for final delivery.
  • the Sample C spheres demonstrated approximately the same equilibrium water content as typical embolization spheres. To achieve the same injection density desired for typical surgical procedures, 56 mg of Sample C microspheres were added to 5 ml of a 31 volume percent contrast agent solution in isotonic phosphate buffer and surfactant as noted above. [0108] The Sample B and C microspheres were evaluated in different microcatheters of equal lumen diameter at a pH of 7.4. Injections in both the horizontal and vertical direction were made under different buoyancy levels and using different swelling levels (based on pH of 6.0 in contrast to pH 7.4).
  • Injection pressure was further minimized when a lower pH (reduced swelling) was used in combination with horizontal injection such that the injection pressures were comparable to the injection media itself.
  • injection of Sample C microparticles also exhibited a good injection pressure pattern at a physiological pH. The catheter entrance did not clog and each peak in the curve corresponded to either a single microparticle or number of particles passing through the catheter.
  • the results of the various catheter simulation tests shows that the invention can be used to form injectible microparticles having a density which substantially matches the density of the injection medium for embolization use.
  • the particles' compressibility can further be such that it can be injected without forces over more than about 5 kg on the syringe plunger.
  • the pH of the injection medium can be taken down to about 6 or injections can be done horizontally to increase the ease of passage of Sample B and C microparticles through the catheter. Once within the blood stream, the particles can expand to their original size in the pH 7.4 environment.
  • Additional swelling tests were conducted on the microparticles of Sample C and it was observed that when ion concentrations were low, swelling increased. In higher concentrated solutions, swelling decreased.
  • microparticles of Sample C led to an increase from 17% to 20% in size of the microparticles.
  • size increases are from about 116.2 to about 136.6%, referring to the dry particles.
  • the syringe pressure test stand of Fig. 8 was used, however, an optical microscope was used to evaluate the microparticles as they passed through a progressively narrowed pipette which was attached to polyethylene tubing connected to the syringe containing a phosphate buffer solution suspension of microparticles of Sample C.
  • the pipette narrowed to an inner diameter of 490 ⁇ m and the pipette was mounted to a Petri dish such that the narrowest part was submerged in phosphate buffer solution to avoid optical distortion and to collect the liquid ejected from the pipette during measurement.
  • Sample C microparticles were further subjected to mechanical and thermal stress stability testing. Microparticles, after passing through a Terumo Progreat Tracker catheter were washed with deionized water to remove residual buffer solution along with contrast agent. They were dehydrated for 12 h at 60° C and then transferred to an SEM for surface analysis. They were compared with particles from the original batch of microparticles which had undergone the same hydration/dehydration cycle in milliQ ultrapure water, but which had not been passed through the catheter.
  • Figs 9A and 9B show the surface of the Sample C microparticles just after the hydration/dehydration cycle and the film thickness of an exemplary Sample C microparticle, respectively.
  • FIG. 10A SEMs after passing through a catheter at various magnifications (Figs. 1OA, 1OB, 1OC and 10D) show that the coating did not delaminate (Fig. 10A). Some microparticles did demonstrate some stretching out in the coating film (Figs. 1OB and 10C). However, a closer magnification as in Fig. 1OD demonstrates that the morphology of the coating layer is still intact.
  • a sterilizer was filled with 2 1 of deionized water and 10 vials each having 56 mg of Sample C microparticles in 3.3g of solution of isotonic phosphate buffer/surfactant (T weenTM 20) and turned on. The water boiling point was reached about 15 min.
  • Microparticles were formed in accordance with a preferred embodiment herein.
  • a deionized water solution of polyvinyl alcohol (PVA) was prepared using about 23 g of PVA of weight average molecular weight of about 85,000-124,000, which PVA was about 87-89% hydrolyzed and 1000 g water.
  • a phosphate buffer solution was prepared using 900 g deionized water, 4.53 g disodium hydrogen phosphate, 0.26 g sodium dihydrogen phosphate and 0.056 g ethylenediamine tetraacetic acid (EDTA).
  • EDTA ethylenediamine tetraacetic acid
  • Methyl methacrylate (MMA) monomer was vacuum distilled prior to use.
  • MMA and triethylene glycol dimethacrylate were introduced, dilauroyl peroxide then added to the same flask and the components were agitated to ensure dissolved solids.
  • the reaction flask was flushed with argon and the stirrer speed set to at 150 rpm to produce particle sizes of a majority in the range of 300-355 ⁇ m. Stirring continued for approximate 5 minutes. The stirrer was then set to 100 rpm and argon flushing was discontinued.
  • the reaction flask was then subjected to a water bath which was heated to 70° C and held at approximately that temperature for about 2 hours. The temperature of the bath was then increased to 73° C and held for an hour, then the water bath temperature was raised again to 85° C and held for another hour.
  • the PMMA microparticles thus formed were then hydrolyzed. A portion of 100 g 250-300 ⁇ m sized microparticles, 150 g potassium hydroxide and 1400 g of ethylene glycol were added to a 2000 ml flask, reflux condenser with drying tube connected, and the mixture was heated at 165° C for 8 hours for full hydrolysis. The mixture was allowed to cool to room temperature, solution decanted and the microparticles were washed with deionized water. The procedure was repeated for other calibrated sizes of microparticles (the following reaction times applied: 300-355 micron particles: 10 hours; 355-400 micron particles: 12 hours and 400-455 micron particles: 14 hours). [0119] The microparticles were finally acidified with hydrochloric acid to a pH of 7.4, and dried in an oven at approximately 70° C.
  • EXAMPLE 16 Microparticles formed in accordance with Example 15 were then esterified in this Example.
  • 800 g of dried microparticles from Example 15 were weighed in a 2L reaction vessel with a reflux condenser.
  • 250 g thionyl chloride in 1.5 L diethyl ether were added under stirring. Stirring was continued at room temperature for 20 hours. The solvent and volatile reactants were removed by filtration and subsequent vacuum drying. Then 500 g trifluoroethanol in 1.5 L ether were introduced and the suspension stirred for another 20 hours at room temperature. The particles were finally dried under vacuum.
  • Example 16 In an alternative surface treatment to Example 16, 800 g dried microparticles from Example 15 were reacted with 114O g trifluoroethanol and 44 g sulfuric acid added as a catalyst. The mixture was stirred for 20 hours at room temperature, filtered and dried under vacuum.
  • the solution composition was 0.835 g PTFEP, 550 g ethyl acetate and 450 g isopentyl acetate. It was fed through the nozzle's 1.3 mm wide inner bore at a rate of 10-30 g/min. At the nozzle head, it was atomized with pressurized air (2.5 bar). The total amount of spray solution (3kg) was calculated to coat the particle with a 150 nm thick PTFEP film.
  • EXAMPLE 19 [0123] The dry potassium salt microparticles of Examples 15-16, which were partially esterified with trifluoroethanol as described above, were spray-coated with diluted PTFEP solution in ethyl acetate in a commercially available fluidized bed coating device (see Example 16). 100 mg of such coated, dried microparticles as well as 100 mg of uncoated, dried PMA potassium salt microparticles which were partially esterified with trifluoroethanol, were immersed in about 30% aqueous cesium chloride solution, prepared by dissolving 30.O g cesium chloride in 100 ml deionized water. The supernatant liquid was decanted after 10 min.
  • Microparticles were formed in accordance with the procedure of Example 15 with the exception that an exterior barium sulfate coating was prepared on the microparticles after neutralization of the particles and the microparticles were not dried after neutralization prior to the barium sulfate coating step.
  • an exterior barium sulfate coating was prepared on the microparticles after neutralization of the particles and the microparticles were not dried after neutralization prior to the barium sulfate coating step.
  • 2500 ml hydrated particles were subjected to 2000 ml of 0.5 M sodium sulfate (Na2SC «4) solution and saturated for 4-12 hours.
  • To the particle suspension was then slowly added 1950 ml of 0.5 M barium chloride (BaCt ⁇ ) solution under stirring at room temperature.
  • the resulting particles in a swollen state included a barium sulfate powder coated surface.
  • the particles were then dried and esterified in the manner noted above in Example 16.
  • the particles were then coated using the fluidized bed process of Example 21 below.
  • the resulting microparticles were externally coated with a non-adhesive barium sulfate powder.
  • Barium sulfate coatings prepared in accordance with this invention and procedure are capable of preventing particle agglomeration during drying and also increase density.
  • the concentration and ratios of barium sulfate may be varied to provide different results and a use of an excess of sodium sulfate can minimize residual barium chloride.
  • the particles formed in accordance with this example were effectively washed with hot water to minimize excess barium sulfate powder that may contaminate vials, etc.
  • the barium sulfate works effectively to prevent adhesion of particles prior to drying to assist in fluidization of the hydrated microparticles.
  • Fluidized bed coating of barium sulfate powdered beads was performed using polymethacrylate beads with a surface layer of barium sulfate formed in accordance with Example 20 but an excess of barium chloride was used such that barium ions diffused inside the core and formed a precipitate inside the hydrogel core.
  • the resulting precipitate was precipitated within the pores of the hydrogel core and could not be removed by multiple washings with water.
  • the particles thus formed were found to have a permanent increased density in contrast to unmodified particles.
  • the density increase was controllable by the molar amount of barium chloride used. Amounts ranging from 0-15 mol % of barium chloride were used reproducibly with this procedure. It was observed during evaluations of this procedure that, if the time period of addition exceeded 5 minutes, based upon the diffusion speed of barium chloride within the particles, the outer pores of the hydrogel core became irreversibly crosslinked, thereby preventing the barium sulfate precipitate inside from leaching out. This effect was visible by optical microscopy as the "diffusion front" of the barium sulfate was clearly visible as a white band inside the particle, whereas the surface remained clear.
  • Both Examples 20 and 21 provided particles having anti-adhesive properties that tend not to agglomerate during drying processes; therefore avoiding surface damage. Generally, such an advantage helps minimize the amount of particles needed for a fluidized bed procedure as the particles can be fluidized without being completely dried. The residual water content may be increased up to 1:1 based on dry weight without agglomeration. The Examples also produce particles with increased density properties wherein the density change appears to be permanent.
  • barium sulfate may be introduced in accordance with the invention in a range of from 0 to about 100 mol%, and preferably 0 to about 15 mol% to provide particles that have preferred elasticity, density and mechanical stability properties.
  • the particles formed according to this Example having a barium sulfate load inside the core were then esterified according to Example 16 and vacuum-dried. 30Og of the dry beads were suspended in 300 g water which was completely absorbed by the polymethacrylate cores within less than 1 min while the barium sulfate powdered particle surface appeared dry and the particles showed no tendency to agglomerate.
  • the particles (now 600 g) with 50 weight percent (wt%) water inside were spray coated with APTMS/ PTFEP in an MP-I Precision CoaterTM fluidized bed coating apparatus according to Example 18 with the exception that an additional aminosilane adhesion promoter was used.
  • the process equipment used was the same as that of Example 18, but the coating provided included three different layers.
  • a bottom coating of 3-aminopropyltrimethoxysilane (APTMS) adhesion promoter was provided upon which was a second coating layer of a mixture of APTMS and PTFEP and a third, top coating layer of PTFEP.
  • ATMS 3-aminopropyltrimethoxysilane
  • All three spray solutions were prepared by dissolving the coating material in isopentyl acetate and ethyl acetate in a 1 : 1 weight percentage ratio mixture.
  • the first solution included 35 ⁇ l APTMS dissolved in 200 g acetate mixture.
  • the second solution included 25 ⁇ l APTMS and 125 mg PTFEP in 150 mg of the acetate mixture and the third included 50 mg PTFEP in 60 g of the acetate mixture.
  • the spray solution quantities and concentrations refer to the coating of a 300 g batch with 350 ⁇ m particles.
  • the absorbed water evaporated at a rate of 5 - 10 g/min. The process was stopped after 30 min when the coating thickness reached 100 nm and the residual water content was 18.4 wt%.
  • the dyes tested included triphenylmethane derived dyes such as Fluoescein diacetate and Rhodamin 6G which were evaluated along with carbocyanine based dyes such as DiI.
  • the triphenylmethane based Fluorecein and Rhoamine dyes exhibited a specific affinity for the hydrophilic PMMA hydrogel core through ionic interactions. They were able to easily withstand the rigorous conditions of repeated washing and steam sterilization without substantial leaching.
  • the carbocyanine dye DiI on the other hand exhibited a high selectivity for the hydrophobic PTFEP shell, without penetrating the hydrophilic PMAA core material.

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Abstract

Particles are provided for use in therapeutic and/or diagnostic procedures. The particles include poly[bis(trifluoroethoxy) phosphazene] and/or a derivatives thereof which may be present throughout the particles or within an outer coating of the particles. The particles can also include a core having a hydrogel formed from an acrylic-based polymer. Barium sulfate may also be provided to the core of the particles as a coating or absorbed within the core of the particles. The particles can be used to minimize blood flow to mammalian tissues by occluding at least a portion of a blood vessel of the mammal, or to deliver an active agent to a localized area within a body of a mammal by contacting a localized area with at least one of the particles. Further, the particles are useful in sustained release formulations including active agent(s) for oral administration, as tracer particles for injection into the bloodstream of a mammal or for use in enhanced ultrasound imaging. The particles may include agents for increasing density for achieving useful buoyancy levels in suspension.

Description

TITLE OF THE INVENTION
[0001] Loadable Polymeric Particles for Therapeutic and/or Diagnostic Applications and Methods of Preparing and Using the Same.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0002] This application claims the benefit of priority under 35 U.S.C. §119(e) of U.S. Provisional Patent Applications Nos. 60/684,307, filed May 24, 2005 and 60/621,729, filed October 25, 2004, the entire disclosures of which are incorporated herein by reference.
BACKGROUND OF THE INVENTION
[0003] Small particles, including microspheres and nanospheres, have many medical uses in diagnostic and therapeutic procedures. Most prior art particles used in medical applications are characterized by numerous disadvantages including irritation of the tissues with which they come in contact and initiation of adverse immune reactions. [0004] Additionally, many of the materials used to prepare the prior art particles may degrade relatively rapidly within the mammalian body, thereby detracting from their utility in certain procedures where long term presence of intact particles may be necessary. Moreover, the degradation of the prior art materials may release toxic or irritating compounds causing adverse reactions in the patients. [0005] It is also a problem in the art for certain types of prior art particles that it is difficult to achieve desirable suspension properties when the particles are incorporated into a delivery suspension for injection into a site in the body to be treated. Many times, the particles settle out or tend to "float" in the solution such that they are not uniformly suspended for even delivery. Furthermore, particles may tend to aggregate or agglomerate within the delivery solution and/or adhere to some part of the delivery device, making it necessary to compensate for these adhesive/attractive forces.
[0006] In order to achieve a stable dispersion, it is known to add suitable dispersing agents that may include surfactants directed at breaking down attractive particle interaction. Depending on the nature of the particle interaction, the following materials may be used: cationic, anionic or nonionic surfactants such as Tween™ 20, Tween™ 40, Tween™ 80, polyethylene glycols, sodium dodecyl sulfate, various naturally occurring proteins such as serum albumin, or any other macromolecular surfactants in the delivery formulation. Furthermore thickening agents can be used help prevent particles from settling by sedimentation and to increase solution viscosity, for example, polyvinyl alcohols, polyvinyl pyrrolidones, sugars or dextrins. Density additives may also be used to achieve buoyancy. [0007] It can also be difficult to visualize microparticles in solution to determine their degree of suspension when using clear, transparent polymeric acrylate hydrogel beads in aqueous suspension.
Attempts to use the inert precipitate, barium sulfate, in particle form is known as an additive for bone cement, for silicones for rendering items visible during X-ray examination and for providing radiopacity to polymeric acrylate particles. See Jayakrishnan et al., Bull. Mat. ScL Vol. 12, No. 1, pp. 17-25 (1989). The barium sulfate also is known for improving fluidization, and is often used as an inorganic filler to impart anti-stick behavior to moist, aggregated particles. Other prior art attempts to increase visualization of microparticles include use of gold, for example, Embosphere Gold™ provides a magenta color to acrylate microparticles using small amounts of gold.
[0008] There thus exists in the art a need for small particles that can be formed to have a preferential generally spherical configuration for certain applications such as various therapeutic and diagnostic procedures which are not degraded by the natural systems of the mammalian system, are biocompatible, resist clumping, are easy to visualize in suspension while in use and/or demonstrate acceptable physical and suspension properties.
BRIEF SUMMARY OF THE INVENTION
[0009] The invention includes a particle for use in a therapeutic and/or diagnostic procedure. The particle comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof. [0010] Also included is a method of minimizing blood flow to a tissue in a mammal comprising occluding at least a portion of a blood vessel of the mammal with at least one particle, wherein the particle comprises a poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof. [0011] Further described herein is a method of delivering an active agent to a localized area within a body of a mammal comprising contacting the localized area with at least one of a particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and an active agent, such that an effective amount of the active agent is exposed to the localized area. [0012] Also within the invention is a sustained release formulation of an active agent for oral administration, the formulation comprising a polymer capsule and an active agent, wherein the polymeric capsule comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof. [0013] The invention further includes a method of tracing the passage of a particle through a blood vessel in a mammal, the method comprising injecting into the bloodstream of a mammal at least one tracer particle, the tracer particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and a contrast agent, and imaging the route of the particle. [0014] Additionally, a method of enhanced ultrasound imaging is described herein. The method comprises administering to an ultrasound subject at least one hollow microcapsule comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof to an area of the ultrasound subject, and imaging the area of the subject using ultrasound. [0015] The invention also includes a method of delivering an active agent to a localized area within the body of a mammal comprising contacting the localized area with at least one of a particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and an active agent, such that an effective amount of the active agent is exposed to the localized area, wherein the particle comprises an agent to increase density. [0016] Further, a method for minimizing agglomeration and/or aggregation of particles formed from acrylic-based polymers is described in which the method comprises providing barium sulfate to the core and/or surface of the particles.
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS [0017] The foregoing summary, as well as the following detailed description of the invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there are shown in the drawings embodiments that are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. [0018] In the drawings: [0019] Fig. 1 shows a schematic representation of a general cryoextraction scheme used to prepare particles according to one embodiment of the invention; [0020] Fig. 2 shows the manual dripping technique by which the polymer solution was supplied to liquid nitrogen in preparation of the microspheres of Example 1, herein; [0021] Fig. 3A and Fig. 3B show unloaded polyphosphazene particles (microspheres) as prepared by one embodiment of the cryoextraction method as described herein. Figure 3 A shows a 4x optical microscope view and Fig. 3B shows a 10Ox scanning electron microscope view;
[0022] Fig. 4 shows a particle (microsphere) formed according to one embodiment of the invention loaded with bovine insulin (20% (wt/wt)) at 10Ox magnification SEM; [0023] Fig. 5 A and Fig. 5B show the surface morphology of unloaded polyphosphazene microspheres. Fig. 5 A is an image obtained using an atomic force microscope and Fig. 5B is a scanning electron micrograph showing the surface of an unloaded polyphosphazene microsphere at 500Ox magnification;
[0024] Figs. 6 and 7 show a cryoextraction setup for use in an embodiment of the invention wherein Fig. 6 is a cryoextraction vessel and Fig. 7 is a syringe pump; [0025] Fig. 8 is a cross-sectional view of an apparatus for use in microcatheter testing of microparticles in Example 14 herein;
[0026] Figs 9A and 9B show an SEM at 1.0KX magnification of the surface of the Sample C microparticles just after the hydration/dehydration cycle and at a 50.00KX magnification of the film thickness of microparticles formed in accordance with Sample C of Example 12 used in the evaluation of Example 14, respectively;
[0027] Figs. 1OA, 1OB, 1OC and 1OD are SEMs of microparticles made in accordance with Sample C of Example 12 used in the evaluation of Example 14 after passing through a catheter showing surface features (Figs. 1OA, 1OB and 10C) at 1.0KX magnification and at 5.0KX magnification (Fig. 10D); and [0028] Figs. 1 IA, 1 IB, 11C and 1 ID are SEMs of microparticles formed in accordance with Sample C of Example 12 after thermal stress testing in Example 14. Fig. 1 IA is a 50X magnification of a minor amount of delamination in the strong white contrast portion. Fig. 1 IB is a 200X magnification of the microparticles of Fig. 1 IA. Figs. 11C and 1 ID are, respectively, 200X and l.OKX magnified SEMs of other Sample C microparticles showing only minor defects. DETAILED DESCRIPTION OF THE INVENTION [0029] Described herein are particles that may be manufactured using poly[bis(trifluoroethoxy) phosphazene] and/or derivatives thereof, as well as methods of preparing such particles. Additionally, described herein are therapeutic and/or diagnostic methods and procedures which use the particles as described herein, including methods of embolization using the particles, methods of delivery of an active agent using the particle (either orally or locally), methods of tracing or visualizing blood or other biological fluids through the body using the particles, and methods of enhanced ultrasound (sonography) using the particles. [0030] Also included are sustained release drug delivery formulations for oral administration including the particles for localized delivery of an active agent to the gastrointestinal system and/or systemic delivery of an active agent as well as a sustained release drug delivery formulation that can be injected subcutaneously or intravenously for localized delivery of an active agent. [0031] All of the methods, compositions and formulations of the invention utilize at least one particle as described herein. "Particle" and "particles" as used herein mean a substantially spherical or ellipsoid article(s), hollow or solid, that may have any diameter suitable for use in the specific methods and applications described below, including a microsphere(s) and a nanosphere(s), beads and other bodies of a similar nature known in the art. [0032] The preferred particles of the invention according to one embodiment described herein are composed, in whole or in part, the specific polyphosphazene polymer known as poly[bis(trifluoroethoxy) phosphazene] or a derivative of poly[bis(trifluoroethoxy) phosphazene]. Use of this specific polymer provides particles that are at least in part inorganic in that they include an inorganic polymer backbone and which are also biocompatible in that when introduced into a mammal (including humans and animals), they do not significantly induce a response of the specific or non-specific immune systems. The scope of the invention also includes the use(s) of such particles as controlled drug delivery vehicles or tracer particles for the visualization of blood vessels and other organs. [0033] The particles are useful in a variety of therapeutic and/or diagnostic procedures in part because they can be prepared in sizes large enough to occlude a blood vessel as well as small enough to easily pass through the smaller vessels, e.g., visualization or drug delivery purposes. Additionally, owing to the biocompatible nature of the polymer, the particles facilitate avoidance or elimination of immunogenic reactions generally encountered when foreign bodies are introduced into a mammalian body, such as "implant rejection" or "allergic shock," and other adverse reactions of the immune system. Moreover, it has been found that the particles of the invention exhibit reduced biodegradation in vivo, thereby increasing the long-term stability of the particle in the biological environment. Moreover, in those situations where some degradation is undergone by the polymer in the particle, the products released from the degradation include only non-toxic concentrations of phosphorous, ammonia, and trifluoroethanol, which, advantageously, is known to promote anti-inflammatory responses when in contact with mammalian tissue.
[0034] Each of the particles in the invention is formed in part of the polymer, poly[bis(2,2,2-trifluoroethoxy) phosphazene] or a derivative thereof (referred to further herein as either "poly[bis(trifluoroethoxy) phosphazene]" or "PTFEP"). The preferred poly[bis(trifluoroethoxy) phosphazene] polymer is made up of repeating monomers represented by the formula (I) shown below:
Figure imgf000007_0001
wherein R to R are all trifluoroethoxy (OCH2CF3) groups and n may vary from at least about
100 to larger molecular weight lengths, preferably n is about 4,000 to about 300,000, more preferably, n is about 4,000 to about 3,000 and most preferably n is about 13,000 to about 30,000. Alternatively, one may use derivatives of this polymer in the preparation of the particles of the invention. By "derivatives," it is meant polymers made up of monomers having the structure of formula (I) but where one or more of the R -R functional groups or backbone atom(s) is substituted by a different atom(s) or functional group(s), but where the biological inertness of the polymer is not substantially altered. Exemplary functional groups include ethoxy (OCH2CH3), 2,2,3,3,3-pentafluoropropyloxy (OCH2CF2CF3), 2,2,2,2',2',2'-
hexafluoroisopropyloxy (OCH(CF3)2), 2,2,3,3,4,4,4-heptafluorobutyloxy (OCH2CF2CF2CF3), 3,3,4,4,5,5,6,6,7,7,8,8,8-tridecafluorooctyloxy (OCH2(CF2)7CF3), 2,2,3,3,-
tetrafluoropropyloxy (OCH2CF2CHF2), 2,2,3,3,4,4-hexafluorobutyloxy (OCH2CF2CF2CF3),
3,3,4,4,5,5,6,6,7,7,8,8-dodecafluorooctyloxy (OCH2(CF2)7CHF2). Further, in some
embodiments, 1% or less of the R to R groups may be alkenoxy groups that assist crosslinking in order to provide a more elastomeric phosphazene polymer, including groups such as OCH2CH=CH2, OCH2CH2CH=CH2 or allylphenoxy groups.
[0035] It is preferred that the molecular weight of the polymer used to prepare the particles of the invention has a molecular weight based on the above formula, and more preferably, a molecular weight of at least about 70,000 g/mol, more preferably at least about 1,000,000 g/mol, and still more preferably a molecular weight of at least about 3x106 g/mol to about 2OxIO6 g/mol. Most preferred are polymers having molecular weights of at least about 10,000,000 g/mol.
[0036] The diameter of a particle formed according to the invention will necessarily vary depending on the end application in which the particle is to be used. The diameter of such particles is preferably about 1 to about 5,000 μm, with a diameter of about 1 to about 1,000 μm being most preferred. Other common sizes include diameters of about 200 to about 500 μm, about 1 to about 200 μm and greater than about 500 μm, however, it should be understood based on this disclosure that various combinations of particles sizes and various ranges within the broader range of from about 1 to about 5,000 μm are within the scope of this disclosure. In methods using the particle where more than one particle is preferred it is not necessary that all particles be of the same diameter or shape. However, in accordance with the invention precisely calibrated particles may be prepared having exemplary ranges as follows:
100 μm ± 25 μm 250 μm ± 50 μm 400 μm ± 50 μm
500 μm ± 50 μm 700 μm ± 50 μm 900 μm ± 50 μm It is also within the scope of the invention that various ranges such as those noted above could be prepared and combined for blended applications, for example, particles in ranges from 500 to 700 μm.
[0037] The particles may also include other compounds which function to enhance, alter or otherwise modify the behavior of the polymer or particle either during its preparation or in its therapeutic and/or diagnostic use. For example, active agents such as peptides, proteins, hormones, carbohydrates, polysaccharides, nucleic acids, lipids, vitamins, steroids and organic or inorganic drugs may be incorporated into the particle. Excipients such as dextran, other sugars, polyethylene glycol, glucose, and various salts, including, for example, chitosan glutamate, may be included in the particle.
[0038] Additionally, if desired, polymers other than the poly[bis(trifluoroethoxy) phosphazene] and/or its derivative may be included with in the particle. Examples of polymers may include poly(lactic acid), poly(lactic-co-glycolic acid), poly(caprolactone), polycarbonates, polyamides, polyanhydrides, polyamino acids, polyorthoesters, polyacetals, polycyanoacrylates, and polyurethanes. Other polymers include polyacrylates, ethylene-vinyl acetate co-polymers, acyl substituted cellulose acetates and derivatives thereof, degradable or non-degradable polyurethanes, polystyrenes, polyvinylchloride, polyvinyl fluoride, poly( vinyl imidazole), chlorosulphonated polyolefins, and polyethylene oxide. One may incorporate the selected compounds by any means known in the art, including diffusing, inserting or entrapping the additional compounds in the matrix of an already formed particle or by adding the additional compound to a polymer melt or to a polymer solvent in the preparation of the particle such as described herein.
[0039] The loaded or unloaded particle may be coated with an additional polymer layer or layers, including polymers such as those mentioned hereinabove. Further, PTFEP or its derivatives may be used to form such a coating on a particle formed of other suitable polymers or copolymers known or to be developed in the art that are used to form particles as described herein. Preferably, when coating a particle such as a microparticle, PTFEP is applied as a coating on a microparticle(s) formed of an acrylic-based polymer as set forth in further detail below. [0040] Coatings are beneficial, for example, if the particle(s) are to be used in a sustained release, orally administered, drug delivery formulation (enteric coating) or if the particles are to be loaded with a potentially toxic contrast agent (non-biodegradable coating). [0041] The microspheres may be prepared by any means known in the art that is suitable for the preparation of particles containing poly[bis(trifluoroethoxy) phosphazene]. In a procedure according to an embodiment herein a "polymer solution" is prepared by mixing one or more polymer solvent(s) and the PTFEP and/or a derivative thereof until the polymer is dissolved.
[0042] Suitable solvents for use in the preparation of the polymer solution include any in which the polymer PTFEP and/or its derivatives are soluble. Exemplary solvents include, without limitation, ethyl-, propyl-, butyl-, pentyl-, octylacetate, acetone, methylethylketone, methylpropylketone, methylisobutylketone, tetrahydrofurane, cyclohexanone, dimethylacetamide, acetonitrile, dimethyl ether, hexafluorobenzene or combinations thereof. [0043] The polymer solution contains the PTFEP and/or its derivative polymer in a concentration of about 1% by weight of polymer to 20% by weight of polymer, preferably about 5% to 10% by weight of polymer. Other polymers, as discussed above, may be present in the solution, or may be added to the vessel in the form of a second solution powder or other form, if one wishes to include such polymers in the final particle.
[0044] In carrying out the process, the polymer solution is next dispensed, preferably in the form of drops or an aerosol, into a vessel containing a non-solvent. By "non-solvent" it is meant any organic or inorganic solvents that do not substantially dissolve the PTFEP polymer and which have a melting point that is lower relative to the melting point of the solvent in which the polymer is dissolved ("polymer solvent"), so that the non-solvent thaws before the solvent thaws in the course of the incubation step. Preferably, this difference between the melting point of the non-solvent and the polymer solvent is about 10° C, more preferably about 15° C, and most preferably, greater than about 20° C. Under certain conditions it has been found that the structural integrity of the resultant particle may be enhanced if the difference of the melting points of the polymer solvent and of the non-solvent is greater than 15° C.
However, it is sufficient that the non-solvent point is merely slightly lower than that of the polymer solvent.
[0045] The non-solvent/polymer solvent combination is incubated for approximately 1 to 5 ' days or until the polymer solvent has been completely removed from the particles. While not wishing to be bound by theory, it is hypothesized that during the incubation, the non-solvent functions to extract the polymer solvent from the microscopic polymer solution droplets from the particles such that the polymer is at least gelled. As the incubation period passes, the droplets will shrink and the solvent becomes further extracted, leading to a hardened outer polymeric shell containing a gelled polymer core, and finally, after completion of the incubation, a complete removal of the residual solvent. To ensure that the polymeric droplets retain a substantially spherical shape during the incubation period, they must be in a frozen or substantially gelled state during most if not all of the incubation period. Therefore, the non- solvent temperature may stay below the melting point of the solvent during the cryoextraction process.
[0046] As shown in Fig. 1 , at the vessel labeled (a), polymer solution droplets are shown being dispensed either with a syringe or other device at a controlled rate onto a top layer of liquid nitrogen. The nitrogen layer is situated over a bottom layer consisting of the selected non-solvent, which will eventually serve to extract the solvent from the frozen polymer solution droplets. The non-solvent layer has been previously frozen with liquid nitrogen prior to the dispensing of the polymer solution. The vessel labeled (b) shows the onset of the dewing of the frozen nonsolvent, into which the frozen polymeric droplets will sink. The vessel labeled (c) shows the cryoextraction procedure after approximately three days of incubation wherein the polymer solution droplets, incubated within the non-solvent, have been depleted of a substantial amount of solvent. The result is a gelled, polymeric particle in the form of a bead having a hardened outer shell. As can be seen by the representation, the non-solvent height within the vessel is slightly reduced due to some evaporation of the non-solvent. The size of the beads will shrink quite substantially during this process depending on the initial concentration of the polymer in the polymer solution.
[0047] In one embodiment of a method of preparing a PTFEP-containing particle(s) according to the invention, such particles can be formed using any way known or to be developed in the art. Two exemplary preferred methods of accomplishing this include wherein (i) the non-solvent residing in the vessel in the method embodiment described above is cooled to close to its freezing point or to its freezing point prior to the addition of the polymer solution such that the polymer droplets freeze upon contact with the pre-cooled non-solvent; or (ii) the polymer droplets are frozen by contacting them with a liquefied gas such as nitrogen, which is placed over a bed of pre-frozen non-solvent (see, Fig. 2). In method (ii), after the nitrogen evaporates, the non-solvent slowly thaws and the microspheres in their frozen state will sink into the liquid, cold non-solvent where the extraction process (removal of the polymer solvent) will be carried out. [0048] By modifying this general process, one may prepare particles that are hollow or substantially hollow or porous. For example, if the removal of the solvent from the bead is carried out quickly, e.g., by applying a vacuum during the final stage of incubation, porous beads will result. [0049] The particles of the invention can be prepared in any size desired, "Microspheres" may be obtained by nebulizing the polymer solution into a polymer aerosol using either pneumatic or ultrasonic nozzles, such as, for example a Sonotek 8700-60ms or a Lechler US50 ultrasonic nozzle, each available from Sono[.tek] Corporation, Milton, New York, U.S.A. and Lechler GmbH, Metzingen, Germany. Larger particles may be obtained by dispensing the droplets into the non-solvent solution using a syringe or other drop-forming device. Moreover, as will be known to a person of skill in the art, the size of the particle may also be altered or modified by an increase or decrease of the initial concentration of the polymer in the polymer solution, as a higher concentration will lead to an increased sphere diameter. [0050] In an alternative embodiment of the particles described herein, the particles can include a standard and/or a preferred core based on an acrylic polymer or copolymer with a shell of PTFEP. Such particles can provide a preferred spherical shape and improved specific gravity for use in a suspension of contrast media for embolization. The acrylic polymer based polymers with PTFEP shell described herein provide a substantially spherical shape, mechanical flexibility and compressibility, improved specific gravity properties. The core polymers may be formed using any acceptable technique known in the art, such as that described in B. Thanoo et al., "Preparation of Hydrogel Beads from Crosslinked Poly(Methyl Methacrylate) Microspheres by Alkaline Hydrolysis," J. Appl. P. Sci., Vol. 38, 1153-1161 (1990), incorporated herein by reference with respect thereto. Such acrylic-based polymers are preferably formed by polymerizing unhydrolyzed precursors, including, without limitation, methyl acrylate (MA), methyl methacrylate (MMA), ethylmethacrylate (EMA), hexamethyl (HMMA) or hydroxyethyl methacrylate (HEMA), and derivatives, variants or copolymers of such acrylic acid derivatives. Most preferred is MMA. The polymer should be present in the core in a hydrated or partially hydrated (hydrogel) form. Such polymers are preferably cross- linked in order to provide suitable hydrogel properties and structure, such as enhanced non- biodegradability, and to help retain the mechanical stability of the polymer structure by resisting dissolution by water. [0051] Preferably, the core prepolymers are formed by dispersion polymerization that may be of the suspension or emulsion polymerization type. Emulsion polymerization results in substantially spherical particles of about 10 run to about 10 microns. Suspension polymerization results in similar particles but of larger sizes of about 50 to about 1200 microns. [0052] Suspension polymerization may be initiated with a thermal initiator, which may be solubilized in the aqueous or, more preferably, monomer phase. Suitable initiators for use in the monomer phase composition include benzoyl peroxide, lauroyl peroxide or other similar peroxide-based initiators known or to be developed in the art, with the most preferred initiator being lauroyl peroxide. The initiator is preferably present in an amount of about 0.1 to about 5 percent by weight based on the weight of the monomer, more preferably about 0.3 to about 1 percent by weight based on the weight of the monomer. As noted above, a cross-linking co- monomer is preferred for use in forming the hydrated polymer. Suitable cross-linking co- monomers for use with the acrylic-based principle monomer(s) used in preparing a polymerized particle core, include various glycol-based materials such as ethylene glycol dimethacrylate (EGDMA), diethylene glycol dimethacrylate (DEGDMA) or most preferably, Methylene glycol dimethacrylate (TEGMDA). A chain transfer agent may also be provided if desired. Any suitable MA polymerization chain transfer agent may be used. In the preferred embodiment herein, dodecylmercaptane may be used as a chain transfer agent in amounts acceptable for the particular polymerization reaction. [0053] The aqueous phase composition preferably includes a surfactant/dispersant as well as a complexing agent, and an optional buffer is necessary. Surfactants/dispersants should be compatible with the monomers used herein, including Cyanamer® 370M, polyacrylic acid and partially hydrolyzed polyvinyl alcohol surfactants such as 4/88, 26/88, 40/88. A dispersant should be present in an amount of about 0.1 to about 5 percent by weight based on the amount of water in the dispersion, more preferably about 0.2 to about 1 percent by weight based on the amount of water in the dispersion. An optional buffer solution may be used if needed to maintain adequate pH. A preferred buffer solution includes sodium phosphates
(Na2HPO4/NaH2PC>4). A suitable complexing agent is ethylene diamine tetraacetic acid
(EDTA), which may be added to the aqueous phase in a concentration of from about 10 to about 40 ppm EDTA, and more preferably about 20 to about 30 ppm. It is preferred that in the aqueous phase composition, the monomer to water ratio is about 1 :4 to about 1 :6. [0054] The polymerization should take place at about ambient conditions, preferably from about 60° C to about 80° C with a time to gelation of about one to two hours. Stirring at rates of 100 to 500 rpm is preferred for particle formation, with lower rates applying to larger sized particles and higher rates applying to smaller sized particles. [0055] Once PMMA particles, such as microparticles, are formed, they are preferably subjected to hydrolysis conditions typical of those in the art, including use of about 1-10 molar excess of potassium hydroxide per mol of PMMA. Such potassium hydroxide is provided in a concentration of about 1-15% potassium hydroxide in ethylene glycol. The solution is then heated preferably at temperatures of about 150-185° C for several hours. Alternatively, to minimize reactant amounts and cost, it is preferred that lesser amounts of potassium hydroxide be used which are less than about 5 molar excess of potassium hydroxide per mole of PMMA, more preferably about 3 molar excess or less. For such hydrolytic reactions, a concentration of about 10-15% potassium hydroxide in ethylene glycol is also preferably used, and more preferably about 14% to about 15%. It will be understood by one skilled in the art, that heating conditions at higher temperatures may be used to decrease overall reaction times. Reaction times may be varied depending on the overall diameter of the resultant particles. For example, the following conditions are able to provide particles having about 35% compressibility and desired stability: for diameters of about 200-300 μm, the solution should be heated for about 7.5 to about 8.5 hours; for diameters of about 300-355 μm, about 9.5 to about 10.5 hours; for diameters of about 355-400 μm, about 11.5 to about 12.5 hours; and for about 400-455 μm, about 13.5 to about 14.5 hours, etc. The particle size can be adjusted using variations in the polymerization process, for example, by varying the stirring speed and the ratio of the monomer to the aqueous phase. Further, smaller sizes can be achieved by increasing surfactant/dispersant ratio. [0056] Following hydrolysis, particles are separated from the reaction mixture and their pH may be adjusted to any range as suited for further processing steps or intended uses. The pH of the particle core may be adjusted in from about 1.0 to about 9.4, preferably about 7.4 if intended for a physiological application. Since size, swelling ratio and elasticity of the hydrogel core material are dependent on pH value, the lower pH values may be used to have beneficial effects during drying to prevent particle agglomeration and/or structural damage.
Particles are preferably sieved into different size fractions according to intended use. Drying of particles preferably occurs using any standard drying process, including use of an oven at a temperature of about 40° -80° C for several hours up to about a day.
[0057] To provide desired surface properties to the hydrophilic hydrogel particles, in order to provide adhesion for receiving a PTFEP coating, the surface of the hydrogel may be subjected to treatment with any suitable ionic or non-ionic surfactant, such as tetraalkylammonium salts, polyalcohols and similar materials. A more permanent change in adhesion properties is brought about by rendering the surface of the particles hydrophobic by reaction of its polymethacrylic acid groups with a suitable reactant. Suitable reactants include, but are not limited to, hydrophobic alcohols, amides and carboxylic acid derivatives, more preferably they include halogenated alcohols such as trifluoroethanol. Such surface treatment also prevents delamination of the coating from the core once the coating is applied. Preferred surface treatments may include, without limitation, an initial treatment with thionyl chloride followed by reaction with trifluoroethanol. Alternatively, the surface may be treated by suspending the particles in a mixture of sulfuric acid and a hydrophobic alcohol, such as trifluoroethanol. Such treatments are preferred if the particles are to be coated in that they minimize any delamination of a coating.
[0058] Alternatively, and most preferably, the PMA core particles may be coated with a surface layer of and/or infused with barium sulfate. The barium sulfate is radiopaque and aids in visualization of the finished particles when in use. It also provides enhanced fluidization properties to the particles such that it reduces agglomeration especially during drying and allows for fluid bed coating of the PMA particles with an outer coating of PTFEP, thereby providing improved adhesion between a PTFEP outer core and a polymeric acrylate core particles. By allowing fluidization even when the core particles are swollen, barium sulfate also improves the overall coating and adhesion properties. By enabling the coating of the core particles even in a swollen state with PTFEP, barium sulfate also reduces the potential tendency of the PTFEP shells to crack or rupture in comparison with coating the particles in a dry state and then later exposing the particles to a suspension in which the core particles swell and exert force on the shell of PTFEP. A coating of barium sulfate on the core particles is preferably applied by adhesion of the barium sulfate in the form of an opaque coating on the hydrogel surface of the PMA beads. Barium sulfate can further assist in reducing electrostatic effects that limit particle size. By allowing for absorption of additional humidity, the barium sulfate tends to counteract the electrostatic effects. [0059] Barium sulfate crystals adhering only loosely to the PMA particles may be covalently crosslinked or chemically grafted to the particle surface by spraycoating a sufficient amount of an aminosilane adhesion promoter onto the PMA particle. This will help to effectively reduce barium sulfate particulate matter in solution after hydration of the particles. Exemplary particles include 3-aminopropyl-trimethoxysilane and similar silane-based adhesion promoters.
[0060] A further alternative for improving visualization of microparticles made as noted herein include the absorption of a water soluble organic dye inside the hydrogel core particles. Exemplary dyes are preferably those FDA dyes approved for human use and which are known or to be developed for safe, non-toxic use in the body and which are capable of providing acceptable contrast. Organic dyes may include dyes such as D&C Violet no. 2 and others preferably approved for medical device uses, such as for contact lenses and resorbable sutures. Whereas barium sulfate operates as an inorganic filler and finely dispersed pigment that makes the particles visible by light diffraction due to small crystal size, the dyes when impregnated in the particles absorb the complementary part of the visible color spectrum. .
[0061] Particles, including microparticles made in accordance with the foregoing process for forming a core hydrogel polymer are then coated with PTFEP and/or its derivatives. Any suitable coating process may be used, including solvent fluidized bed and/or spraying techniques. However, preferred results may be achieved using fluidized bed techniques in which the particles pass through an air stream and are coated through spraying while they spin within the air stream. The PTFEP or derivative polymer is provided in dilute solution for spraying to avoid clogging of the nozzle.
[0062] Exemplary solvents for use in such solutions include ethyl acetate, acetone, hexafluorbenzene, methyl ethyl ketone and similar solvents and mixtures and combinations thereof, most preferred is ethyl acetate alone or in combination with isoamyl acetate. Typical preferred concentrations include about 0.01 to about 0.3 weight percent PTFEP or its derivative in solution, more preferably about 0.02 to 0.2 weight percent PTFEP, and most preferably about 0.075 to about 0.2 weight percent. It should be understood based on this disclosure that the type of hydrogel core can be varied as can the technique for coating a particle, however it is preferred that a core which is useful in the treatment techniques and applications described herein is formed and subsequently coated with PTFEP and/or its derivatives as described herein. [0063] As previously discussed, the particles can be used in various medical and therapeutic applications, such as embolization, drug delivery, imaging (ultrasound) and as tracer particles. For example, in one embodiment, the invention includes a method of minimizing blood flow to a specific tissue in a mammal. This process, commonly referred to as embolization, includes occluding or obstructing at least a portion of a vessel, or the entire vessel, with one or more of the particles of the invention. Such procedure is particularly useful in the treatment of diseases and pathologies that involve undesirable vascularized tissues, for example, tumor tissue or disorders involving the uncontrolled proliferation of certain cells such as endometriosis. In such procedures, the particle(s) are prepared in accordance with the procedures described above, and may be inserted into the blood vessel by any invasive or non-invasive medical practice known or to be developed in the art such as via a catheter, a syringe, or a surgical incision. The embolization can be carried out such that only a portion of the blood vessel is occluded, or the entire vessel may be occluded. In the method, if desired, one may use particles that have been loaded with an active agent, such as a cytostatic agent, an anti-inflammatory agent, an anti-mitogenic or cell proliferation active agent, a hormone, or any other desirable active agent, as described herein. Embolization particles according to the present invention are capable of demonstrating improved optical visibility, additional radiopacity, and an optimum
3 specific density of about 1.17 g/cm . The embolization particles in this invention may be used with different dyes as markers as noted above for particle sizes, embedded pharmaceuticals for localized drug delivery and controlled drug elution characteristics.
[0064] For use in embolization therapy, particle density is preferably taken into consideration to ensure beneficial properties for particle delivery. Possible clogging of a catheter-based delivery system may occur if using a density-mismatched delivery medium. In addition, it is desirable to include a certain minimum amount of contrast agent in the delivery medium to achieve sufficient levels of fluoroscopic contrast during surgery. Currently, the polymethacrylate hydrogel density is between 1.05 g/cm and 1.10 g/cm depending on the equilibrium water content. The most common iodinated nonionic contrast agent media with 300 mg iodine per ml have densities of 1.32-1.34 g/cm . As used herein, "buoyancy" refers to the ability of the particles to be substantially free floating in solution that occurs when the density of the particle is substantially the same as the medium in which it is suspended. Coated particles formed in accordance with the present invention as described herein can reach buoyancy when there is approximately 30% contrast agent in the delivery medium, however, such levels can be adjusted for such preferred use according to techniques described herein. [0065] One method for increasing the density of the particles is by use of heavy water or deuterium oxide (D2O). When heavy water is used to swell the particles, D2O displaces H2O, thereby increasing the weight of the particles for better dispersion and buoyancy levels. Typically this leads to the ability to add higher amounts of contrast agent of at least about 5% using such a technique. However, some equilibrating effect can occur over time when the particles are contacted with an aqueous solution of contrasting agent. Thus, it is preferred that when using D2O for this purpose, either that suspension times are kept to a minimum or, more
preferably, that the contrast agent be provided in a solution which also uses D2O.
[0066] Alternatively, particles of pH 1 can be neutralized with cesium hydroxide and/or the final neutralized particles can be equilibrated with cesium chloride. Such compounds diffuse cesium into the particles, such that either the cesium salt of polymethacrylic acid is formed or polymethacrylic acid is diffused and thereby enriched with cesium chloride.
[0067] The cesium increases the density of the particles, thereby increasing the ability to add higher amounts of contrast agent. Typical buoyancy levels can be adjusted using the cesium technique such that about 45 to about 50% contrast agent may be added to the delivery medium as is desired for embolization. Cesium salts are non-toxic and render the particles visible using fluoroscopy. Cesium's atomic weight of 132.9 g/mol is slightly higher than that of iodine providing beneficial effects including increase in overall density and enhancement of X-ray contrast visibility even without a contrast agent. For certain cancer treatments where a radioactive isotope of cesium is desired, such active agent can be used as an alternative cesium source rendering the particles buoyant in an embolic solution as well as able to be used as an active treatment source.
[0068] The above-noted techniques for improving density of particles, such as microparticles for embolization or other applications where density and/or buoyancy in solution are applicable properties may be applied in to the preferred particles described herein and/or may be applied for other similar particles. It should be understood that the disclosure is not limited to cesium and/or D2O treatment of the preferred particles herein and that such techniques may have broader implications in other particles such as other acrylic-based hydrogels and other polymeric particles.
[0069] As noted above, barium sulfate may be used between the core particles and the preferred PTFEP coating or introduced into the interior of the core particles using any technique known or to be developed in the art. Also, organic dyes may similarly be included in the particle core. These materials, particularly the barium sulfate, also contribute to an increase in density as well as providing radiopacity. In addition to a general density increase as provided by the above-noted D2O or cesium compounds, the barium sulfate allows this benefit even upon substantial and/or full hydration, allowing particles in suspension to remain isotonic. Thus, a barium sulfate powder coating can provide an inert precipitate having no effect on physiological osmolarity.
[0070] It should be understood, based on this disclosure, that the various buoyancy additives noted above can be used independently or in combination to provide the most beneficial effects for a given core particle and coating combination. [0071] The invention also includes methods of delivering an active agent to a localized area within the body of a mammal. The method includes contacting the localized area with at least one of the particles of the invention as described above, such that an effective amount of the active agent is released locally to the area. Diseases or pathologies that may be treated by this method include any wherein the localized or topical application of the active agent achieves some benefit in contrast to the systemic absorption of the drug. Suitable active agents include NSAIDS, steroids, hormones, nucleic acids, agents used in the treatment of disorders of the gastrointestinal tract, such as, ulcers, Crohn's disease, ulcerative colitis, and irritable bowel syndrome. Other active agents may include tacrolimus, sirolimus, paclitaxel, cis-/carboplatins, antineoplastic agents, doxorubicine and/or receptor blocking agents, e.g., avβ3 integrin blockers, which inhibit cell attachment.
[0072] If the particle formulated for delivery of an active agent to a localized area is about 1 to about 1 ,000 μm in diameter, the drug loaded microspheres can be applied to localized areas within the mammalian body using syringes and/or catheters as a delivery device, without causing inadvertent occlusions. For example, using a contrast agent, a catheter can be inserted into the groin artery and its movement monitored until it has reached the area where the localized administration is desired. A dispersion of the particles in a suitable injection medium can be injected through the catheter, guaranteeing only a specific area of the body will be subjected to treatment with drug loaded beads (particles). As will be understood to a person of skill in the art, injection mediums include any pharmaceutically acceptable mediums that are known or to be developed in the art, such as, e.g., saline, PBS or any other suitable physiological medium. In accordance with a further embodiment described herein, the invention includes an iηjectible dispersion including particles and a contrasting agent which particles are substantially dispersed in the solution. In a preferred embodiment, the particles are also detectible through fluoroscopy. [0073] The polymeric particles of the invention may be used to prepare a sustained release formulation of an active agent for oral administration. The formulation comprises a particle, as described above, loaded with an active agent. The polymeric particle utilized may be hollow, substantially hollow or solid. The particle can be loaded with the active agent either by dispersion or solvation of the active agent in the polymer solution prior to the production of micro-sized particles through spray droplets, pastillation of a polymer melt or carrying out of a cryoextraction process. Alternatively, an unloaded polymer particle can be prepared and subsequently immersed in solutions containing active agents. The particles are then incubated in these solutions for a sufficient amount of time for the active agent to diffuse into the matrix of the polymer. After drying the particles, the active agent will be retained in the polymer particle. If this loading mechanism is utilized, drug loading can be controlled by adjusting drug concentrations of the incubation medium and removing the particles from the incubation medium when an equilibrium condition has been attained.
[0074] Moreover, it is envisioned that the active agent can be selected so as to complement the action of the particles in a synergistic fashion, especially if the particles are being used in an occlusive or embolization procedure. For example, if the tissue to which one wishes to minimize blood flow is a tumor tissue, one may wish to load the particles used in the occlusion with a cytostatic drug or an antimitotic drug.
[0075] Also provided is a method of tracing the passage of a particle through a blood vessel or other cavity in a mammalian body. The method includes injecting into the vessel, cavity, or a conduit adjacent to such cavity or vessel, at least one tracer particle, wherein the tracer particle is at least a particle prepared in accordance with the procedures described above.
[0076] The tracer particle may include a contrast agent that may aid in the visualization of the particle as it passes through the body cavity, blood vessel, and/or other locale. In general, in this application smaller particles are preferred, such as those in the range of about 1 to about 10 μm, especially if the particles are to be injected into the bloodstream. However, the particles may be of any size so long as, for this purpose, they are not large enough to occlude the blood vessel, body cavity, or adjacent cavity or vessel to which the procedure is being applied. [0077] If the particles are loaded with a contrast agent, their movement can be visualized with X-ray machines, or any other contrasting procedure, depending on the contrast agent utilized. However, if the particles do not contain a contrast agent, the flow of the particles may be visualized using 19F-NMR based computer tomography. [0078] If desired, one may coat the tracer particle containing a contrast agent with a polymer coating. The polymer coating may comprise any polymer known or to be developed in the art, including any phosphazene polymers. If there is any toxicity or concern of toxicity with respect to the contrast agent, it is desirable that the one or more coating is non-biodegradable. [0079] The invention also includes the method of carrying out an enhanced ultrasound imaging procedure (sonography). In order to do this, one must administer to the ultrasound subject at least one hollow microcapsule to the area of the ultrasound subject that one wishes to visualize. Such administration can be accomplished by any means known or to be developed in the art, including by use of a syringe, catheter or other invasive or non-invasive medical device, and/or by a surgical incision. In such method, it is preferable to use particles which are hollow or substantially hollow, i.e. having an inner cavity that is equal to at least about 20%, at least about 30%, at least about 40%, at least about 50%, at least about 80%, at least about 90%, of the volume of the entire particle. The hollow particles are administered to a portion of the ultrasound subject which one wishes to image. While not wishing to be bound by theory, it is speculated that the particles enhance the ultrasound image by increasing the ultrasound "echo" due to their abrupt density change, when compared to the surrounding tissue. The hollow cavities of the particles act to reflect the ultrasound, thereby enhancing the image.
EXAMPLE 1
[0080] Microspheres having a diameter of approximately 500 to 600 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x106 g/mol in the polymer solvent ethyl acetate to obtain a 2% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of pentane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel, and were air dried at 21° C.
EXAMPLE 2
[0081] Microspheres having a diameter of approximately 350 to 450 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3xlO6 g/mol in ethyl acetate to obtain a 1% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of pentane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and were air dried at 21° C.
EXAMPLE 3
[0082] Microspheres having a diameter of approximately 500 to 600 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 12x106 g/mol in methylisobutylketone to obtain a 2% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of a 1 :9 (v/v) ethanol/pentane mixture (See Fig. 2.). The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel, and dried under reduced pressure at 21° C.
EXAMPLE 4
[0083] Microspheres having a diameter of approximately 500 to 600 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 9x106 g/mol in isoamylketone to obtain a 2% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of pentane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric polymers were retrieved from the reaction vessel and dried under reduced pressure at 21° C. EXAMPLE 5
[0084] Microspheres having a diameter of approximately 500 to 600 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 16x106 g/mol in cyclohexanone to obtain a 2% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dropped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of a 1 :1 (v/v) ethanol/diethyl ether mixture. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and dried under reduced pressure at 21° C.
EXAMPLE 6
[0085] Microspheres having a diameter of approximately 500 to 600 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x106 g/mol in ethyl acetate to obtain a 2% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of hexane. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and air dried at 21° C.
EXAMPLE 7
[0086] Microspheres having a diameter of approximately 500 to 600 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x106 g/mol in ethyl acetate to obtain a 2% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of ethanol. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and air dried at 21 ° C. The particles were noticeably gel-like and after drying were ellipsoid in shape.
EXAMPLE 8
[0087] Microspheres having a diameter of approximately 500 to 600 μm were prepared. First, a polymer solution was prepared by dissolving PTFEP polymer of a molecular weight 3x106 g/mol in ethyl acetate to obtain a 2% (wt/v) polymer solution. Four milliliters of this polymer solution was manually dripped into liquid nitrogen using a 5 ml syringe. This dispersion was dispensed onto a frozen layer of 150 milliliters of diethylether. (See Fig. 2.) The cryoextraction was allowed to proceed for three days. Subsequently, polymeric particles were retrieved from the reaction vessel and air dried at 21° C. The resultant particles were, after drying, compact and uniformly spherical.
EXAMPLE 9
[0088] A two liter cryovessel as shown in Fig. 6 was filled with 100 milliliters of diethyl ether as a non-solvent. The cyrovessel had the features and typical dimension as shown below in Table 1.
TABLE 1
Figure imgf000024_0001
[0089] Liquid nitrogen was slowly added until the non-solvent froze. The vessel was then filled with additional liquid nitrogen, until the amount of liquid nitrogen rose approximately 5 to 10 cm when measured vertically above the non-solvent layer. The vessel was closed with an insulated Hd, and a syringe needle connected via Teflon tubing to a syringe pump was inserted through a small opening in the lid.
[0090] The syringe pump as shown in Fig. 7, was used to dispense between 5 to 15 milliliters of the 5 to 40 mg/ml polymer solution in ethyl acetate, slowly into the cryovessel. The syringe pump had the following features: a pump housing (J), a syringe (K) and a Teflon® distributor with Teflon® tubing attached (L). The rate of the pump was adjusted to approximately 10 milliliters dispensing volume per hour. A Teflon® cylinder with one inlet and one to eight outlets is used to distribute the dispensed volumes into several vessels in parallel.
(It is preferable that the ratio of solvent to non-solvent volume stays below 10% (v/v). Otherwise the particles may adhere to one another.) After the polymer solution was completely dispensed into the vessel, another 100 milliliters of non-solvent was slowly poured on top of the liquid nitrogen.
[0091] In carrying out this process, it is noted that it is preferable that the needle tips used for dispensing are small, such as the G33 size. Additionally, the dropping distance should be more than 5 cm, so that the droplets aided by gravity immediately sink into the liquid nitrogen upon hitting the surface.
[0092] The liquid nitrogen in the vessel was slowly allowed to evaporate, taking approximately one day. The non-solvent slowly began to melt, and the polymer solution droplets, still frozen, sank into the cold non-solvent. After another day of incubation, the now gelled polymer beads (particles) were retrieved from the vessel by simple filtration. They were allowed to dry at room temperature for approximately 30 minutes and then were ready for use in any of the applications described herein.
EXAMPLE 10 [0093] The microspheres prepared by the process of Example 1 were examined for shape and surface morphology by optical microscope, scanning electron microscope (SEM) and atomic force microscopy. The results of these analyses are shown in Figs. 3 A and 3B). Fig. 3 A shows the microspheres as they appear using an optical microscope at 4x magnification. Fig. 3B shows a microsphere as it appears using a scanning electron microscope at 10Ox magnification.
[0094] It can be seen that surface morphology of the unloaded spheres is typical for semi- crystalline polymers above glass transition temperature. Amorphous as well crystalline regions are prevalent throughout the sample surface. The surface is microporous in nature, with pore sizes ranging from nanometers to few micrometers in diameter. [0095] Particles loaded with bovine insulin were also analyzed using scanning electron microscopy (10Ox magnification). The result of these analyses can be seen in Figs. 4 A and Fig. 4B).
EXAMPLE I l
[0096] Several polymerizations were carried out using varying combinations of PMMA and three different crosslinking monomers (EDGMA, DEGDMA and TEGDMA), different radical initiators (benzoyl peroxide (BPO) and lauroyl peroxide (LPO), EDTA as a complexing agent and varying dispersants (Cyanamer 370M, polyacrylic acid (PAA) and varying types of polyvinyl alcohol (PVA) to achieve the preferred core particles. In some polymerizations, sodium phosphate buffer solution (Na2HPO4/NaH2PO4) was used. It was observed that some of the reaction procedures went unsuccessful due to the type of dispersant and concentration chosen. Failure of the dispersant was demonstrated in the form of early onset of an exothermic reaction, coalescing aqueous and organic phases and premature onset of the vitrification phase. Only the successful examples are shown. The successful runs are shown below in Table 2, which includes the components, concentrations and reaction conditions for such samples (1-6).
TABLE 2
Figure imgf000026_0001
EXAMPLE 12
[0097] Hydrogel microparticles formed in accordance with the procedures described herein were evaluated for buoyancy and suspension properties for use in embolization applications. The microparticles included a sample using unmodified polymethacrylic acid potassium salt hydrogel particles (Sample A); a sample using trifluoroethyl esterified polymethacrylic acid potassium salt hydrogels (Sample B); and a sample using the same hydrogel as Sample B, but wherein the particles were coated with PTFEP (Sample C). An isotonic phosphate buffered saline solution of pH 7.4 having 0.05 volume % Tween™ 20 was prepared by dissolving 5 phosphate buffered saline tablets (Fluka® ) in 999.5 ml of milliQ ultrapure water. 0.5 ml of Tween 20™ surfactant was added to the solution. Solutions having between 20 and 50 percent by volume of Imeron300® contrast agent in the isotonic buffered saline solution were then prepared for evaluation.
[0098] The contrast agent solutions that were prepared were then placed in 4 ml vials in aliquots of 2 ml each. To the vials, 50-80 mg of the hydrated hydrogel Samples A-C were added. Each Sample was first hydrated by adding to 100 mg of dry hydrogel microparticles either 900 mg of isotonic phosphate buffered saline solution or D2O to obtain 1 ml swollen hydrogel. Buoyancy properties were measured immediately and every 10 minutes thereafter until buoyancy equilibrium was achieved and/or surpassed.
[0099] All of the particles reached equilibrium density in the contrast agent solution having 30-40% contrasting agent within 5 min. Particles which were swollen with D2O were heavier
within the first 10 minutes, but the D2O did diffuse out of the particles over time within 15-20
min. of immersion. If additional water which could displace the D2O were not added,
microparticles hydrated with D2O would be able to increase the contrast agent percentage achievable with adequate buoyancy by as much as 5%. Particles began to float to the top over time when the contrast agent was added in percentages of 40%-50%.
[0100] The equilibrium buoyancy (matching densities) was achieved for Sample C in 31 ± 1 volume percent of contrast agent in solution. With regard to Samples A and B, swelling behavior and subsequent density are typically dependent on crosslinking content, pH, ionic strength and valence of cations used. However, it was assumed herein that the swelling does not influence buoyancy due to the sponge-like nature of the polymethacrylic acid hydrogel material. After such material was coated with the PTFEP as in Sample C, a time lag of swelling was observed and buoyancy equilibrium was slower to achieve.
EXAMPLE 13
[0101] In order to take account of the time lag and to achieve a more preferred density, as well as to enhance the fluoroscopic visibility of the particles, cesium treatment was then effected for the types of microparticles used in Samples B and C of Example 12. [0102] 100 mg of Sample C and of Sample B were hydrated each for 10 min. in a 30 weight percent solution of sodium chloride. The supernatant liquid was decanted after equilibrium and the microparticles were washed thoroughly with deionized water. They were then equilibrated for another 10 min., decanted and suspended in 3 ml of surfactant- free isotonic phosphate buffer solution at a pH 7.4. The effect on buoyancy was then evaluated using contrast agent solutions varying from 20 to 50% by volume of Imeron® 300. In this Example, 0.1 g of the microparticles of Samples B and C were used. 3.5 ml of Imeron 300 contrast agent were provided to the initial buffer solution which included 4.0 ml isotonic phosphate buffer/Tween™ 20 solution.
[0103] The equilibration procedure using cesium chloride yielded particles of increased density. Both microparticle samples showed a final buoyancy in the Imeron® 300 contrast agent solutions at concentrations of 45-50% contrast agent, regardless of the presence or absence of Tween™'20 surfactant. The conditions for saturation appeared to be dependent upon the initial pH of the particles, the pH used during the procedure and the corresponding saturation with methacrylic acid groups in the particle. At pH below 3.6, constant exchange between protons and cations was observed. As a result, more beneficial results were shown at pH above about 3.6 and below about 6.6 to temper the amount of cesium. Within the preferred range, buoyancy can be varied. At reasonably neutral levels, based on test at pH of 7.4, the microparticles did not lose their buoyancy after storage in the contrast agent buffered solution over night. EXAMPLE 14
[0104] Further compressibility and mechanical property testing were done on microspheres in accordance of Samples B and/or C of Example 12. A pressure test stand which was used for further evaluation is shown in Fig. 8. An automated syringe plunger 2 having a motor 4 for providing a variable feed rate of 0 to 250 mm/h and a gear box 6 was further equipped with a Lorenz pressure transducer 8 capable of measuring forces in the 0 to 500 N range. The syringe plunger 2 was in communication with a syringe body 10 as shown. The digital output of the transducer was recorded using a personal computer. The syringe body 10 was filled with 5 ml of a solution of contrast agent in isotonic phosphate buffer/surfactant (T ween™ 20) solution in a concentration of about 30-32 volume percent contrast agent. Microparticles were provided to the syringe as well in an amount of 56 mg dry mass. The syringe contents were then injected through the microcatheter 12 which was attached to the distal end 14 of the syringe. The microcatheter had a lumen diameter of 533 μm. The force needed to push the microparticles through the catheter into the Petri dish 16 (shown for receiving microparticle solution) was measured and recorded as pressure.
[0105] In order to make certain calculations, the following information was applied as based on typical use of microspheres for embolization. Typically such microspheres have a water content of about 90% such that a vial for embolization would therefore contain 0.2 mg of embolization particles in 9.8 ml of injection liquid (2 ml of hydrated microparticles in 8 ml supernatant liquid). Standard preparation procedures include adding 8 ml of Imeron® 300 contrast agent to the contents of a single vial. This would provide an equilibrium concentration of contrast agent of 8 ml/(9.8 ml + 8 ml) = 44.9 volume percent within an injection solution. The solution is typically drawn up in 1 ml syringes for final delivery. The injection density thus equals: [0106] p = V^mb^Tot = 2 ml/18ml = 0.111 Embolization agent per volume fraction.
[0107] The Sample C spheres demonstrated approximately the same equilibrium water content as typical embolization spheres. To achieve the same injection density desired for typical surgical procedures, 56 mg of Sample C microspheres were added to 5 ml of a 31 volume percent contrast agent solution in isotonic phosphate buffer and surfactant as noted above. [0108] The Sample B and C microspheres were evaluated in different microcatheters of equal lumen diameter at a pH of 7.4. Injections in both the horizontal and vertical direction were made under different buoyancy levels and using different swelling levels (based on pH of 6.0 in contrast to pH 7.4). The results demonstrated that as long as the diameter of the microspheres was below the internal diameter of the microcatheter, the microparticles passed through the catheter without additional frictional force in the same manner as the reference solution. An increase to about 1.0 to 1.4 kg gravitation force was measured when the microparticle diameter reached the same dimension as the lumen diameter. At roughly 20% compression, forces of about 1.5-2.3 kg were needed to overcome frictional forces within the catheter. Forces greater than 5 kg were taken as a guideline for moderate to high injection pressures. When particles are heavier than the injection medium, clogging was observed when injecting in the vertical position. When injecting the microparticles in the horizontal position, it was observed that serious clogging was alleviated and that larger volumes were injectible over time. [0109] Injection pressure was further minimized when a lower pH (reduced swelling) was used in combination with horizontal injection such that the injection pressures were comparable to the injection media itself. In addition, injection of Sample C microparticles also exhibited a good injection pressure pattern at a physiological pH. The catheter entrance did not clog and each peak in the curve corresponded to either a single microparticle or number of particles passing through the catheter.
[0110] The results of the various catheter simulation tests shows that the invention can be used to form injectible microparticles having a density which substantially matches the density of the injection medium for embolization use. The particles' compressibility can further be such that it can be injected without forces over more than about 5 kg on the syringe plunger. The pH of the injection medium can be taken down to about 6 or injections can be done horizontally to increase the ease of passage of Sample B and C microparticles through the catheter. Once within the blood stream, the particles can expand to their original size in the pH 7.4 environment. [0111] Additional swelling tests were conducted on the microparticles of Sample C and it was observed that when ion concentrations were low, swelling increased. In higher concentrated solutions, swelling decreased. Continued dilution of the microparticles of Sample C in a buffer solution led to an increase from 17% to 20% in size of the microparticles. When mixed into an isotonic phosphate buffer solution, the microparticles initially increase in size between 83.8 and 97%, wherein in deionized water, size increases are from about 116.2 to about 136.6%, referring to the dry particles.
[0112] In further testing to evaluate the compressibility of the microparticles of Sample C, the syringe pressure test stand of Fig. 8 was used, however, an optical microscope was used to evaluate the microparticles as they passed through a progressively narrowed pipette which was attached to polyethylene tubing connected to the syringe containing a phosphate buffer solution suspension of microparticles of Sample C. The pipette narrowed to an inner diameter of 490 μm and the pipette was mounted to a Petri dish such that the narrowest part was submerged in phosphate buffer solution to avoid optical distortion and to collect the liquid ejected from the pipette during measurement. Optical microscope pictures were taken of the microparticles passing through the pipette before and during compression. In observing the microparticles, none of them underwent a fracture, nor did they form debris or coating delamination after passing through the narrow site. Microparticles which were chosen to be deliberately too big for the narrow site (for a compression of about 40%) did not break or rupture, but clogged the narrow site instead. The maximum compressibility under a reasonable amount of force on the microparticles while still allowing the microparticles to pass through the catheter was about 38.7%. Based on these evaluations, the microparticles according to Sample C demonstrate properties that would allow particles which are too large to clog the catheter rather than break up and cause potential damage to the patient. The test results provided suggested preferred use parameters for Sample C microparticles for embolization use as shown in Table 3 below:
TABLE 3
Figure imgf000031_0001
[0113] Sample C microparticles were further subjected to mechanical and thermal stress stability testing. Microparticles, after passing through a Terumo Progreat Tracker catheter were washed with deionized water to remove residual buffer solution along with contrast agent. They were dehydrated for 12 h at 60° C and then transferred to an SEM for surface analysis. They were compared with particles from the original batch of microparticles which had undergone the same hydration/dehydration cycle in milliQ ultrapure water, but which had not been passed through the catheter. Figs 9A and 9B show the surface of the Sample C microparticles just after the hydration/dehydration cycle and the film thickness of an exemplary Sample C microparticle, respectively. SEMs after passing through a catheter at various magnifications (Figs. 1OA, 1OB, 1OC and 10D) show that the coating did not delaminate (Fig. 10A). Some microparticles did demonstrate some stretching out in the coating film (Figs. 1OB and 10C). However, a closer magnification as in Fig. 1OD demonstrates that the morphology of the coating layer is still intact. [0114] A sterilizer was filled with 2 1 of deionized water and 10 vials each having 56 mg of Sample C microparticles in 3.3g of solution of isotonic phosphate buffer/surfactant (T ween™ 20) and turned on. The water boiling point was reached about 15 min. after the start of the sterilizer, and temperature was held at that point for 3 min. to remove air by water vapor. The vessel was then sealed shut to raise pressure and temperature to 125° C and 1.2 bar pressure. This took approximately 10 min. The temperature was then maintained for 15 min, and then the vessel was shut down for a cooling phase. A temperature of 60° C was reached about 30 min later, after which the vessel was vented, the samples withdrawn and the vessel shut tightly. A sample vial was opened, and the supernatant liquid decanted. The microparticles were washed with deionized water. After dehydration, they were subjected to measurement using an SEM. The results demonstrated only a small number of delaminated coatings on the microparticles under such thermal stress (see Fig. 1 IA in the strong white contrast portion). The overall percentage of such microparticles was only about 5 to 10%. Close up, the film delamination which did occur appears to have occurred along crystalline-amorphous domain boundaries in the PTFEP coating (see Fig. 1 IB). Most of the microparticles showed only minor defects (such as a minor circular patch being missing), but no damage to the hull of the microparticles (see Figs. 11C and 1 ID). EXAMPLE 15
[0115] Microparticles were formed in accordance with a preferred embodiment herein. A deionized water solution of polyvinyl alcohol (PVA) was prepared using about 23 g of PVA of weight average molecular weight of about 85,000-124,000, which PVA was about 87-89% hydrolyzed and 1000 g water. A phosphate buffer solution was prepared using 900 g deionized water, 4.53 g disodium hydrogen phosphate, 0.26 g sodium dihydrogen phosphate and 0.056 g ethylenediamine tetraacetic acid (EDTA). Methyl methacrylate (MMA) monomer was vacuum distilled prior to use. [0116] Polymerization was carried out in a three-necked, round-bottomed, 2000-ml flask with a KPG mechanical stirring apparatus attached. The flask was also equipped with a thermometer, reflux condenser and a pressure release valve with a nitrogen inlet. The polymerization process further utilized 100 ml of the PVA solution prepared above, 900 ml of the phosphate buffer solution, 0.65 g of dilauroyl peroxide, 200.2 g methacrylic acid methyl ester and 2.86 g triethylene glycol dimethacrylate. [0117] The PVA and buffer solutions were provided to the reactor flask. The distilled
MMA and triethylene glycol dimethacrylate were introduced, dilauroyl peroxide then added to the same flask and the components were agitated to ensure dissolved solids. The reaction flask was flushed with argon and the stirrer speed set to at 150 rpm to produce particle sizes of a majority in the range of 300-355 μm. Stirring continued for approximate 5 minutes. The stirrer was then set to 100 rpm and argon flushing was discontinued. The reaction flask was then subjected to a water bath which was heated to 70° C and held at approximately that temperature for about 2 hours. The temperature of the bath was then increased to 73° C and held for an hour, then the water bath temperature was raised again to 85° C and held for another hour. The stirring and heat were discontinued. The solution was filtered and the resulting polymethylacrylate microparticles were dried in an oven at 70° C for about 12 hours. The microparticles were subjected to sieving and collected in size fractions of from 100-150; 150-
200; 200-250; 250-300; 300-355; 355-400; and 400-450 μm with a maximum yield at 300-355 μm.
[0118] The PMMA microparticles thus formed were then hydrolyzed. A portion of 100 g 250-300 μm sized microparticles, 150 g potassium hydroxide and 1400 g of ethylene glycol were added to a 2000 ml flask, reflux condenser with drying tube connected, and the mixture was heated at 165° C for 8 hours for full hydrolysis. The mixture was allowed to cool to room temperature, solution decanted and the microparticles were washed with deionized water. The procedure was repeated for other calibrated sizes of microparticles (the following reaction times applied: 300-355 micron particles: 10 hours; 355-400 micron particles: 12 hours and 400-455 micron particles: 14 hours). [0119] The microparticles were finally acidified with hydrochloric acid to a pH of 7.4, and dried in an oven at approximately 70° C.
EXAMPLE 16 [0120] Microparticles formed in accordance with Example 15 were then esterified in this Example. For esterification surface treatment, 800 g of dried microparticles from Example 15 were weighed in a 2L reaction vessel with a reflux condenser. 250 g thionyl chloride in 1.5 L diethyl ether were added under stirring. Stirring was continued at room temperature for 20 hours. The solvent and volatile reactants were removed by filtration and subsequent vacuum drying. Then 500 g trifluoroethanol in 1.5 L ether were introduced and the suspension stirred for another 20 hours at room temperature. The particles were finally dried under vacuum.
EXAMPLE 17
[0121] In an alternative surface treatment to Example 16, 800 g dried microparticles from Example 15 were reacted with 114O g trifluoroethanol and 44 g sulfuric acid added as a catalyst. The mixture was stirred for 20 hours at room temperature, filtered and dried under vacuum.
EXAMPLE 18
[0122] 800 g of dry PMMA potassium salt microparticles which were partially esterified with trifluoroethanol as described above in Examples 15-16 were spray coated with PTFEP in an MP-I Precision Coater™ fluidized bed coating apparatus (available from Aeromatic-Fielder
AG, Bubendor, Switzerland). The particles were picked up by an air stream (40-60 m /h, 55°
C incoming temperature) and spray coated with PTFEP solution microdroplets from an air-fluid coaxial nozzle. The solution composition was 0.835 g PTFEP, 550 g ethyl acetate and 450 g isopentyl acetate. It was fed through the nozzle's 1.3 mm wide inner bore at a rate of 10-30 g/min. At the nozzle head, it was atomized with pressurized air (2.5 bar). The total amount of spray solution (3kg) was calculated to coat the particle with a 150 nm thick PTFEP film.
EXAMPLE 19 [0123] The dry potassium salt microparticles of Examples 15-16, which were partially esterified with trifluoroethanol as described above, were spray-coated with diluted PTFEP solution in ethyl acetate in a commercially available fluidized bed coating device (see Example 16). 100 mg of such coated, dried microparticles as well as 100 mg of uncoated, dried PMA potassium salt microparticles which were partially esterified with trifluoroethanol, were immersed in about 30% aqueous cesium chloride solution, prepared by dissolving 30.O g cesium chloride in 100 ml deionized water. The supernatant liquid was decanted after 10 min. equilibrium time and the microparticles were washed thoroughly with deionized water, equilibrated for another 10 min., decanted and suspended in 3 ml surfactant free phosphate buffer solution at a pH of 7.4. Density of the particles in solution was measured for matching density in a contrast agent solution. To each type of microparticle was added a contrast agent solution which included a ratio of 3.5 ml of Imeron® 300 contrast agent (density 1.335 g/ml) and 4 ml phosphate buffered saline (density 1.009 g/ml). Both hydrogel types reached buoyancy at levels of 45-50% contrast agent in solution. This corresponds to an increased density of the microparticles of 1.16 g/ml.
EXAMPLE 20
[0124] Microparticles were formed in accordance with the procedure of Example 15 with the exception that an exterior barium sulfate coating was prepared on the microparticles after neutralization of the particles and the microparticles were not dried after neutralization prior to the barium sulfate coating step. To prepare the barium sulfate coating, 2500 ml hydrated particles were subjected to 2000 ml of 0.5 M sodium sulfate (Na2SC«4) solution and saturated for 4-12 hours. To the particle suspension was then slowly added 1950 ml of 0.5 M barium chloride (BaCtø) solution under stirring at room temperature. After washing with excess deionized water, the resulting particles in a swollen state included a barium sulfate powder coated surface. The particles were then dried and esterified in the manner noted above in Example 16. The particles were then coated using the fluidized bed process of Example 21 below. The resulting microparticles were externally coated with a non-adhesive barium sulfate powder. Barium sulfate coatings prepared in accordance with this invention and procedure are capable of preventing particle agglomeration during drying and also increase density. The concentration and ratios of barium sulfate may be varied to provide different results and a use of an excess of sodium sulfate can minimize residual barium chloride. The particles formed in accordance with this example were effectively washed with hot water to minimize excess barium sulfate powder that may contaminate vials, etc. The barium sulfate works effectively to prevent adhesion of particles prior to drying to assist in fluidization of the hydrated microparticles.
EXAMPLE 21
[0125] Fluidized bed coating of barium sulfate powdered beads was performed using polymethacrylate beads with a surface layer of barium sulfate formed in accordance with Example 20 but an excess of barium chloride was used such that barium ions diffused inside the core and formed a precipitate inside the hydrogel core.
[0126] In preparing the particles, the same procedure for barium sulfate coated particles set forth in Example 20 was repeated with the exception that the order of addition was reversed. Thus, 2500 ml hydrated microparticles were suspended in 2500 ml deionized water and slowly, 5 mol % (200 ml) of a 0.5 M (BaCtø) were added slowly under stirring. The addition was performed within a time period of three minutes to prevent irreversible barium aery late formation taking place. The suspension was then immediately quenched with the double amount (400 ml) of 0.5 M sodium sulfate (Na2SC>4) solution under stirring at room temperature. Afterwards, the particles were washed three times with 2 L of deionized water each. This procedure precipitated barium sulfate inside the particles.
[0127] The resulting precipitate was precipitated within the pores of the hydrogel core and could not be removed by multiple washings with water. The particles thus formed were found to have a permanent increased density in contrast to unmodified particles. The density increase was controllable by the molar amount of barium chloride used. Amounts ranging from 0-15 mol % of barium chloride were used reproducibly with this procedure. It was observed during evaluations of this procedure that, if the time period of addition exceeded 5 minutes, based upon the diffusion speed of barium chloride within the particles, the outer pores of the hydrogel core became irreversibly crosslinked, thereby preventing the barium sulfate precipitate inside from leaching out. This effect was visible by optical microscopy as the "diffusion front" of the barium sulfate was clearly visible as a white band inside the particle, whereas the surface remained clear.
[0128] Both Examples 20 and 21 provided particles having anti-adhesive properties that tend not to agglomerate during drying processes; therefore avoiding surface damage. Generally, such an advantage helps minimize the amount of particles needed for a fluidized bed procedure as the particles can be fluidized without being completely dried. The residual water content may be increased up to 1:1 based on dry weight without agglomeration. The Examples also produce particles with increased density properties wherein the density change appears to be permanent.
[0129] It should also be understood according to this disclosure that generally when applying the procedures noted herein, barium sulfate may be introduced in accordance with the invention in a range of from 0 to about 100 mol%, and preferably 0 to about 15 mol% to provide particles that have preferred elasticity, density and mechanical stability properties. [0130] The particles formed according to this Example having a barium sulfate load inside the core were then esterified according to Example 16 and vacuum-dried. 30Og of the dry beads were suspended in 300 g water which was completely absorbed by the polymethacrylate cores within less than 1 min while the barium sulfate powdered particle surface appeared dry and the particles showed no tendency to agglomerate.
[0131] The particles (now 600 g) with 50 weight percent (wt%) water inside were spray coated with APTMS/ PTFEP in an MP-I Precision Coater™ fluidized bed coating apparatus according to Example 18 with the exception that an additional aminosilane adhesion promoter was used. The process equipment used was the same as that of Example 18, but the coating provided included three different layers. A bottom coating of 3-aminopropyltrimethoxysilane (APTMS) adhesion promoter was provided upon which was a second coating layer of a mixture of APTMS and PTFEP and a third, top coating layer of PTFEP. All three spray solutions were prepared by dissolving the coating material in isopentyl acetate and ethyl acetate in a 1 : 1 weight percentage ratio mixture. The first solution included 35 μl APTMS dissolved in 200 g acetate mixture. The second solution included 25 μl APTMS and 125 mg PTFEP in 150 mg of the acetate mixture and the third included 50 mg PTFEP in 60 g of the acetate mixture. The spray solution quantities and concentrations refer to the coating of a 300 g batch with 350 μm particles. The absorbed water evaporated at a rate of 5 - 10 g/min. The process was stopped after 30 min when the coating thickness reached 100 nm and the residual water content was 18.4 wt%.
EXAMPLE 22
[0132] The absorption of organic dyes was tested on microparticles formed according to Example 15. To 2 ml of phosphate buffered saline solution containing 1 ml of hydrated beads was provided an amount of 5-10 μl of the respective dye as a 10 millimolar solution in ethanol. The samples were incubated for 30-60 minutes at room temperature under gentle shaking of the vial. Supernatant liquid was discarded and particles were washed three times with 2 ml of either deionized water, saline or PBS buffer solution prior to visualization with optical and fluorescence microscopy. The dyes tested included triphenylmethane derived dyes such as Fluoescein diacetate and Rhodamin 6G which were evaluated along with carbocyanine based dyes such as DiI. The triphenylmethane based Fluorecein and Rhoamine dyes exhibited a specific affinity for the hydrophilic PMMA hydrogel core through ionic interactions. They were able to easily withstand the rigorous conditions of repeated washing and steam sterilization without substantial leaching. [0133] The carbocyanine dye DiI on the other hand exhibited a high selectivity for the hydrophobic PTFEP shell, without penetrating the hydrophilic PMAA core material. Thus with the subsequent staining employing the combination of DiI and Fluorescein diacetate both core and shell could be simultaneously visualized employing a fluorescence optical microscope. As a result, this procedure provides a fast, sensitive fluorescence-staining assay for the PMAA particles that makes core and shell simultaneously visible under conditions encountered in actual application. It further enables assessment of the mechanical-elastic stress or damage to the PTFEP shell. It further shows the affinity of certain classes of dyes for the various components of the particle.
[0134] It will be appreciated by those possessing ordinary skill in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.

Claims

CLAIMS We claim:
1. A particle for use in a therapeutic and/or diagnostic procedure, the particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
2. The particle according to claim 1 , wherein the particle is a porous particle.
3. The particle according to claim 1, wherein the particle comprises a core and an outer coating, wherein the core comprises a hydrogel formed from an acrylic-based polymer and the coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
4. The particle according to claim 3, wherein the core further comprises barium sulfate.
5. The particle according to claim 4, wherein the core is surrounded by an inner coating of barium sulfate and the outer coating surrounds the inner coating of barium sulfate.
6. The particle according to claim 4, wherein the barium sulfate is absorbed into the core.
7. The particle according to claim 3, wherein the particle further comprises an agent for increasing density of the particle.
8. The particle according to claim 7, wherein the agent is selected from the group consisting of deuterium oxide, cesium, at least one organic dye, barium sulfate, and combinations thereof.
9. A method of minimizing blood flow to a tissue in a mammal comprising occluding at least a portion of a blood vessel of the mammal with at least one particle, wherein the particle comprises a poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
10. The method according to claim 9, wherein the particle comprises a core and an outer coating, wherein the core comprises a hydrogel formed from an acrylic-based polymer and the outer coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
11. The method according to claim 10, wherein the particle core further comprises barium sulfate as coating and/or absorbed within the core.
12. A method of delivering an active agent to a localized area within a body of a mammal comprising contacting the localized area with at least one of a particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and an active agent, such that an effective amount of the active agent is exposed to the localized area.
13. The method according to claim 12, wherein the particle comprises a core and an outer coating and the active agent is delivered through the outer coating, and wherein the outer coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
14. The method according to claim 13, wherein the particle core further comprises barium sulfate as coating and/or absorbed within the core.
15. The method according to claim 12, wherein the particle comprises a hydrogel acrylic-based polymer core and an outer coating, and the active agent is delivered in the core and diffuses through the outer coating, and wherein the outer coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
16. A sustained release formulation of an active agent for oral administration, the formulation comprising a polymer capsule and an active agent, wherein the polymeric capsule comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof.
17. The sustained release formulation according to claim 16, wherein the polymeric capsule comprises a core and a coating surrounding the core, wherein the coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and the core comprises an acrylic-based polymer hydrogel.
18. The method according to claim 17, wherein the particle core further comprises barium sulfate as coating and/or absorbed within the core.
19. A method of tracing the passage of a particle through a blood vessel in a mammal, the method comprising injecting into the bloodstream of a mammal at least one tracer particle, the tracer particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and a contrast agent, and imaging the route of the particle.
20. The method according to claim 19, wherein the tracer particle comprises a core and a coating surrounding the core, wherein the coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and the core comprises an acrylic-based polymer hydrogel.
21. The method according to claim 20, wherein the particle core further comprises barium sulfate as coating and/or diffused within the core.
22. The method according to claim 19, wherein the contrast agent is selected from the group consisting of barium sulfate, tantalum compounds, gadolinium compounds and iodine- containing compounds.
23. A method of enhanced ultrasound imaging comprising administering to an ultrasound subject at least one hollow microcapsule comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof to an area of the ultrasound subject, and imaging the area of the subject using ultrasound.
24. A method of delivering an active agent to a localized area within the body of a mammal comprising contacting the localized area with at least one of a particle comprising poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and an active agent, such that an effective amount of the active agent is exposed to the localized area, wherein the particle comprises an agent to increase density.
25. The method according to claim 24, wherein the agent to increase density is selected from the group consisting of deuterium oxide, cesium, at least one organic dye, barium sulfate, and combinations thereof.
26. The method according to claim 24, wherein the particle comprises an outer coating and a core, wherein the outer coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and the core comprises an acrylic-based polymer hydrogel, wherein the particle is pre-treated with cesium chloride to provide cesium to the particle.
27. The method according to claim 24, wherein the particle comprises an outer coating and a core, wherein the outer coating comprises poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and the core comprises an acrylic-based polymer hydrogel and barium sulfate.
28. The method according to claim 27, wherein the barium sulfate is present as a coating on the core.
29. The method according to claim 27, wherein the barium sulfate is diffused within the core.
30. A method for minimizing agglomeration and/or aggregation of particles formed from acrylic-based polymers, comprising providing barium sulfate to the core and/or surface of the particles.
31. The method according to claim 30, wherein the particles comprise and outer coating of poly[bis(trifluoroethoxy) phosphazene] and/or a derivative thereof and the method further comprises minimizing damage to the outer coating.
PCT/IB2005/004007 2004-10-25 2005-10-24 Loadable polyphosphazene-comprising particles for therapeutic and/or diagnostic applications and methods of preparing and using the same WO2006046155A2 (en)

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Cited By (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080102029A1 (en) * 2004-10-25 2008-05-01 Celonova Biosciences, Inc. Loadable Polymeric Particles For Enhanced Imaging In Clinical Applications And Methods Of Preparing And Using The Same
US20080113029A1 (en) * 2004-10-25 2008-05-15 Celonova Biosciences, Inc. Color-Coded and Sized Loadable Polymeric Particles for Therapeutic and/or Diagnostic Applications and Methods of Preparing and Using the Same
WO2007090130A3 (en) * 2006-01-30 2008-10-09 Surgica Corp Porous intravascular embolization particles and related methods
WO2009054854A1 (en) * 2007-10-26 2009-04-30 Celonova Biosciences, Inc. Loadable polymeric particles for bone augmentation and methods of preparing and using the same
WO2009054853A1 (en) * 2007-10-26 2009-04-30 Celonova Biosciences, Inc. Loadable polymeric particles for cosmetic and reconstructive tissue augmentation applications and methods of preparing and using the same
WO2009058147A1 (en) * 2007-10-31 2009-05-07 Celonova Biosciences, Inc. Loadable polymeric particles for therapeutic use in erectile dysfunction
WO2009058135A1 (en) * 2007-10-30 2009-05-07 Celonova Biosciences, Inc. Loadable polymeric microparticles for therapeutic use in alopecia and methods of preparing and using the same
WO2009058134A1 (en) * 2007-10-30 2009-05-07 Celonova Biosciences, Inc. Loadable polymeric particles for marking or masking individuals and methods of preparing and using the same
WO2009067105A1 (en) * 2007-10-24 2009-05-28 Celonova Biosciences, Inc. Loadable polymeric particles for enhanced imaging in clinical applications and methods of preparing and using the same
JP2010534266A (en) * 2007-07-25 2010-11-04 セロノバ バイオサイエンシーズ, インコーポレイテッド Color-coded, size-sorted, fillable polymer particles for therapeutic and / or diagnostic applications, and methods for preparing and using them
EP2252218A2 (en) * 2008-02-11 2010-11-24 CeloNova Biosciences, Inc. Tissue-fastening articles and devices, and related methods
US7922764B2 (en) 2006-10-10 2011-04-12 Celonova Bioscience, Inc. Bioprosthetic heart valve with polyphosphazene
US8318209B2 (en) 2004-10-25 2012-11-27 Celonova Biosciences Germany Gmbh Loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US9080146B2 (en) 2001-01-11 2015-07-14 Celonova Biosciences, Inc. Substrates containing polyphosphazene as matrices and substrates containing polyphosphazene with a micro-structured surface
WO2017158482A1 (en) 2016-03-14 2017-09-21 Biocompatibles Uk Limited Emulsion comprising particles
US9820672B2 (en) 2010-11-11 2017-11-21 Koninklijke Philips N.V. Colon screening by using magnetic particle imaging
US10265271B2 (en) 2000-03-24 2019-04-23 Biosphere Medical, Inc. Microspheres for the treatment of a prostate hyperplasia by active embolization
US10293063B2 (en) 2005-05-09 2019-05-21 Merit Medical Systems, Inc. Compositions and methods using microspheres and non-ionic contrast agents
US10448955B2 (en) 2006-01-30 2019-10-22 Biosphere Medical, Inc. Compressible intravascular embolization particles and related methods and delivery systems
US10973770B2 (en) 2004-10-25 2021-04-13 Varian Medical Systems, Inc. Color-coded and sized loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US11426355B2 (en) 2004-10-25 2022-08-30 Varian Medical Systems, Inc. Color-coded and sized loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same

Families Citing this family (47)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080226723A1 (en) * 2002-07-05 2008-09-18 Celonova Biosciences, Inc. Loadable Polymeric Particles for Therapeutic Use in Erectile Dysfunction and Methods of Preparing and Using the Same
US20040166088A1 (en) * 2003-01-15 2004-08-26 Shalaby Shalaby W. Polymeric precursors of non-absorbable, in situ-forming hydrogels and applications thereof
US7702764B1 (en) * 2004-01-30 2010-04-20 Cisco Technology, Inc. System and method for testing network protocols
DE102005023094A1 (en) * 2005-05-13 2006-11-16 Nies, Berthold, Dr. Bioactive bone cement e.g. for implantation into bones, made by adding small amounts of polymerizable monomers containing anionic groups which cause cement surface to mineralize after being incubated in simulated body fluid
US20080181965A1 (en) * 2006-04-10 2008-07-31 Leon Jeffrey W Loaded latex optical molecular imaging probes
US20080234810A1 (en) * 2006-06-28 2008-09-25 Abbott Cardiovascular Systems Inc. Amorphous Glass-Coated Drug Delivery Medical Device
US20090111763A1 (en) * 2007-10-26 2009-04-30 Celonova Biosciences, Inc. Loadable polymeric particles for bone augmentation and methods of preparing and using the same
US20090110738A1 (en) * 2007-10-26 2009-04-30 Celonova Biosciences, Inc. Loadable Polymeric Particles for Cosmetic and Reconstructive Tissue Augmentation Applications and Methods of Preparing and Using the Same
US20090110730A1 (en) * 2007-10-30 2009-04-30 Celonova Biosciences, Inc. Loadable Polymeric Particles for Marking or Masking Individuals and Methods of Preparing and Using the Same
US20090110731A1 (en) * 2007-10-30 2009-04-30 Celonova Biosciences, Inc. Loadable Polymeric Microparticles for Therapeutic Use in Alopecia and Methods of Preparing and Using the Same
US20090274764A1 (en) * 2008-04-30 2009-11-05 Do Hiep Q Hollow Foam Beads for Treatment of Glioblastoma
US8690943B2 (en) 2008-08-20 2014-04-08 Allergan, Inc. Self-sealing shell for inflatable prostheses
WO2010025190A1 (en) * 2008-08-26 2010-03-04 Liotta Lance A Hydrogel nanoparticle base immunoassay
KR101061224B1 (en) * 2008-10-08 2011-08-31 포항공과대학교 산학협력단 캡슐 Capsule for measuring flow information using lines
EP3695835A1 (en) 2009-02-03 2020-08-19 Microbion Corporation Bismuth-thiols as antiseptics for epithelial tissues, acute and chronic wounds, bacterial biofilms and other indications
US9028878B2 (en) 2009-02-03 2015-05-12 Microbion Corporation Bismuth-thiols as antiseptics for biomedical uses, including treatment of bacterial biofilms and other uses
EP2443101B1 (en) * 2009-06-19 2019-03-27 Lance Liotta Bait chemistries in hydrogel particles for serum biomarker analysis
KR101821833B1 (en) * 2010-02-03 2018-01-25 마이크로비온 코포레이션 Bismuth-thiols as antiseptics for biomedical uses, including treatment of bacterial biofilms and other uses
JP2013518674A (en) 2010-02-05 2013-05-23 アラーガン、インコーポレイテッド Inflatable prosthesis and method of making the same
US8636797B2 (en) 2010-02-05 2014-01-28 Allergan, Inc. Inflatable prostheses and methods of making same
US20110208190A1 (en) * 2010-02-23 2011-08-25 University Of Connecticut Natural Polymer-Based Porous Orthopedic Fixation Screw for Bone Repair and Regeneration
EP3401679A1 (en) * 2011-04-20 2018-11-14 Life Technologies Corporation Methods, compositions and systems for sample deposition
EP2861257B1 (en) 2012-06-14 2021-12-08 Microvention, Inc. Polymeric treatment compositions
CN104717983B (en) 2012-10-15 2018-09-18 微仙美国有限公司 It polymerize therapeutic combination
JP6405369B2 (en) 2013-09-19 2018-10-17 テルモ株式会社 Polymer particles
KR102505172B1 (en) 2013-09-19 2023-02-28 마이크로벤션, 인코포레이티드 Polymer films
BR112016010067B1 (en) 2013-11-08 2023-01-10 Terumo Corporation POLYMER PARTICLES AND PREPARATION METHODS
CN103751857A (en) * 2014-01-22 2014-04-30 同济大学 Drug-loaded silica embolism microsphere and preparation method thereof
GB201415681D0 (en) * 2014-09-04 2014-10-22 Cambridge Entpr Ltd And President And Fellows Of Harvard College Protien Capsules
WO2016154592A1 (en) 2015-03-26 2016-09-29 Microvention, Inc. Embiolic particles
US10368874B2 (en) 2016-08-26 2019-08-06 Microvention, Inc. Embolic compositions
US10201632B2 (en) 2016-09-28 2019-02-12 Terumo Corporation Polymer particles
US10344588B2 (en) 2016-11-07 2019-07-09 Saudi Arabian Oil Company Polymeric tracers
WO2019074965A1 (en) 2017-10-09 2019-04-18 Microvention, Inc. Radioactive liquid embolic
SG11202100823RA (en) 2018-07-31 2021-02-25 Microbion Corp Bismuth-thiol compositions and methods of use
IL280413B1 (en) 2018-07-31 2024-10-01 Microbion Corp Bismuth-thiol compositions and methods for treating wounds
CN108956897B (en) * 2018-08-29 2021-10-08 西安石油大学 Experimental device and experimental method for measuring slow release rate of slow-release tracer
USD896383S1 (en) 2018-09-13 2020-09-15 Allergan, Inc. Tissue expansion device
CA3112634A1 (en) 2018-09-13 2020-03-19 Allergan, Inc. Tissue expansion device
CN109289058B (en) * 2018-10-30 2021-12-03 河北科技大学 X-ray-opaque marker barium sulfate pellet and preparation method thereof
CN111007593B (en) * 2019-05-12 2022-05-13 桂林电子科技大学 Capillary optical fiber micro-particle transport device based on thermal diffusion melting and embedding core
US11773715B2 (en) 2020-09-03 2023-10-03 Saudi Arabian Oil Company Injecting multiple tracer tag fluids into a wellbore
US11660595B2 (en) 2021-01-04 2023-05-30 Saudi Arabian Oil Company Microfluidic chip with multiple porosity regions for reservoir modeling
US11534759B2 (en) 2021-01-22 2022-12-27 Saudi Arabian Oil Company Microfluidic chip with mixed porosities for reservoir modeling
US12000278B2 (en) 2021-12-16 2024-06-04 Saudi Arabian Oil Company Determining oil and water production rates in multiple production zones from a single production well
WO2023132810A1 (en) * 2022-01-06 2023-07-13 Trakya Üni̇versi̇tesi̇ Rektörlüğü Liquid skin marker
GB2616873B (en) 2022-03-23 2024-05-22 Ide8 Ltd Superabsorbent Polymer based Biosensor Apparatus and Methods

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4592755A (en) * 1985-06-11 1986-06-03 Ethyl Corporation Mammary implant
US20030099683A1 (en) * 2000-03-18 2003-05-29 Michael Grunze Polyphosphazene derivatives
WO2004004795A1 (en) * 2002-07-05 2004-01-15 Polyzenix Gmbh Implant for transport and release for pharmacologically active agents as well as a process for producing the same

Family Cites Families (180)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US424208A (en) * 1890-03-25 Whiffletree
SE420565B (en) 1974-06-06 1981-10-19 Pharmacia Ab AID FOR INTRAVASCULAR ADMINISTRATION FOR USE IN CONNECTION WITH INTRAVASCULAR ADMINISTRATION OF A SOLUTION OR SUSPENSION OF A DIAGNOSTIC AGENT
US4107288A (en) 1974-09-18 1978-08-15 Pharmaceutical Society Of Victoria Injectable compositions, nanoparticles useful therein, and process of manufacturing same
US3949073A (en) 1974-11-18 1976-04-06 The Board Of Trustees Of Leland Stanford Junior University Process for augmenting connective mammalian tissue with in situ polymerizable native collagen solution
US4166800A (en) 1977-08-25 1979-09-04 Sandoz, Inc. Processes for preparation of microspheres
DE2905878A1 (en) 1979-02-16 1980-08-28 Merck Patent Gmbh IMPLANTATION MATERIALS AND METHOD FOR THEIR PRODUCTION
FR2482112B1 (en) 1980-05-09 1985-06-07 Pharmindustrie NOVEL HYDROPHILIC COPOLYMERS BASED ON N- (TRIS (HYDROXYMETHYL) METHYL) ACRYLAMIDE, PROCESSES FOR THEIR PREPARATION, AQUEOUS GELS OF SAID COPOLYMERS AND THEIR USE AS ION EXCHANGERS
US4698373A (en) 1981-01-21 1987-10-06 Dentsply Research & Development Corp. Stable one part dental compositions employing ipn technology
US4424208A (en) 1982-01-11 1984-01-03 Collagen Corporation Collagen implant material and method for augmenting soft tissue
US4440750A (en) 1982-02-12 1984-04-03 Collagen Corporation Osteogenic composition and method
US4582640A (en) 1982-03-08 1986-04-15 Collagen Corporation Injectable cross-linked collagen implant material
US4547390A (en) * 1982-03-12 1985-10-15 Medical Biological Sciences, Inc. Process of making implantable prosthesis material of modified polymeric acrylic (PMMA) beads coated with PHEMA and barium sulfate
US4535485A (en) 1982-03-12 1985-08-20 Medical Biological Sciences, Inc. Polymeric acrylic prothesis
SU1085993A1 (en) * 1983-01-24 1984-04-15 Московский ордена Ленина и ордена Трудового Красного Знамени химико-технологический институт им.Д.И.Менделеева Process for preparing hydrophylic polyorganophosphasenes
JPS59164723A (en) 1983-03-10 1984-09-17 Koken:Kk Substrate containing regenerated collagen fibril and its preparation
CA1225585A (en) 1983-06-30 1987-08-18 Maria T. Litvinova Composition for embolization of blood vessels
US4837285A (en) 1984-03-27 1989-06-06 Medimatrix Collagen matrix beads for soft tissue repair
US4537916A (en) 1984-06-25 1985-08-27 The Dow Chemical Company Structured latex particles which are film forming and a process for their preparation
US4557764A (en) 1984-09-05 1985-12-10 Collagen Corporation Process for preparing malleable collagen and the product thereof
US4595713A (en) 1985-01-22 1986-06-17 Hexcel Corporation Medical putty for tissue augmentation
DE3503584C1 (en) 1985-02-02 1986-06-12 Degussa Ag, 6000 Frankfurt Process for the preparation of suspension polymers
US4851046A (en) 1985-06-19 1989-07-25 University Of Florida Periodontal osseous defect repair
JPH0678434B2 (en) * 1985-10-14 1994-10-05 チッソ株式会社 Spherical particulate polyphosphazene and method for producing the same
US4728570A (en) 1985-10-29 1988-03-01 United States Surgical Corporation Calcium-hydroxide-treated polymeric implant matrial
US4803075A (en) 1986-06-25 1989-02-07 Collagen Corporation Injectable implant composition having improved intrudability
US4849285A (en) 1987-06-01 1989-07-18 Bio Med Sciences, Inc. Composite macrostructure of ceramic and organic biomaterials
US4912141A (en) 1987-07-28 1990-03-27 Kronman Joseph H Fibrous and cartilaginous tissue replacement
US4902511A (en) 1987-07-28 1990-02-20 Kronman Joseph H Fibrous and cartilaginous tissue replacement
JPH01265970A (en) 1988-04-19 1989-10-24 Shiseido Co Ltd Collagen water solution or water dispersion solution including hyaluronic acid
US4938763B1 (en) 1988-10-03 1995-07-04 Atrix Lab Inc Biodegradable in-situ forming implants and method of producing the same
US5510418A (en) 1988-11-21 1996-04-23 Collagen Corporation Glycosaminoglycan-synthetic polymer conjugates
US5162430A (en) 1988-11-21 1992-11-10 Collagen Corporation Collagen-polymer conjugates
US5304595A (en) 1988-11-21 1994-04-19 Collagen Corporation Collagen-polymer conjugates
US5306500A (en) 1988-11-21 1994-04-26 Collagen Corporation Method of augmenting tissue with collagen-polymer conjugates
DE3841401A1 (en) 1988-12-08 1990-06-13 Martin Lemperle ALLOPLASTIC IMPLANT
US5258028A (en) 1988-12-12 1993-11-02 Ersek Robert A Textured micro implants
US5395620A (en) 1989-01-31 1995-03-07 Coletica Biodegradable microcapsules having walls composed of crosslinked atelocollagen and polyholoside
US5019400A (en) 1989-05-01 1991-05-28 Enzytech, Inc. Very low temperature casting of controlled release microspheres
US5007940A (en) 1989-06-09 1991-04-16 American Medical Systems, Inc. Injectable polymeric bodies
US5158573A (en) 1989-06-09 1992-10-27 American Medical Systems, Inc. Injectable polymeric bodies
US5116387A (en) 1989-06-09 1992-05-26 American Medical Systems, Inc. Preparation of injectable polymeric bodies
US5077049A (en) 1989-07-24 1991-12-31 Vipont Pharmaceutical, Inc. Biodegradable system for regenerating the periodontium
US5487897A (en) 1989-07-24 1996-01-30 Atrix Laboratories, Inc. Biodegradable implant precursor
WO1991001720A1 (en) 1989-08-07 1991-02-21 Herman Wade Schlameus Composition and method of promoting hard tissue healing
US5143724A (en) 1990-07-09 1992-09-01 Biomatrix, Inc. Biocompatible viscoelastic gel slurries, their preparation and use
US5246698A (en) 1990-07-09 1993-09-21 Biomatrix, Inc. Biocompatible viscoelastic gel slurries, their preparation and use
DE4024371C2 (en) 1990-08-01 1994-10-13 Degussa Process for the preparation of suspension polymers using phosphonic acids or their ammonium or alkali metal salts as dispersing aid additives
US5562099A (en) * 1990-10-05 1996-10-08 Massachusetts Institute Of Technology Polymeric microparticles containing agents for imaging
US5149543A (en) 1990-10-05 1992-09-22 Massachusetts Institute Of Technology Ionically cross-linked polymeric microcapsules
US5487390A (en) 1990-10-05 1996-01-30 Massachusetts Institute Of Technology Gas-filled polymeric microbubbles for ultrasound imaging
US5342557A (en) 1990-11-27 1994-08-30 United States Surgical Corporation Process for preparing polymer particles
US6391343B1 (en) 1991-01-15 2002-05-21 Hemosphere, Inc. Fibrinogen-coated particles for therapeutic use
CA2060223C (en) 1991-02-12 1999-07-20 Clarence C. Lee Injectable medical lubricating fluid composition and method of use
FR2676927B1 (en) 1991-05-29 1995-06-23 Ibf MICROSPHERES FOR USE IN THERAPEUTIC VASCULAR OCCLUSIONS AND INJECTABLE SOLUTIONS CONTAINING THEM.
CA2071137A1 (en) 1991-07-10 1993-01-11 Clarence C. Lee Composition and method for revitalizing scar tissue
JP3356447B2 (en) 1991-10-16 2002-12-16 テルモ株式会社 Vascular lesion embolic material composed of dried polymer gel
US7060287B1 (en) 1992-02-11 2006-06-13 Bioform Inc. Tissue augmentation material and method
US6537574B1 (en) 1992-02-11 2003-03-25 Bioform, Inc. Soft tissue augmentation material
US7968110B2 (en) 1992-02-11 2011-06-28 Merz Aesthetics, Inc. Tissue augmentation material and method
AU666712B2 (en) 1992-02-28 1996-02-22 Cohesion Technologies, Inc. Injectable ceramic compositions and methods for their preparation and use
EP0632820B1 (en) 1992-02-28 2000-05-17 Collagen Corporation High concentration homogenized collagen compositions
US5204382A (en) 1992-02-28 1993-04-20 Collagen Corporation Injectable ceramic compositions and methods for their preparation and use
US6235313B1 (en) 1992-04-24 2001-05-22 Brown University Research Foundation Bioadhesive microspheres and their use as drug delivery and imaging systems
WO1994006460A1 (en) 1992-09-21 1994-03-31 Vitaphore Corporation Embolization plugs for blood vessels
CA2158638C (en) 1993-03-19 1999-11-30 Bengt Agerup A composition and a method for tissue augmentation
US5562909A (en) 1993-07-12 1996-10-08 Massachusetts Institute Of Technology Phosphazene polyelectrolytes as immunoadjuvants
US5397352A (en) 1993-08-27 1995-03-14 Burres; Steven Method of recollagenation
US5500161A (en) 1993-09-21 1996-03-19 Massachusetts Institute Of Technology And Virus Research Institute Method for making hydrophobic polymeric microparticles
US5681873A (en) 1993-10-14 1997-10-28 Atrix Laboratories, Inc. Biodegradable polymeric composition
US5962427A (en) 1994-02-18 1999-10-05 The Regent Of The University Of Michigan In vivo gene transfer methods for wound healing
US5464932A (en) 1994-04-15 1995-11-07 The Penn State Research Foundation Photocrosslinkable polyphosphazenes and their use as microencapsulation materials
FR2721198B1 (en) 1994-06-16 1996-10-31 Caravel Jean Baudoin Flexible implantable prosthesis, used in surgery for volume increase or soft tissue reconstruction, in particular breast prosthesis.
US5855895A (en) 1995-06-07 1999-01-05 Virus Research Institute Polyphosphazene polyelectrolyte immunoadjuvants
US5451406A (en) 1994-07-14 1995-09-19 Advanced Uroscience, Inc. Tissue injectable composition and method of use
US5516532A (en) 1994-08-05 1996-05-14 Children's Medical Center Corporation Injectable non-immunogenic cartilage and bone preparation
AU706434B2 (en) 1994-10-18 1999-06-17 Ethicon Inc. Injectable liquid copolymers for soft tissue repair and augmentation
US6335383B1 (en) 1994-10-18 2002-01-01 Ethicon, Inc. Microdispersions for coating surgical devices
US5599852A (en) 1994-10-18 1997-02-04 Ethicon, Inc. Injectable microdispersions for soft tissue repair and augmentation
EP0713707A1 (en) 1994-11-23 1996-05-29 Collagen Corporation In situ crosslinkable, injectable collagen composition for tissue augmention
US6281015B1 (en) 1994-12-16 2001-08-28 Children's Medical Center Corp. Localized delivery of factors enhancing survival of transplanted cells
US6962979B1 (en) 1995-03-14 2005-11-08 Cohesion Technologies, Inc. Crosslinkable biomaterial compositions containing hydrophobic and hydrophilic crosslinking agents
US6337389B1 (en) 1995-03-17 2002-01-08 Bioscience Consultants, L.L.C. Method and process for the production of collagen preparations from invertebrate marine animals and compositions thereof
US6214331B1 (en) 1995-06-06 2001-04-10 C. R. Bard, Inc. Process for the preparation of aqueous dispersions of particles of water-soluble polymers and the particles obtained
US6284284B1 (en) 1995-06-06 2001-09-04 Advanced Tissue Sciences, Inc. Compositions and methods for production and use of an injectable naturally secreted extracellular matrix
US6413536B1 (en) 1995-06-07 2002-07-02 Southern Biosystems, Inc. High viscosity liquid controlled delivery system and medical or surgical device
US5776193A (en) 1995-10-16 1998-07-07 Orquest, Inc. Bone grafting matrix
US5752974A (en) 1995-12-18 1998-05-19 Collagen Corporation Injectable or implantable biomaterials for filling or blocking lumens and voids of the body
US6458889B1 (en) 1995-12-18 2002-10-01 Cohesion Technologies, Inc. Compositions and systems for forming crosslinked biomaterials and associated methods of preparation and use
US5955143A (en) 1995-12-21 1999-09-21 Drexel University Hollow polymer microcapsules and method of producing the same
FR2747682B1 (en) 1996-04-17 1998-06-05 Atochem Elf Sa PROCESS FOR THE PREPARATION OF POLYMER POWDERS BY SUSPENSION POLYMERIZATION
US5840290A (en) 1996-05-30 1998-11-24 University Of Florida Research Foundation Injectable bio-active glass in a dextran suspension
US6190684B1 (en) 1996-05-30 2001-02-20 University Of Florida Research Foundation, Inc. Injectable bio-active glass in a dextran suspension
WO1997049387A1 (en) 1996-06-27 1997-12-31 G.D. Searle And Co. Particles comprising amphiphilic copolymers, having a cross-linked shell domain and an interior core domain, useful for pharmaceutical and other applications
US6666892B2 (en) 1996-08-23 2003-12-23 Cook Biotech Incorporated Multi-formed collagenous biomaterial medical device
US6066325A (en) 1996-08-27 2000-05-23 Fusion Medical Technologies, Inc. Fragmented polymeric compositions and methods for their use
US6063061A (en) 1996-08-27 2000-05-16 Fusion Medical Technologies, Inc. Fragmented polymeric compositions and methods for their use
AU4648697A (en) 1996-09-23 1998-04-14 Chandrashekar Pathak Methods and devices for preparing protein concentrates
US5785642A (en) * 1996-10-18 1998-07-28 Micro Therapeutics, Inc. Methods for treating urinary incontinence in mammals
BR9606075C1 (en) 1996-12-19 2002-05-07 Mateus Sommer Neto Injectable composition for medical use.
EP0975285B1 (en) 1997-04-01 2008-10-01 CAP Biotechnology, Inc. Calcium phosphate microcarriers and microspheres
US7303756B1 (en) 1997-06-05 2007-12-04 Bertex Pharma Gmbh Multiphase system
US7192984B2 (en) 1997-06-17 2007-03-20 Fziomed, Inc. Compositions of polyacids and polyethers and methods for their use as dermal fillers
US6309420B1 (en) 1997-10-14 2001-10-30 Parallax Medical, Inc. Enhanced visibility materials for implantation in hard tissue
US6423343B1 (en) 1998-01-23 2002-07-23 Usbiomaterials Corporation Bioactive glass treatment of inflammation in skin conditions
DE69922352T2 (en) 1998-03-06 2005-12-15 Biosphere Medical, Inc., Rockland IMPLANTABLE PARTICLES FOR INCREASING TISSUE VOLUME AND TREATING GASTROÖSOPHAGAL REFLUX, INCONTINENCE AND SKIN WRINKLES
US6660301B1 (en) 1998-03-06 2003-12-09 Biosphere Medical, Inc. Injectable microspheres for dermal augmentation and tissue bulking
US6207171B1 (en) 1998-03-27 2001-03-27 Avant Immunotherapeutics, Inc. Polyphosphazene microspheres
US6933326B1 (en) 1998-06-19 2005-08-23 Lifecell Coporation Particulate acellular tissue matrix
US6514534B1 (en) 1998-08-14 2003-02-04 Incept Llc Methods for forming regional tissue adherent barriers and drug delivery systems
GB2345638A (en) 1998-09-11 2000-07-19 Tissue Science Lab Limited Injectable collagen compositions
US6531152B1 (en) 1998-09-30 2003-03-11 Dexcel Pharma Technologies Ltd. Immediate release gastrointestinal drug delivery system
IL142432A0 (en) 1998-10-05 2002-03-10 Penn State Res Found Compositions and methods for enhancing receptor-mediated cellular internalization
FR2784580B1 (en) 1998-10-16 2004-06-25 Biosepra Inc POLYVINYL-ALCOHOL MICROSPHERES AND METHODS OF MAKING THE SAME
US6261573B1 (en) 1998-10-30 2001-07-17 Avant Immunotherapeutics, Inc. Immunoadjuvants
US6238335B1 (en) 1998-12-11 2001-05-29 Enteric Medical Technologies, Inc. Method for treating gastroesophageal reflux disease and apparatus for use therewith
US6251064B1 (en) 1998-12-11 2001-06-26 Enteric Medical Technologies, Inc. Method for creating valve-like mechanism in natural body passageway
US20020016637A1 (en) 1998-12-16 2002-02-07 Mark A. Anton Soft tissue filler
IT1302534B1 (en) 1998-12-21 2000-09-05 Fidia Advanced Biopolymers Srl INJECTABLE, BIOCOMPATIBLE AND BIODEGRADABLE COMPOSITIONS INCLUDING AT LEAST A DERIVATIVE OF HYALURONIC ACID, CHONDROGENIC CELLS, FOR
EP1031354A3 (en) 1999-01-19 2003-02-05 Rohm And Haas Company Polymeric MRI Contrast agents
US6662805B2 (en) 1999-03-24 2003-12-16 The Johns Hopkins University Method for composite cell-based implants
US6689823B1 (en) 1999-03-31 2004-02-10 The Brigham And Women's Hospital, Inc. Nanocomposite surgical materials and method of producing them
US6423818B1 (en) 1999-07-30 2002-07-23 Takehisa Matsuda Coumarin endcapped absorbable polymers
US7025980B1 (en) 1999-09-14 2006-04-11 Tepha, Inc. Polyhydroxyalkanoate compositions for soft tissue repair, augmentation, and viscosupplementation
US6277392B1 (en) 1999-09-16 2001-08-21 Carbon Medical Technologies, Inc. Tissue injectable composition
US6431174B1 (en) 2000-08-10 2002-08-13 Pi Medical, Inc. Method and apparatus to treat conditions of the naso-pharyngeal area
US6458387B1 (en) 1999-10-18 2002-10-01 Epic Therapeutics, Inc. Sustained release microspheres
US7004977B2 (en) 1999-11-24 2006-02-28 A Enterprises, Inc. Soft tissue substitute and method of soft tissue reformation
EP1263803B1 (en) 2000-03-13 2007-09-19 BioCure, Inc. Embolic compositions
US7160931B2 (en) 2000-03-15 2007-01-09 Yu-Ling Cheng Thermally reversible implant and filler
US7338657B2 (en) 2001-03-15 2008-03-04 Biosphere Medical, Inc. Injectable microspheres for tissue construction
US6436424B1 (en) 2000-03-20 2002-08-20 Biosphere Medical, Inc. Injectable and swellable microspheres for dermal augmentation
ES2551164T3 (en) 2000-03-24 2015-11-16 Biosphere Medical, Inc. Microspheres for active embolization
US6263930B1 (en) 2000-04-11 2001-07-24 Scott A. Wiley Stump grinder
JP2004500918A (en) * 2000-04-11 2004-01-15 ポリゼニックス ゲーエムベーハー Poly-tri-fluoro-ethoxy polyphosphazene covering and film
US6682760B2 (en) 2000-04-18 2004-01-27 Colbar R&D Ltd. Cross-linked collagen matrices and methods for their preparation
US6869445B1 (en) 2000-05-04 2005-03-22 Phillips Plastics Corp. Packable ceramic beads for bone repair
US6423332B1 (en) 2000-05-26 2002-07-23 Ethicon, Inc. Method and composition for deforming soft tissues
US7144414B2 (en) 2000-06-27 2006-12-05 Smith & Nephew, Inc. Surgical procedures and instruments
US6620185B1 (en) 2000-06-27 2003-09-16 Smith & Nephew, Inc. Surgical procedures and instruments
WO2002011696A2 (en) 2000-08-08 2002-02-14 Ev & M Active tissue augmentation materials and method
EP1179353A1 (en) * 2000-08-11 2002-02-13 B. Braun Melsungen Ag Antithrombogenic implants with coating of polyphosphazenes and a pharmacologically active agent
US6858634B2 (en) 2000-09-15 2005-02-22 Monsanto Technology Llc Controlled release formulations and methods for their production and use
US20040047892A1 (en) 2000-11-15 2004-03-11 Desrosiers Eric Andre Filler composition for soft tissue augmentation and reconstructive surgery
US6767637B2 (en) 2000-12-13 2004-07-27 Purdue Research Foundation Microencapsulation using ultrasonic atomizers
DE10100961B4 (en) * 2001-01-11 2005-08-04 Polyzenix Gmbh Body-compatible material and substrate coated with this material for the cultivation of cells and artificial organic implants constructed or grown from cells
US6949251B2 (en) 2001-03-02 2005-09-27 Stryker Corporation Porous β-tricalcium phosphate granules for regeneration of bone tissue
US20070191964A1 (en) 2001-04-04 2007-08-16 Arthrocare Corporation Enhanced visibility materials for implantation in hard tissue
GB0115320D0 (en) 2001-06-22 2001-08-15 Univ Nottingham Matrix
US6967234B2 (en) 2002-12-18 2005-11-22 Ethicon, Inc. Alkyd-lactone copolymers for medical applications
IL159624A0 (en) 2001-06-29 2004-06-01 Medgraft Microtech Inc Biodegradable injectable implants and related methods of manufacture and use
US7131997B2 (en) 2002-03-29 2006-11-07 Scimed Life Systems, Inc. Tissue treatment
US7094369B2 (en) 2002-03-29 2006-08-22 Scimed Life Systems, Inc. Processes for manufacturing polymeric microspheres
US7053134B2 (en) 2002-04-04 2006-05-30 Scimed Life Systems, Inc. Forming a chemically cross-linked particle of a desired shape and diameter
US6713646B2 (en) 2002-04-12 2004-03-30 Biosphere Medical Degradable crosslinkers, and degradable crosslinked hydrogels comprising them
US7271234B2 (en) 2002-04-24 2007-09-18 Rutgers, The State University Of New Jersey Polyarylates for drug delivery and tissue engineering
US7838699B2 (en) 2002-05-08 2010-11-23 Biosphere Medical Embolization using degradable crosslinked hydrogels
US20040028676A1 (en) 2002-08-06 2004-02-12 Klein Dean A. Swallowing system tissue modifier
US7026374B2 (en) 2002-06-25 2006-04-11 Aruna Nathan Injectable microdispersions for medical applications
US7272144B2 (en) 2002-06-26 2007-09-18 Arris International, Inc. Method and apparatus for queuing data flows
US20050136093A1 (en) * 2002-07-05 2005-06-23 Polyzenix Gmbh Implant for transport and release for pharmacologically active agents as well as a process for producing the same
US6884905B2 (en) 2002-07-23 2005-04-26 Biosphere Medical Degradable carbamate-containing bis(acryloyl) crosslinkers, and degradable crosslinked hydrogels comprising them
US6872799B2 (en) 2002-12-18 2005-03-29 Ethicon, Inc. Functionalized polymers for medical applications
US6866860B2 (en) 2002-12-19 2005-03-15 Ethicon, Inc. Cationic alkyd polyesters for medical applications
US7655048B2 (en) 2003-04-02 2010-02-02 Furlow Jr Leonard T Materials and methods for soft tissue augmentation
US20050037047A1 (en) 2003-08-11 2005-02-17 Young-Ho Song Medical devices comprising spray dried microparticles
EP1691852A2 (en) 2003-11-10 2006-08-23 Angiotech International AG Medical implants and fibrosis-inducing agents
US20050208095A1 (en) 2003-11-20 2005-09-22 Angiotech International Ag Polymer compositions and methods for their use
WO2006036203A2 (en) * 2004-04-20 2006-04-06 Parallel Solutions, Inc. Polyphosphazenes including ionic or ionizable moieties and fluorine-containing moieties
TW200603843A (en) 2004-04-20 2006-02-01 Technology Dev Company Ltd Tissue enhancement implant and method
US7244270B2 (en) 2004-09-16 2007-07-17 Evera Medical Systems and devices for soft tissue augmentation
CA2579612A1 (en) 2004-09-24 2006-04-06 Biosphere Medical, Inc. Microspheres capable of binding radioisotopes, optionally comprising metallic microparticles, and methods of use thereof
AU2005298344B2 (en) 2004-10-25 2011-02-10 Varian Medical Systems, Inc. Loadable polyphosphazene-comprising particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US20070009612A1 (en) * 2004-12-16 2007-01-11 Barefoot Robert R Method for administering a composition to an animal
EP1879554B2 (en) 2005-05-09 2018-03-07 Biosphere Medical, S.A. Compositions and methods using microspheres and non-ionic contrast agents
US8263109B2 (en) 2005-05-09 2012-09-11 Boston Scientific Scimed, Inc. Injectable bulking compositions
WO2006138563A1 (en) 2005-06-16 2006-12-28 Artes Medical, Inc. Liquid crystal polymer syringes and containers and methods of use for long term storage of filler materials
US20070077544A1 (en) 2005-06-16 2007-04-05 Gottfried Lemperle Life-like anatomic feature for testing injection of soft tissue fillers
US20070100449A1 (en) 2005-10-31 2007-05-03 O'neil Michael Injectable soft tissue fixation technique
US8673019B2 (en) 2006-04-13 2014-03-18 Warsaw Orthopedic, Inc. Use of anti-inflammatory compounds with allograft tissue implantation
US20080058954A1 (en) 2006-08-22 2008-03-06 Hai Trieu Methods of treating spinal injuries using injectable flowable compositions comprising organic materials

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4592755A (en) * 1985-06-11 1986-06-03 Ethyl Corporation Mammary implant
US20030099683A1 (en) * 2000-03-18 2003-05-29 Michael Grunze Polyphosphazene derivatives
WO2004004795A1 (en) * 2002-07-05 2004-01-15 Polyzenix Gmbh Implant for transport and release for pharmacologically active agents as well as a process for producing the same

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
CALICETI PAOLO ET AL: "Polyphosphazene microspheres for insulin delivery" INTERNATIONAL JOURNAL OF PHARMACEUTICS (KIDLINGTON), vol. 211, no. 1-2, 15 December 2000 (2000-12-15), pages 57-65, XP002383273 ISSN: 0378-5173 *
KUNSTLINGER F ET AL: "VASCULAR OCCLUSIVE AGENTS" AJR (AMERICAN JOURNAL OF ROENTGENOLOGY), vol. 136, no. 1, 1981, pages 151-156, XP002383425 ISSN: 0361-803X *

Cited By (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10265271B2 (en) 2000-03-24 2019-04-23 Biosphere Medical, Inc. Microspheres for the treatment of a prostate hyperplasia by active embolization
US9080146B2 (en) 2001-01-11 2015-07-14 Celonova Biosciences, Inc. Substrates containing polyphosphazene as matrices and substrates containing polyphosphazene with a micro-structured surface
US11052050B2 (en) 2004-10-25 2021-07-06 Varian Medical Systems, Inc. Loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US9114162B2 (en) * 2004-10-25 2015-08-25 Celonova Biosciences, Inc. Loadable polymeric particles for enhanced imaging in clinical applications and methods of preparing and using the same
US9107850B2 (en) * 2004-10-25 2015-08-18 Celonova Biosciences, Inc. Color-coded and sized loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US10973770B2 (en) 2004-10-25 2021-04-13 Varian Medical Systems, Inc. Color-coded and sized loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US8318209B2 (en) 2004-10-25 2012-11-27 Celonova Biosciences Germany Gmbh Loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US20080102029A1 (en) * 2004-10-25 2008-05-01 Celonova Biosciences, Inc. Loadable Polymeric Particles For Enhanced Imaging In Clinical Applications And Methods Of Preparing And Using The Same
US20080113029A1 (en) * 2004-10-25 2008-05-15 Celonova Biosciences, Inc. Color-Coded and Sized Loadable Polymeric Particles for Therapeutic and/or Diagnostic Applications and Methods of Preparing and Using the Same
US9597419B2 (en) 2004-10-25 2017-03-21 Boston Scientific Limited Loadable polymeric particles for enhanced imaging in clinical applications and methods of preparing and using the same
US9511153B2 (en) 2004-10-25 2016-12-06 Celonova Biosciences Germany Gmbh Loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US11426355B2 (en) 2004-10-25 2022-08-30 Varian Medical Systems, Inc. Color-coded and sized loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
US10293063B2 (en) 2005-05-09 2019-05-21 Merit Medical Systems, Inc. Compositions and methods using microspheres and non-ionic contrast agents
EP2368581A3 (en) * 2006-01-30 2012-07-18 Biosphere Medical, Inc. Porous intravascular embolization particles and related methods
US10448955B2 (en) 2006-01-30 2019-10-22 Biosphere Medical, Inc. Compressible intravascular embolization particles and related methods and delivery systems
WO2007090130A3 (en) * 2006-01-30 2008-10-09 Surgica Corp Porous intravascular embolization particles and related methods
US7922764B2 (en) 2006-10-10 2011-04-12 Celonova Bioscience, Inc. Bioprosthetic heart valve with polyphosphazene
AU2007356895B2 (en) * 2007-07-25 2012-11-15 Varian Medical Systems, Inc. Color-coded and sized loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
JP2014039836A (en) * 2007-07-25 2014-03-06 Celonova Biosciences Inc Loadable color coded polymer particles sorted by size for medical treatment and/or diagnosis and method to prepare and use the same
KR101506557B1 (en) * 2007-07-25 2015-03-30 셀로노바 바이오사이언시즈, 인코포레이티드 Color-coded and sized loadable polymeric particles for therapeutic and/or diagnostic applications and methods of preparing and using the same
JP2010534266A (en) * 2007-07-25 2010-11-04 セロノバ バイオサイエンシーズ, インコーポレイテッド Color-coded, size-sorted, fillable polymer particles for therapeutic and / or diagnostic applications, and methods for preparing and using them
WO2009067105A1 (en) * 2007-10-24 2009-05-28 Celonova Biosciences, Inc. Loadable polymeric particles for enhanced imaging in clinical applications and methods of preparing and using the same
WO2009054854A1 (en) * 2007-10-26 2009-04-30 Celonova Biosciences, Inc. Loadable polymeric particles for bone augmentation and methods of preparing and using the same
WO2009054853A1 (en) * 2007-10-26 2009-04-30 Celonova Biosciences, Inc. Loadable polymeric particles for cosmetic and reconstructive tissue augmentation applications and methods of preparing and using the same
WO2009058135A1 (en) * 2007-10-30 2009-05-07 Celonova Biosciences, Inc. Loadable polymeric microparticles for therapeutic use in alopecia and methods of preparing and using the same
WO2009058134A1 (en) * 2007-10-30 2009-05-07 Celonova Biosciences, Inc. Loadable polymeric particles for marking or masking individuals and methods of preparing and using the same
WO2009058147A1 (en) * 2007-10-31 2009-05-07 Celonova Biosciences, Inc. Loadable polymeric particles for therapeutic use in erectile dysfunction
EP2252218A2 (en) * 2008-02-11 2010-11-24 CeloNova Biosciences, Inc. Tissue-fastening articles and devices, and related methods
EP2252218A4 (en) * 2008-02-11 2012-06-06 Celonova Biosciences Inc Tissue-fastening articles and devices, and related methods
US9820672B2 (en) 2010-11-11 2017-11-21 Koninklijke Philips N.V. Colon screening by using magnetic particle imaging
WO2017158482A1 (en) 2016-03-14 2017-09-21 Biocompatibles Uk Limited Emulsion comprising particles

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