EP1341519A2 - Non-aspirating transitional viscoelastics for use in surgery - Google Patents
Non-aspirating transitional viscoelastics for use in surgeryInfo
- Publication number
- EP1341519A2 EP1341519A2 EP01992564A EP01992564A EP1341519A2 EP 1341519 A2 EP1341519 A2 EP 1341519A2 EP 01992564 A EP01992564 A EP 01992564A EP 01992564 A EP01992564 A EP 01992564A EP 1341519 A2 EP1341519 A2 EP 1341519A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- viscoelastic
- transitional
- eye
- effective amount
- composition
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
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- KIUKXJAPPMFGSW-DNGZLQJQSA-N (2S,3S,4S,5R,6R)-6-[(2S,3R,4R,5S,6R)-3-Acetamido-2-[(2S,3S,4R,5R,6R)-6-[(2R,3R,4R,5S,6R)-3-acetamido-2,5-dihydroxy-6-(hydroxymethyl)oxan-4-yl]oxy-2-carboxy-4,5-dihydroxyoxan-3-yl]oxy-5-hydroxy-6-(hydroxymethyl)oxan-4-yl]oxy-3,4,5-trihydroxyoxane-2-carboxylic acid Chemical compound CC(=O)N[C@H]1[C@H](O)O[C@H](CO)[C@@H](O)[C@@H]1O[C@H]1[C@H](O)[C@@H](O)[C@H](O[C@H]2[C@@H]([C@@H](O[C@H]3[C@@H]([C@@H](O)[C@H](O)[C@H](O3)C(O)=O)O)[C@H](O)[C@@H](CO)O2)NC(C)=O)[C@@H](C(O)=O)O1 KIUKXJAPPMFGSW-DNGZLQJQSA-N 0.000 description 5
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- KRKNYBCHXYNGOX-UHFFFAOYSA-K Citrate Chemical compound [O-]C(=O)CC(O)(CC([O-])=O)C([O-])=O KRKNYBCHXYNGOX-UHFFFAOYSA-K 0.000 description 4
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- A61L31/00—Materials for other surgical articles, e.g. stents, stent-grafts, shunts, surgical drapes, guide wires, materials for adhesion prevention, occluding devices, surgical gloves, tissue fixation devices
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- A61L2430/00—Materials or treatment for tissue regeneration
- A61L2430/16—Materials or treatment for tissue regeneration for reconstruction of eye parts, e.g. intraocular lens, cornea
Definitions
- the present invention relates to the field of viscous and viscoelastic materials suitable for use in surgical procedures.
- non-aspirating viscoelastics including transitional viscoelastics (having non-shear related variable viscosities), which may be left in situ at the close of surgery are disclosed.
- Methods of using transitional viscoelastics in surgery, especially ophthalmic surgery are also disclosed.
- Viscous or viscoelastic agents used in surgery may perform a number of different functions, including without limitation maintenance and support of soft tissue, tissue manipulation, lubrication, tissue protection, and adhesion prevention. It is recognized that the differing rheological properties of these agents will necessarily impact their ability to perform these functions, and, as a result, their suitability for certain surgical procedures. See, for example, U.S. Patent No. 5,273,056.
- Cataracts are opacities of the ocular lens which generally arise in the elderly.
- the cataractous lens is surgically removed and an artificial intraocular lens is inserted in its place.
- viscoelastic materials are typically injected in the anterior chamber and capsular bag to prevent collapse of the anterior chamber and to protect tissue from damage resulting from physical manipulation.
- a number of viscous or viscoelastic agents are known for ophthalmic surgical use.
- Viscoat ® Alcon Laboratories, Inc. which contains sodium hyaluronate and chondroitin sulfate
- Healon ® and Healon ® GN Pharmacia Corp.
- Amvisc ® Regular and Amvisc ® Plus IOLAB
- Nitrax ® Allergan
- Cellugel ® Alcon
- HPMC hydroxypropylmethylcellulose
- IOP spikes depending on their magnitude and duration, can cause significant and/or irreversible damage to susceptible ocular tissues, including, without limitation, the optic nerve.
- Viscoelastics have also been promoted as drug delivery devices for pharmaceutical agents which are administered when the viscoelastics are applied during surgery.
- U.S. Patent No. 5,811,453 discloses viscoelastics containing anti-inflammatory compounds and methods of using these enhanced viscoelastics in cataract surgery. While this approach may ameliorate ocular inflammation resulting from surgical trauma, such an approach still possesses the significant limitation of presenting IOP spike problems, as described above. Consequently, these enhanced viscoelastics still need to be aspirated out at the close of surgery.
- Transitional viscosities are known to occur in certain systems.
- systems are known in which a liquid forms a gel after application to the eye.
- gelations may be triggered by a change in pH. See, Gurney et al., "The Development and Use of In Situ Formed Gels, Triggered by pH” Biopharm. Ocul Drug Delivery, (1993) pp. 81-90.
- the use of a non-collagen based transitional viscosity viscoelastic agent as an effective surgical tool has neither been disclosed or suggested in the art.
- the agent in addition to having the desired initial and transitional viscosities over the prescribed temperature range, would preferably meet the following requirements: physiologically acceptable osmolality and pH; relatively short viscosity transition time; clear (without turbidity); biocompatible; and sterilizable.
- physiologically acceptable osmolality and pH relatively short viscosity transition time
- clear (without turbidity) biocompatible
- sterilizable sterilizable.
- the transitional viscoelastics of the present invention are believed to satisfy these requirements.
- the present invention is directed to improved viscous or viscoelastic agents for use in surgical procedures, especially ophthalmic surgical procedures. More specifically, the present invention is directed to any such agent with the desired initial viscosity that yields an acceptable IOP spike profile in the IOP Spike Model described below.
- the improved agents of the present invention include transitional viscous or viscoelastic polymeric agents suitable for use in ophthalmic surgery.
- transitional viscoelastic means such an agent which maintains high viscosity during the surgical procedure, but rapidly loses viscosity after the close of surgery so as to reduce or avoid the occurrence of dangerous IOP spikes, and to reduce or obviate the need for active removal of the viscoelastic at the end of the surgical procedure.
- the preferred transitional viscoelastic compositions of the present invention are substantially stable, exhibiting less than 1 % degradation for up to six months at storage temperatures. These compositions will yield little or no IOP spike (as defined below) when used and allowed to remain in the eye after routine cataract surgery.
- Substances suitable for use as transitional viscoelastics include, without limitation, hydrophobically modified polysaccharides or mucopolysaccharides such as hyaluronic acid and its salts (HA) (with or without surfactants); dialyzed polyampholytes or dialyzed mixtures of oppositely charged polyelectrolytes; polysaccharides or mucopolysaccharides such as HA with cationic hydrophilic polymers; polysaccharides and hydrophilic synthetic polymers with temperature dependent conformational transitions; and combinations thereof.
- hydrophobically modified polysaccharides or mucopolysaccharides are hydrophobically modified HAs, especially HA-amides.
- FIG. 1 is a graph depicting viscosity as a function of concentration for dodecylamide HA of the present invention and control HA.
- FIG. 2 is a graph depicting viscosity as a function of shear rate for octylamide HA of the present invention.
- FIG. 3 is a graph depicting the transitional viscosity of octylamide HA of the present invention.
- FIG. 4 is a graph depicting the viscosity stability of autoclaved dodecylamide HA of the present invention.
- FIG. 5 is a graph depicting the stability of the transitional behavior of hexadecylamide HA of the present invention.
- FIG. 6 is a graph depicting the rate of hydrolysis of esterified HAs of the present invention.
- FIG. 7 is a diagrammatic representation of the IOP Spike Model of the present invention.
- FIG. 8 is an exploded elevation of aperfusion apparatus of the present invention.
- FIG. 9a is a top plan view of an eye for use in a perfusion apparatus.
- FIG. 9b is a side view of the eye of FIG. 9a.
- FIG. 10 is a cross sectional view of the perfusion apparatus of the present invention FIG. 8 with the inclusion of an anterior segment.
- FIG. 11 is a graph depicting the effects of traditional viscoelastics and a transitional viscoelastic of the present invention on IOP using the IOP Spike Model of the present invention.
- the present invention is directed to viscoelastic materials, and especially to transitional viscoelastic materials, compositions and methods of use.
- the primary use of the transitional viscoelastics is in surgical applications where the transitional viscoelastic is applied during surgery in its more viscous state and, following surgery, loses substantial viscosity in situ.
- a preferred use of the transitional viscoelastics is in cataract surgery, where the viscoelastic is instilled i) in the anterior chamber of the eye to maintain the dome and protect the exposed tissues; and/or ii) in the posterior chamber to inflate the capsular bag.
- the viscoelastic remaining in the eye is heated by the body to ambient body temperature, loses its viscosity, and is more readily removed (than non-transitional viscoelastics) by the eye's processes.
- the major advantage of this preferred use is the avoidance of the IOP spike that may occur with other systems.
- another advantage of this use is that it allows the surgeon the traditional advantages of a viscoelastic without the disadvantage of having to thoroughly aspirate the viscoelastic out of the surgical site following completion of the surgery. As stated above, such aspiration is time consuming and presents additional risk to the patient.
- transitional viscoelastics of the present invention typically exhibit a viscosity loss of 70% or more, without substantial hydrolysis, when such materials undergo a temperature change of from about room temperature or surgical temperature (approximately 17-26°C) to about body temperature (approximately 35-38°C).
- the preferred transitional viscoelastics of the present invention will be substantially stable.
- substantially stable refers to viscoelastics that only lose 1% or less of their hydrophobic side chains by hydrolysis, oxidation or other degradation, when such viscoelastics are stored refrigeration temperatures of approximately 4°C for up to 6 months.
- the transitional property of the present invention viscoelastics is preferably reversible.
- the reversible viscosity property of the preferred embodiments allows the transitional viscoelastics to be heated prior to use, e.g., heat sterilization, and then recooled for surgical application.
- Additional preferred properties of the transitional viscoelastics of the present invention include: (1) a transition time of less than about two hours post surgery; (2) optically clear gels with little or no turbidity; (3) safe adherence to ocular tissue (i.e., capability of providing a protective coating to delicate tissues); and (4) biocompatibility.
- transitional viscoelastics of the present invention when used in cataract surgical procedures, the most important feature of the transitional viscoelastics of the present invention is that they will cause little or no IOP spike following such surgery.
- a transitional viscoelastic material will be deemed to exhibit "little or no IOP spike” if 0.5 ml of a 10% solution (i.e., the actual product composition diluted to 10% of its original concentration with a buffered isotonic salt solution) yields an IOP spike which is not more than an average of about 10 mm Hg above the baseline IOP in a validated IOP spike model (the 'TOP Spike Model”) as described below.
- transitional viscoelastic character of the compositions of the present invention may be attributable to physical associations between relatively low molecular weight molecules resulting in a viscosity beyond what would be expected from such low molecular weight molecules at a given concentration.
- the transitional viscoelastics of the present invention are modified viscoelastics wherein hydrophobic side chains have been covalently linked to the viscoelastic compounds.
- the unmodified viscoelastics may be substituted in varying degrees with various moieties to yield transitional viscoelastics of the present invention.
- all of the appropriate side chains (e.g., for esters and amide transitional viscoelastics described further below, the carboxylate side chains) of the viscoelastics could be substituted (i.e., 100% substitution) or only a fraction of the side chains, e.g., 15% substitution, hi general, transitional viscoelastics will be derived from known viscoelastics and modified to exhibit the properties discussed above.
- Examples of commercially available viscoelastics useful in the preparation of transitional viscoelastics include salts of hyaluronic acid, (e.g., sodium hyaluronate (HA)), chondroitin sulfate (CS) and hydroxypropylmethylcellulose (HPMC) and a combination of HA and CS.
- Other viscoelastics useful in preparing transitional viscoelastics include dialyzed polyampholytes, such as, carboxymethylcellulose.
- the transitional viscoelastics may be composed of viscoelastic polymers of varying molecular weight.
- the average molecular weight of the non-modified polymer will range from 50,000 to 1,000,000 daltons.
- the average molecular weight of the non-modified HA polymer backbone will preferably range from about 120,000 to about 400,000 daltons (weight average molecular weight) and from about 50,000 to about 350,000 daltons (number average molecular weight).
- the molecular weight of viscoelastics may be estimated by the method of gel permeation chromatography (GPC), also referred to as size exclusion chromatography (SEC), with detection by light scattering or against standards of known molecular weight using refractive index detection. Molecular weight typically affects the degree of viscosity of these known viscoelastics. All of the molecular weights pertaining to the transitional viscoelastics described herein, unless otherwise noted, are the number average molecular weights of the unmodified viscoelastic polymer prior to modification to yield a transitional viscoelastic.
- GPC gel permeation chromatography
- SEC size exclusion chromatography
- the HAs may be modified to exhibit the above properties and hence be useful as transitional viscoelastics of the present invention.
- dodecyl moieties may be covalently linked to the backbone carboxylic acid groups of the HAs to form dodecyl esters thereof.
- esters modified by esterification of their side chains with various moieties are referred to as "HA-esters.”
- esters that may be substituted on the carboxylate groups of HA include, but are not limited to, alkyl groups such as methyl, ethyl, propyl, isopropyl, butyl, sec-butyl, tert-butyl, pentyl, neopentyl, hexyl, heptyl, octyl, nonyl, decyl, undecyl, dodecyl, tridecyl, tetradecyl, pentadecyl, hexadecyl, heptadecyl, octadecyl, nonadecyl, or any other alkyl groups containing up to 30 carbons; cycloalkyl groups, e.g.
- Such substituents may optionally be further substituted and may optionally contain hetero atoms selected from the group consisting of O, N and S.
- Such HA-esters are available from Fidia Advanced Biopolymers (Abano Terme, Italy), or may also be synthesized by methods known in the art, e.g., U.S. Patent Nos. 5,466,461; 5,616,568; and 5,652,347; the contents of which are by this reference incorporated herein. The degree and type of such substitution will affect the low-shear or apparent viscosity and low-shear cohesion, as well as the elevated temperature viscosity and cohesion. Preferred are hydrophobic substituents.
- compositions of the present invention may yield similar rheological properties.
- a 0.88% w/v solution of a 200 kDal HA that is 14% substituted with dodecylated carboxyl groups a 1.2% w/v solution of a 200 kDal HA that is 11% substituted with dodecylated carboxyl groups, and a 2.55% w/v solution of a 200 kDal HA that is 4% substituted with hexadecylated carboxyl groups all display similar viscosity and transitional behaviors.
- the transitional viscoelastics of the present invention may thus be characterized by a "Viscosity Factor," which is determined by the following formula:
- Transitional viscoelastics of the present invention will have Viscosity Factors ranging from about 200 to about 50,000.
- Preferred transitional viscoelastics of the present invention will have Viscosity Factors ranging from about 1000 to about 20,000. Most preferred are those transitional viscoelastics having Viscosity Factors from about 2000 to about 10,000.
- compositions of varying parameters may yield similar rheological properties (see preceding paragraph), it will also be appreciated that because of the interplay of the parameters, compositions with the same or similar Viscosity Factor may have significantly different rheological properties.
- the Viscosity Factor is only a general indicator of the suitability of a viscoelastic composition for the presently contemplated purposes.
- Those skilled in the art will further appreciate that by modifying one or more of the parameters, optimal rheological properties for a given purpose may be achieved.
- Preferred modified hyaluronates include the partial amide modification of the carboxylate groups of HA with alkyl or aryl groups to form alkyl or aryl amides of HA.
- such molecules are referred to as "HA-amides.”
- amides that may be substituted on the carboxylate groups of HA include, but are not limited to, alkyl groups such as methyl, ethyl, propyl, isopropyl, butyl, sec-butyl, tert-butyl, pentyl, neopentyl, hexyl, heptyl, octyl, nonyl, decyl, undecyl, dodecyl, tridecyl, tetradecyl, pentadecyl, hexadecyl, heptadecyl, octadecyl, nonadecyl, or any other alkyl groups
- amide substituting group is dodecyl.
- the degree of substitution may also vary. In general, the substitution will be from about 2 to 60%. The preferred substitution level will be from about 5 to 40%.
- Preferred amide substituting groups are octyl, dodecyl, and hexadecyl; dodecyl being the most preferred.
- the preferred variables are: substitution level of 30 to 40%; polymeric concentration of 1 to 3% by weight; and molecular weight of the unmodified HA of 200 to 350 kilodaltons ("kDal") (weight average) or 120 to 230 kDal (number average).
- the preferred variables will be: substitution level of 5 to 32%, more preferably 15 to 25%, and most preferably 10-20%; polymeric concentration of 0.35 to 1.2% by weight; and molecular weight of the unmodified HA of 200 to 350 kDal (weight average) or 120 to 230 kDal (number average).
- a lower molecular weight unmodified HA may be used.
- Preferred parameters for such lower molecular weight transitional viscoelastic material would be: unmodified HA with a molecular weight of 50 to 150 kDal (weight average), amide (preferably dodecyl) substitution level of 25 to 40%, and a polymeric concentration of 0.5 to 2% (wt./v.).
- the preferred variable will be: substitution level of 5 to 15%; polymeric concentration of 0.3 to 0.8% by weight; and molecular weight of the unmodified HA of 200 to 350 kDal (weight average) or 120 to 230 kDal (number average).
- Substitution levels may be determined by NMR as described in Example 11. In most instances, the substitution levels specified in the examples herein were provided by the supplier of the HA-amides, Fidia Advanced Biopolymers.
- transitional viscoelastic compositions of the present invention will generally have sufficient zero shear viscosity to be useful in viscosurgical procedures. Typically such zero shear viscosities will be at least 1 Pa-s at 25°C. Preferred are compositions exhibiting zero shear viscosities from about 5 to 10,000 Pa-s at 25°C. Most preferred are those exhibiting zero shear viscosities from about 40 to 1000 Pa-s at 25°C.
- the HA-amides may be obtained commercially from Fidia Advanced Biopolymers (Abano Terme, Italy), may be synthesized by methods described by Danishefsky and Siskovic in "Conversion of Carboxyl Groups of Mucopolysaccharides in Amides of Amino Acid Esters," Carbohydrate Res. Volume 16, pages 199-205 (1971), Bulpitt and Aeschlimann “New strategy for chemical modification of hyaluronic acid: Preparation of functionalized derivatives and their use in the formation of novel biocompatible hydrogels," Biomed. Mater. Res. Volume 47, pages 152-169 (1999), or may be synthesized by other methods.
- WO 00/01733 (Bellini et al.), which discloses amides of HA and a process for their preparation, is by this reference incorporated herein. This reference generally discloses the use of such amides as vehicles for drug delivery for use in viscoelastic surgery or in ophthalmic surgery, but does not disclose or suggest the novel compositions and methods of the present invention.
- transitional viscoelastics of the present invention include modified HAs wherein the hydrophobic group is linked to the HA structure through the hydroxyl moieties, the N-acetamide moieties, or the carboxyl groups, and have been converted to form hydrophobic amine ("HA-amines"), ether (“HA-ethers”), thioether (“HA- thioethers”) and alkyl (“HA-alkyls”) side chains.
- HA-amines hydrophobic amine
- HA-ethers ether
- thioether HA- thioethers
- alkyl HA-alkyls
- transitional viscoelastics include HA alkyl ethers, HA alkylamines, HA alkyl thioethers, HA alkylcarbamates HA alkylthiocarbamates, HA alkylthioureas, and HA alkylureas, in which the alkyl group can be methyl, ethyl, propyl, isopropyl, butyl, sec-butyl, tert-butyl, pentyl, neopentyl, hexyl, heptyl, octyl, nonyl, decyl, undecyl, dodecyl, tridecyl, tetradecyl, pentadecyl, hexadecyl, heptadecyl, octadecyl, nonadecyl, or any other alkyl group containing up to 30 carbons; and any isomer
- Chondroitin sulfate (CS) of varying molecular weights may be modified similarly to the HAs, described above, in order to yield transitional viscoelastics of the present invention.
- the carboxylate groups may be amidated in analgous fashion as described above with HA.
- the hydroxyl or N-acetamide moieties of chondroitin sulfates may be converted into hydrophobic amines, ethers, thioethers, carbamates, thiocarbamates, ureas, and thioureas in the same manner as described above for HA using the same alkyl, cycloalkyl and aryl substituents in order to yield transitional viscoelastics of the present invention.
- transitional viscoelastics include CS alkyl ethers, CS alkylamines, CS alkyl thioethers, CS alkylcarbamates, CS alkylthiocarbamates, CS alkylthioureas, and CS alkylureas, in which the alkyl group can be methyl, ethyl, propyl, isopropyl, butyl, sec-butyl, tert-butyl, pentyl, neopentyl, hexyl, heptyl, octyl, nonyl, decyl, undecyl, dodecyl, tridecyl, tetradecyl, pentadecyl, hexadecyl, heptadecyl, octadecyl, nonadecyl, or any other alkyl group containing up to 30 carbons; and any structural is
- HA-amide compositions of the present invention were compared with an analogous non-transitional HA composition through several concentrations.
- Table 1 Viscosity of 10% Substituted Dodecylamide-HA versus control HA at 16°C
- the dodecylamide-HA compositions were much more viscous than the unmodified HA compositions. Also, an increase in the low shear viscosity through about 5 orders of magnitude was correlated with increasing dodecylamide-HA concentration (i.e., from 0.2% to 1.0% w/v).
- Example 4 The composition of Example 4 was Theologically evaluated.
- the composition was prepared in a method similar to that disclosed in Example 6.
- the 1% solution demonstrated a low shear viscosity of about 1000 Pa-s.
- dodecylamide-HA compositions experienced an initial shift of 16 Pa-s at low shear conditions in viscosity between the zero time control and 1 month incubation time point. However, the viscosity was stable from the 1 month incubation time point to the 5.5 month incubation time point.
- a dodecylamide-HA composition of the present invention was observed with the following experiment.
- the 1% w/v dodecylamide-HA composition of Example 7 was incubated at 4°C, room temperature (21-23°C) and 37°C through 6 months. At the appropriate time, an aliquot of the composition was taken and the chemical stability of the dodecylamide-HA was analyzed using capillary gas chromatography (GC).
- GC capillary gas chromatography
- GC was performed on the Hewlett Packard 5890A GC system equipped with a flame ionization detector (FID), using the following parameters:
- the column used was a DB5 fused silica capillary column (30 meters in length with an inner diameter of 0.32 mm and a film thickness of 1.0 mm) from J&W Scientific, (Folsom, CA).
- samples were mixed with one weight equivalent of a mixture of two parts ethyl acetate to one part ethanol (also by weight) and incubated at 50°C for one hour. To this mixture was added three more parts by weight of the ethyl acetate-ethanol mixture. This second addition caused precipitation of the polysaccharide, which is centrifuged down, and the supernatant was analyzed by GC for the presence of the breakdown hydrophobic group, dodecylamine. If 100% hydrolysis of the side chains of the dodecylamine-HA occurred, full precipitation of the 10% substituted dodecylamine-HA, would result in 42 ppm dodecylamine in the supernatant.
- the sample vial was placed into an oven set at 50 C and heated overnight (15-20 hours) to dissolve.
- a hyaluronate lyase (600-900 units/sealed ampule, Cat. No. H-1136, Sigma Chemical Co.) enzyme solution was prepared by snapping open the sealed ampule and adding 0.8 mL of water to the ampule containing approximately 900 units of enzyme (1 unit/uL).
- To the vial was then added 100 uL (0.1 mL) of the enzyme o solution.
- the vial was capped and placed into a 37 C oven overnight (15-20 hrs).
- the vial was removed from the oven and 100 uL (0.1 mL) of deuterium oxide (99.6% atom-% D, Cat. No. 42,345-9 Aldrich Chemical Co.) was added to the vial. After mixing, the solution was transferred into a NMR tube using a glass disposable transfer pipette. The sample was then analyzed to obtain a proton NMR spectrum on a 600 MHz Bruker NMR instrument capable of operation in a moisture suppression mode with accurate integration of peak signals.
- deuterium oxide 99.6% atom-% D, Cat. No. 42,345-9 Aldrich Chemical Co.
- the hydrophobic substitution level was calculated from integration values by adding together the integral values for the 3 signals indicative of the hydrophobic residue from 0.8 to 1.3 ppm versus the 2 to 4 signals at 2.0-2.1 ppm for the N-acetylmethyl group.
- the three signals between 0.8-1.3 ppm originate from the hydrogen atoms bonded to C 2 to C carbons in the hydrophobic group, which contains n carbon atoms.
- the hyaluronate lyase enzyme has no interfering signals in the hydrophobic group region or the N-acetylmethyl signal region. Since the N-acetylmethyl group is on every repeat unit in the HA structure, the hydrophobic substitution level may be calculated from the ratio of integral values for the hydrophobic group to that of the N-acetylmethyl group.
- compositions analogous to those of Examples 1-6, wherein the viscoelastic agent is replaced with either a 15% dodecyl ester- HA, sodium salt (approx. 200 kDa) or 43% or 52% benzyl ester-HA, sodium salt (approx. 200 kDa final, modified viscoelastic) were prepared in similar manner to the method disclosed in Example 7.
- the compositions were incubated at 4°C, RT and 37°C through 9.5 weeks.
- the dodecyl or benzyl alcohol (the breakdown products of the respective hydrophobic ester side chains) was quantified using the GC method of Example 10.
- hydrolysis of the comparative modified viscoelastics was greater than 1% through various time points. Because it is desirable for viscoelastic compositions to have storage stability (i.e., viscoelastic products typically require a two year shelf-life expiration date), viscoelastics exhibiting the above described rates of hydrolysis are considered to be less useful in compositions of the present invention.
- a 3% solution of benzyl ester of HA at 50% carboxylic acid substitution (approximately 200 kDa) was prepared in phosphate buffer with sodium chloride and in citrate/acetate buffer with balanced salts. These solutions formed optically clear, viscoelastic gels which were easily aspirated through a 27 gauge needle. These solutions had low shear viscosities comparable to Viscoat ® or Provisc ® at 25°C (k.e., approximately 200 Pa-s) and were shear thinning like Provisc ® or Viscoat ® at 25°C. These solutions showed a significant drop in viscosity from approximately 200 Pa-s at surgical temperature (25°C) to 20 Pa-s at body temperature (37°C).
- Example 14 A 1% solution of the dodecyl ester of HA at 14.3% carboxylic acid substitution
- Example 15 A 0.75% solution of the dodecyl ester of HA at 14.3% carboxylic acid substitution (approximately 200 kDa) was prepared in citrate/acetate buffer with balanced salts to form a clear, viscoelastic solution. This solution showed a low shear viscosity of about 25 Pa-s at 25°C and was shear thinning to below 0.1 Pa-s at 534/s. This formulation also showed a decrease in viscosity at constant shear stress (1.1 Pa) from about 25 Pa-s at 25°C to about 5 Pa-s at 37°C.
- Example 16 A 0.75% solution of the dodecyl ester of HA at 14.3% carboxylic acid substitution (approximately 200 kDa) was prepared in citrate/acetate buffer with balanced salts to form a clear, viscoelastic solution. This solution showed a low shear viscosity of about 25 Pa-s at 25°C and was shear thinning to below 0.1 Pa-s at 5
- a 2% solution of the dodecyl ester of HA at 14.3% carboxylic acid substitution (approximately 200 kDa) was prepared in citrate/acetate buffer with balanced salts to form a clear, thick solution.
- This solution (approximately 2cc) was autoclaved at 125°C for about 20 minutes exposure time and was cooled with slow exhaust. After cooling to room temperature, the formulation retained enough viscosity to yield a useful, viscoelastic gel.
- Example 17 A 5% solution of the hexadecyl ether of carboxymethylcellulose (containing hexadecyl moieties ether linked to 5% of the repeating monosaccharide units and at approximately 100 kDa) was prepared in phosphate buffers with sodium chloride. The solution was clear and qualitatively formed a viscous gel.
- the IOP Spike Model employs (1) a perfusion apparatus, pump and pressure transducer/recorder as depicted diagrammatically in Figure 7; (2) perfusion medium; (3) dissected human eyes; and (4) the viscoelastic material(s) to be tested.
- the perfusion medium used in the IOP Spike Model is prepared by adding 5 mL of a penicillin-streptomycin solution (10,000 units/mL penicillin (base) from penicillin G and 10,000 ⁇ g/mL streptomycin (base) from streptomycin sulfate) and 0.85 mL of a gentamicin solution (10 mg/mL) to 500 mL of a cell culture medium (Dulbecco's modified Eagle's medium, low glucose, with L-alanyl-L-glutamine and pyruvate (Life Technologies, Grand Island, NY)). The perfusion medium is then filtered using a 500 mL sterile filter unit (0.2 ⁇ m pore size) and stored at 4°C (brought to 37°C before use).
- a penicillin-streptomycin solution 10,000 units/mL penicillin (base) from penicillin G and 10,000 ⁇ g/mL streptomycin (base) from streptomycin sulfate
- Cadaver eyes useful in the IOP Spike Model must: i) not be older than 24-36 hours post-mortem when prepared for use in the model; ii) be stored as whole eyes in moist chambers; iii) be devoid of HIV, hepatitis or other infectious agents; and iv) not have undergone ocular surgeries such as glaucoma filtration, scleral buckle implantation or IOL implanation.
- Anterior segment 7 (see Fig. 10) of a human eye is prepared by the following dissection method:
- the eye is carefully trimmed of excess muscle or connective tissue using straight, fine scissors (Katena No. K4-7440), and placed in a container containing a povidone iodine solution (1% free iodine) at 25 °C for approximately 2 minutes.
- the eye is then removed from the iodine solution, rinsed thoroughly with saline solution, and positioned such that the cornea 3 is centered on top (see Figure 9a).
- the sclera 5 is then scored (using a sterile ophthalmic crescent knife (Alcon No.
- the globe is then cut into two halves along the horizontal plane 11 approximately midway between the equatorial plane 13 and the scleral plane 15.
- the anterior (top) half of the eye is separated from the posterior (bottom) half which is discarded.
- the anterior half is turned over so that the cornea is facing down, and residual vitreous is then carefully removed from the anterior half using Graefe forceps (Katena No. K5-4821).
- the zonules are then cut with Wescott scissors (Katena No. K4-4100) and the lens removed from the anterior segment using the Graefe forceps.
- Dressing forceps (Katena No. K5-4010) are then used to remove the iris, and the choroid is circumferentially cut at the ora seratta with the Wescott scissors. Any residual pigment from inside the sclera is then removed with the dressing forceps. Remaining anterior segment 7 is then rinsed two times with perfusion medium to wash out pigment, tissue remnants, or other debris.
- the perfusion apparatus used in the IOP Spike Model is a modified version of that described in the perfusion systems of Johnson and Tschumper and of Clark et al. (Johnson and Tschumper, "Human trabecular meshwork organ culture: a new method," s Invest. Ophthalmol Vis. Set, 28:945-953 (1987); and Clarke, et al., "Dexamethasone- Induced Ocular Hypertension in Perfusion-Cultured Human Eyes," Invest. Ophthalmol. Vis. Sci., 36(2):478-489 (1995)).
- the critical modifications to the prior systems are the reduction of the chamber volume from about 0.8-1.0 mL to about 0.5-0.6 mL to more nearly approximate the volume of the pseudophakic human anterior segment volume, o and the inversion of the chamber during perfusion.
- the volume reduction is achieved by a protruding island on the platform of the chamber which reduces the space within the dome of the anterior segment and should prevent or reduce stagnation of the viscoelastic solution in the posterior dead space, i.e. posterior to the trabecular meshwork.
- Perfusion apparatus 1 is illustrated in Figs. 7, 8 and 10.
- Apparatus 1 is comprised of base 2, cylinder 4, island 6, o-ring 8, a plurality of screws 10 and cap 12. hi use, 0 apparatus 1 also comprises anterior segment 7.
- Base 2 is disk-shaped having top 22, bottom 24 and side 26, and containing channels 14 and 16, platform 18 and threads 19, shaped and sized, to receive screws 10.
- Channel 14 communicates with opening 28 of side 26 and opening 20 of island 6.
- Channel 16 communicates with opening 30 of side 26 and opening 32 of platform 18.
- Channels 14 and 16 are shaped and sized in order to provide for the precise flow (channel 14) and accurate pressure measurement (channel 16) of perfusion medium, to and from apparatus 1.
- Opening 28 is sized and shaped to receive a fitting (to be connected to infusion line 29) and opening 30 also is sized and shaped to receive a fitting (to be connected to transducer line 31).
- the fittings are standard connectors known in 0 the art to be useful for receiving tubing or other cylindrical lines.
- Platform 18 protrudes from base 2, has side 34 and is conically shaped and sized to receive anterior segment 7.
- Island 6 protrudes from the center of platform 18.
- cylinder 4 is coaxially and permanently situated on top 22 of base 2, and extends flush therefrom.
- Island 6 has opening 20, contains a portion of channel 14 and extends from platform 18.
- O-ring 8 has annular, concave interior edge 36 and a plurality of holes 38 sized and shaped for receiving through o-ring 8, screws 10.
- Edge 36 is sized and shaped such that, when apparatus 1 is put in use, the compression of o-ring 8 against base 2 sandwiches the periphery of anterior segment 7 between edge 36 and side 34 of platform 18, forming anterior chamber 42.
- the volume of anterior chamber 42 has been designed by the inventors to approximate the combined volumes of anterior chamber and crystallin lens of a human eye (generally about 0.5-0.6 mL).
- cap 12 is shaped and sized to receive a portion of cylinder 4 and forming closed space 40.
- the preferred perfusion apparatus for the IOP Spike Model will employ a polysulfone base 2, a polysulfone island 6, a polysulfone o- ring 8, nylon screws 10, a transparent polysulfone cylinder 4, medical steel channels 14 and 16, and a transparent polystyrene cap 12.
- apparatus 1 Prior to use, apparatus 1 is disassembled and the individual parts are autoclaved or cold sterilized and then soaked in a laminar flow chamber with a sporicidin disinfecting solution (50ml/L water) followed by an overnight rinse in sterile deionized water.
- a sporicidin disinfecting solution 50ml/L water
- perfusion medium is fed to pump, which in turn is connected to infusion line 29, which will infuse perfusion medium through channel 14 and into chamber 42; and transducer line 31 is connected to calibrated pressure transducer and recorder capable of recording the pressure of chamber 42.
- Apparatus 1 is then reassembled by first connecting fittings disposed at openings 28 and 30 to the infusion and transducer lines, respectively.
- Apparatus 1 is then arranged with top 22 facing up.
- Anterior segment 7 is placed on platform 18, cornea side up. Slight perfusion medium flow is then applied via syringe through channel 16 in order to properly seat segment 7 on platform 18.
- O-ring 8 (which is approximately 1.5 inches in diameter, outer circumference and 0.710-0.736 inches in inner diameter) is then placed over segment 7. It is important that o-ring 8 seats well with segment 7 in order to avoid leaks (a slightly different diameter o-ring 8 may be used in order to improve the seat). Screws 10 are inserted through holes 38 and into threads 19 and tightened evenly to ensure that o-ring 8 is evenly seated. As o-ring 8 is tightened onto the periphery of segment 7, the flow applied through channel 16 should be relieved, such that excessive pressure is not applied to segment 7 upon seating. Screws 10 are torqued against base 2 such that the periphery of segment 7 is tightly sandwiched between platform 18 and o-ring 8, but not so tightly that segment 7 is ruptured.
- perfusion medium is then pushed through channel 14 while simultaneously pulling perfusion medium out channel 16 through opening 30, slanting base 2 such that any bubbles present will flow out of chamber 42 via channel 16. After the bubbles have been purged, channels 14 and 16 are closed to perfusion medium flow. Apparatus 1 is then returned to level with top 22 facing up.
- Cap 12 is then placed over cylinder 4, thereby forming space 40.
- Apparatus 1 is then inverted so that bottom 24 is facing up, and placed in a tissue culture incubator (Nuaire) maintaining humidified atmosphere (5%CO2 / 95% air) at 37°C.
- Transducer line 31 and infusion line 29 should be positioned against the seal of the incubator door, so as not to be damaged or crimped when the door is closed. Pressure transducer should be kept level with apparatus 1. In this configuration apparatus 1 is now ready to be used in the IOP Spike Model.
- the perfusion line is opened and the pump operated (setting "6" for Harvard Model No. 944) so that perfusion medium flows freely through opening 28 and channel 14.
- the pump is allowed to run until the pressure rises to about 5-10 mm Hg, the pump speed is then decreased to about 2 ⁇ L/min (setting "12") thereafter.
- Segment 7 is perfused for up to about 24 hours prior to injection of the viscoelastic candidate. If a stable baseline at a pressure of between 10-40 mm Hg is not established within 24 hours, the flow rate can be adjusted repeatedly for a perfusion volume of 2-3 ml each time until a stable baseline IOP is achieved. If the problem is not resolved for another 24 hours, and subsequent flow rate adjustment and flushing steps have not remedied the problem within 48 hours, anterior segment 7 should be considered unreliable and the perfusion terminated.
- the positive control is 0.5 mL of diluted sodium hyaluronate (approximatley 750kDal available from Lifecore Biomedical, Inc., Chaska, MN), which is prepared by diluting one part of 3.5% HA in buffering solution to nine parts of the same buffering solution, wherein each 1 mL of the buffering solution contains approximately 0.45 mg sodium dihydrogen phosphate hydrate, 2.00 mg disodium hydrogen phosphate, 4.3 mg sodium chloride (with Water For Injection, USP grade, q.s.) and has a neutral pH.
- diluted sodium hyaluronate approximately 0.45 mg sodium dihydrogen phosphate hydrate, 2.00 mg disodium hydrogen phosphate, 4.3 mg sodium chloride (with Water For Injection, USP grade, q.s.) and has a neutral pH.
- the positive control of 0.5 mL diluted HA (0.35%) is injected into a tubing loop of similar volume attached to multi-valve assembly 33 on perfusion line 29, and multi-valve assembly 33 is switched to permit the complete sample volume to be flushed into perfusion apparatus 1.
- the rate of injection is determined by the rate of perfusion.
- IOP is continuously monitored and recorded. Any IOP spike above the baseline IOP is observed and recorded. If the positive control results in an IOP spike of between 20-80 mm Hg above baseline within 24 hours of injection, the Model is considered validated, and may be used to test candidate transitional viscoelastics.
- transitional viscoelastic samples may be injected in a single anterior segment 2 times, at one day intervals (the first injection being that of the positive control).
- Sample viscoelastics should be diluted to one tenth the original concentration using the same buffering solution used to prepare the control sample.
- a stable and acceptable baseline IOP should be reached before each new injection, as indicated by the decline of any IOP spike generated by a preceding viscoelastic sample. If the baseline IOP is not regained within the range of 10-40 mm Hg within one day, any further perfusion in a given anterior segment should be discontinued.
- a transitional viscoelastic of the present invention i.e. causing little or no IOP spike
- a transitional viscoelastic of the present invention, AL-12488, 43% substituted benzyl ester modified HA (approximately 200 kDal) was tested in the IOP Spike Method described above and compared to the positive control (Benchmark) and 200 kDal HA from Fidia.
- the results of the study are represented graphically in Figure 11.
- the arrows indicate the various injections. Injections 1 and 4 were 0.35% positive control HA, injection 2 was 0.35% Fidia unmodified HA, and injection 3 was 0.35% AL-12488. All injection samples were 0.5 ml in volume. The asterisks indicate the individual IOP spikes resulting from the injections.
- transitional viscoelastic (AL-12488) can be characterized as exhibiting little or no IOP spike, as the spike observed therefor in the IOP Spike Model is not more than, and in fact is considerably less than, about 10 mm Hg above the baseline IOP.
- the suitability of a given transitional viscoelastic for a particular step in a surgical procedure will depend upon such things as the viscoelastic 's concentration, average molecular weight, viscosity, pseudoplasticity, elasticity, rigidity, adherence (coatability), cohesiveness, molecular charge, and osmolality in solution.
- the viscoelastic 's suitability will depend further on the function(s) which the viscoelastic is expected to perform and the surgical technique being employed by the surgeon.
- An appropriate buffer system e.g., sodium phosphate, sodium acetate or sodium borate
- Ophthalmic drugs suitable for use in the compositions of the present invention include, but are not limited to: anti-glaucoma agents, such as beta-blockers including timolol, betaxolol, levobetaxolol, carteolol, miotics including pilocarpine, carbonic anhydrase inhibitors, prostaglandins, seratonergics, muscarinics, dopaminergic agonists, adrenergic agonists including apraclonidine and brimonidine; anti-infective agents including quinolones such as ciprofloxacin, and aminoglycosides such as tobramycin and gentamicin; non-steroidal and steroidal anti-inflammatory agents, such as suprofen, diclofenac, ketorolac, rimexolone and tetrahydrocortisol; growth factors, such as EGF; immunosuppressant agents; and anti-allergic agents including olopatadine
- compositions of the present invention may also include combinations of ophthalmic drags, such as combinations of (i) a beta- blocker selected from the group consisting of betaxolol and timolol, and (ii) a rostaglandin selected from the group consisting of latanoprost; 15-keto latanoprost; fluprostenol isopropyl ester (especially lR-[l ⁇ (Z),2 ⁇ (lE,3R*),3 ⁇ ,5 ⁇ ]-7-[3,5-dihydroxy-2-[3-hydroxy- 4-[3-(trifluoromethyl)-phenoxy]-l-butenyl]cyclopentyl]-5-heptenoic acid, 1-methylethyl ester); and isopropyl [2R(lE,3R
- Such agents may have limited solubility in water and therefore may require a surfactant or other appropriate co-solvent in the composition.
- co-solvents typically include: polyethoxylated castor oils, Polysorbate 20, 60 and 80; Pluronic® F-68, F-84 and P-103 (BASF Corp., Parsippany NJ, USA); cyclodextrin; or other agents known to those skilled in the art.
- co-solvents are typically employed at a level of from about 0.01 to 2 wt.%.
- a pharmaceutically acceptable dye to the viscoelastic to improve visualization of the viscoelastic during surgery and/or to stain ocular tissue (especially the capsular bag during capsulorhexis in cataract surgery) for improved visualization of such tissue.
- a pharmaceutically acceptable dye to the viscoelastic to improve visualization of the viscoelastic during surgery and/or to stain ocular tissue (especially the capsular bag during capsulorhexis in cataract surgery) for improved visualization of such tissue.
- Preferred dyes include trypan blue, trypan red, brilliant crysyl blue, and indo cyanine green.
- the concentration of the dye in the viscoelastic solution will preferrably be between about 0.001 and 2 wt.%, and most preferably between about 0.01 and 0.1 wt%.
- any such additive may only be employed to the extent that they do not detrimentally affect the viscoelastic properties of the compositions of the present invention.
- compositions of the present invention may be employed by the skilled surgeon in a variety of surgical procedures.
- viscoelastic agent that possesses relatively greater adherent properties and relatively lesser cohesive properties.
- Such viscoelastic agents are referred to herein as "adherent" agents.
- the cohesiveness of a viscoelastic agent in solution is thought to be dependent, at least in part, on the average molecular weight of that agent. At a given concentration, the greater the molecular weight, the greater the cohesiveness.
- Those portions of surgical procedures involving manipulation of delicate tissue are generally better served by viscoelastic agents that possess relatively greater cohesive properties and relatively lesser adherent properties.
- cohesive agents such as these, which are being employed primarily for tissue manipulation or maintenance purposes as opposed to protective purposes, a functionally desirable viscosity will be a viscosity sufficient to permit the skilled surgeon to use such agent as a soft tool to manipulate or support the tissue of concern during the surgical step(s) being performed.
- a functionally desirable viscosity will be a viscosity sufficient to permit a protective layer of such agent to remain on the tissue or cells of concern during the surgical step(s) being performed.
- Such viscosity will typically be from about 3,000 cps to about 60,000 cps (at shear rate of 2 sec"l and 25° C), and preferably will be about 40,000 cps.
- adherent agents are, capable of providing the protective function previously discussed, yet are not prone to inadvertent removal, which could jeopardize the delicate tissue being protected.
- This same characteristic makes aspiration of such adherent viscoelastics at the end of surgery (as recommended for all such commercially available products in cataract surgery) problematic for surgeons, and may result in the coated tissues being subjected to trauma during the removal procedure.
- a significant advantage of the transitional viscoelastics of the present invention is that they may be left in the surgical site at the close of surgery thereby avoiding unnecessary trauma to the affected soft tissues.
- Preferred methods of the present invention will employ the use of multiple viscoelastics in a given surgical procedure, wherein at least one of such viscoelastics is a transitional viscoelastic.
- a transitional viscoelastic possessing superior adherent properties is used in cataract surgery, at the close of which some or all of the transitional viscoelastic is left in situ and causes little or no IOP spike.
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Abstract
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Applications Claiming Priority (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US24618100P | 2000-11-06 | 2000-11-06 | |
| US24618700P | 2000-11-06 | 2000-11-06 | |
| US246187P | 2000-11-06 | ||
| US246181P | 2000-11-06 | ||
| PCT/US2001/044063 WO2002036096A2 (en) | 2000-11-06 | 2001-11-05 | Non-aspirating transitional viscoelastics for use in surgery |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP1341519A2 true EP1341519A2 (en) | 2003-09-10 |
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ID=26937777
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP01992564A Withdrawn EP1341519A2 (en) | 2000-11-06 | 2001-11-05 | Non-aspirating transitional viscoelastics for use in surgery |
Country Status (11)
| Country | Link |
|---|---|
| EP (1) | EP1341519A2 (en) |
| JP (1) | JP2004530452A (en) |
| KR (1) | KR20040011426A (en) |
| CN (1) | CN1477951A (en) |
| AR (1) | AR035597A1 (en) |
| AU (1) | AU2001298050A1 (en) |
| BR (1) | BR0115154A (en) |
| CA (1) | CA2428066A1 (en) |
| MX (1) | MXPA03004025A (en) |
| NO (1) | NO20032010L (en) |
| WO (1) | WO2002036096A2 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CA2567411A1 (en) * | 2004-05-31 | 2005-12-08 | Senju Pharmaceutical Co., Ltd. | Transparent tissue-visualizing preparation |
| JP4982839B2 (en) * | 2005-06-22 | 2012-07-25 | 国立大学法人京都大学 | Vitreous visualization agent |
| GB2501943B (en) * | 2012-05-10 | 2020-09-23 | Zeiss Carl Meditec Ag | Ophthalmic viscoelastic device |
| US20160325009A1 (en) * | 2014-01-02 | 2016-11-10 | Yissum Research Development Company Of The Hebrew University Of Jerusalem Ltd | Ophthalmic viscosurgical device |
| WO2016203381A1 (en) * | 2015-06-17 | 2016-12-22 | Al.Chi.Mi.A. S.R.L. | Viscoelastic preparation for use in surgical methods of ohphtalmic surgery |
| KR200483283Y1 (en) | 2015-07-21 | 2017-04-25 | 박윤 | Hole structure of the vinyl cover |
| IT201900006038A1 (en) * | 2019-04-18 | 2020-10-18 | Fidia Farm Spa | PHARMACEUTICAL COMPOSITIONS INCLUDING STATINS AND HYALURONIC ACID DERIVATIVES |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CA1284250C (en) * | 1985-09-06 | 1991-05-14 | Dale P. Devore | Viscoelastic collagen solution for ophthalmic use and method of preparation |
| DE69432188T2 (en) * | 1993-04-30 | 2004-01-22 | Nestle S.A. | Synthetic viscose elastic material for physiological applications such as for ophthalmic applications |
| US5792103A (en) * | 1995-02-03 | 1998-08-11 | Schwartz; Daniel M. | Viscosurgical method and apparatus |
| IT1296689B1 (en) * | 1997-11-06 | 1999-07-14 | Fidia Advanced Biopolymers Srl | ESTERE DERIVATIVES OF HYALURONIC ACID HAVING VISCOELASTIC PROPERTIES AND THEIR USE IN THE BIOMEDICAL-HEALTH FIELD |
| US7060297B2 (en) * | 2000-11-06 | 2006-06-13 | Alcon, Inc. | Carrageenan viscoelastics for ocular surgery |
-
2001
- 2001-11-05 CA CA002428066A patent/CA2428066A1/en not_active Abandoned
- 2001-11-05 EP EP01992564A patent/EP1341519A2/en not_active Withdrawn
- 2001-11-05 KR KR10-2003-7006177A patent/KR20040011426A/en not_active Ceased
- 2001-11-05 AU AU2001298050A patent/AU2001298050A1/en not_active Abandoned
- 2001-11-05 CN CNA018181953A patent/CN1477951A/en active Pending
- 2001-11-05 MX MXPA03004025A patent/MXPA03004025A/en unknown
- 2001-11-05 JP JP2002538908A patent/JP2004530452A/en not_active Withdrawn
- 2001-11-05 BR BRPI0115154-1A patent/BR0115154A/en not_active IP Right Cessation
- 2001-11-05 WO PCT/US2001/044063 patent/WO2002036096A2/en not_active Ceased
- 2001-11-06 AR ARP010105192A patent/AR035597A1/en not_active Application Discontinuation
-
2003
- 2003-05-05 NO NO20032010A patent/NO20032010L/en not_active Application Discontinuation
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| Title |
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| See references of WO0236096A2 * |
Also Published As
| Publication number | Publication date |
|---|---|
| NO20032010L (en) | 2003-07-01 |
| CN1477951A (en) | 2004-02-25 |
| AU2001298050A1 (en) | 2002-05-15 |
| WO2002036096A8 (en) | 2002-08-29 |
| WO2002036096A3 (en) | 2003-01-23 |
| MXPA03004025A (en) | 2003-08-19 |
| BR0115154A (en) | 2006-06-06 |
| CA2428066A1 (en) | 2002-05-10 |
| WO2002036096A2 (en) | 2002-05-10 |
| AR035597A1 (en) | 2004-06-16 |
| JP2004530452A (en) | 2004-10-07 |
| KR20040011426A (en) | 2004-02-05 |
| NO20032010D0 (en) | 2003-05-05 |
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