WO2004086004A1 - Static diffusion cell for diffusion sampling systems - Google Patents

Static diffusion cell for diffusion sampling systems Download PDF

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Publication number
WO2004086004A1
WO2004086004A1 PCT/US2004/009193 US2004009193W WO2004086004A1 WO 2004086004 A1 WO2004086004 A1 WO 2004086004A1 US 2004009193 W US2004009193 W US 2004009193W WO 2004086004 A1 WO2004086004 A1 WO 2004086004A1
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WO
WIPO (PCT)
Prior art keywords
diffusion
receptor
compartment
outlet
diffusion cell
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.)
Ceased
Application number
PCT/US2004/009193
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English (en)
French (fr)
Inventor
Hua Yang
Delphine Caroline Imbert
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Alza Corp
Original Assignee
Alza Corp
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Alza Corp filed Critical Alza Corp
Priority to NZ542397A priority Critical patent/NZ542397A/en
Priority to MXPA05010435A priority patent/MXPA05010435A/es
Priority to JP2006509305A priority patent/JP2006527366A/ja
Priority to CA002520439A priority patent/CA2520439A1/en
Priority to AU2004223328A priority patent/AU2004223328A1/en
Priority to EP04749440A priority patent/EP1608950A1/en
Publication of WO2004086004A1 publication Critical patent/WO2004086004A1/en
Anticipated expiration legal-status Critical
Priority to NO20054947A priority patent/NO20054947L/no
Ceased legal-status Critical Current

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N13/00Investigating surface or boundary effects, e.g. wetting power; Investigating diffusion effects; Analysing materials by determining surface, boundary, or diffusion effects
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N13/00Investigating surface or boundary effects, e.g. wetting power; Investigating diffusion effects; Analysing materials by determining surface, boundary, or diffusion effects
    • G01N13/04Investigating osmotic effects
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/02Devices for withdrawing samples
    • G01N1/10Devices for withdrawing samples in the liquid or fluent state
    • G01N1/20Devices for withdrawing samples in the liquid or fluent state for flowing or falling materials
    • G01N1/2035Devices for withdrawing samples in the liquid or fluent state for flowing or falling materials by deviating part of a fluid stream, e.g. by drawing-off or tapping
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/28Preparing specimens for investigation including physical details of (bio-)chemical methods covered elsewhere, e.g. G01N33/50, C12Q
    • G01N1/40Concentrating samples
    • G01N1/4005Concentrating samples by transferring a selected component through a membrane
    • G01N2001/4016Concentrating samples by transferring a selected component through a membrane being a selective membrane, e.g. dialysis or osmosis
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N13/00Investigating surface or boundary effects, e.g. wetting power; Investigating diffusion effects; Analysing materials by determining surface, boundary, or diffusion effects
    • G01N2013/003Diffusion; diffusivity between liquids

Definitions

  • the present invention relates to static diffusion cells useful in automated and manual diffusion sampling systems as well as assay methods that utilize diffusion sampling systems that include one or more diffusion cells according to the present invention.
  • the present invention provides a static diffusion cell that includes a single chambered receptor compartment, which design reduces or eliminates the disadvantages associated with diffusion cells having multi-chambered receptor compartments and allows for improved sampling systems and assay methods.
  • tubing is part of the cell design.
  • the receptor compartment consists of three chambers linked together by small diameter tubing.
  • the diffusion membrane is positioned on the diffusion chamber, which includes a stir bar, a sampling port that allows introduction of a sampling probe, and a water jacket with an inlet and an outlet that facilitate circulation of water around the diffusion chamber to maintain the diffusion chamber at a desired temperature.
  • a material or formulation to be evaluated is placed over the diffusion membrane, and samples are collected from the collection chamber or flow cell using a suitable collection apparatus.
  • the third chamber is used as a bubble trap.
  • a peristaltic pump continuously circulates the receptor medium between the three chambers to maintain adequate mixing. After receptor medium flows out of the diffusion chamber and flows through both the collection chamber and the bubble trap, the receptor medium returns to the diffusion chamber through a media return.
  • the diffusion cell consists of a single chamber, but the input arm of the receptor chamber is connected by tubing to a syringe chamber (Microette unit) and the output arm to a central sample collection chamber. Samples from the receptor chambers are collected in the central sample collection chamber by positive displacement initiated by the syringe unit. Therefore, the MicroettePlusTM Transdermal Diffusion System also utilizes multiple chambers interconnected by tubing.
  • the present invention is directed to a new design for a diffusion cell that can be used in conjunction with automated or manual sampling systems.
  • the present invention provides a diffusion cell that integrates a diffusion chamber, sampling chamber, and bubble trap into a single receptor compartment.
  • the cell design of the present invention allows for a diffusion cell that is completely free of tubing.
  • the present invention includes a diffusion sampling system that incorporates one or more diffusion cells according to the present invention.
  • the present invention an assay method that utilizes a diffusion sampling system according to the present invention.
  • FIG. 1 provides a schematic illustration of a Logan System-902 Transdermal Sampling System showing the three-chamber diffusion cell.
  • FIG. 2 provides a schematic illustration of the Hanson MicroettePlusTM Transdermal Diffusion System.
  • FIG. 3 provides a schematic illustration of a diffusion cell according to the present invention, wherein the sampling arm and bubble trap are part of the receptor compartment.
  • FIG. 4 provides a schematic illustration of a diffusion cell according to the present invention, wherein the first opening of the receptor compartment is positioned on the side of the cell, preventing accumulation of air bubbles under the diffusion membrane.
  • FIG. 5 provides a schematic illustration of a diffusion cell according to the present invention, wherein the first opening creates a diffusion area that is tilted upward toward the second opening, which works to prevent accumulation of air bubbles under the diffusion membrane
  • FIG. 6 and FIG. 7 provide schematic illustrations of diffusion cells according to the present invention, wherein the diffusion cells include a top section and a bottom section and the bottom section can be removed and made of different sizes to provide receptor compartments of different volumes.
  • FIG. 8 provides a schematic illustration of an alternative embodiment of a diffusion cell according to the present invention that includes a top section and a bottom section.
  • FIG. 9 provides a schematic illustration of a bubble channel that can be formed between the first opening and the second opening in the receptor compartment of a diffusion cell according to the present invention.
  • FIG. 10 depicts one example of arranging the static diffusion cells in a mounting apparatus, wherein the sampling ports are lined up in multiple parallel rows.
  • FIG. 11 depicts another example of arranging the static diffusion cells in a mounting apparatus, wherein the sampling ports are lined up in a single row.
  • FIG. 12 depicts sampling heads to match a mounting apparatus as illustrated in Figures 10 and 11 , respectively.
  • FIG. 13 illustrates a reinforcing ring for use with a diffusion membrane in a diffusion cell of the present invention.
  • the present invention is directed to a new design for a diffusion cell that can be used in conjunction with automated or manual sampling systems.
  • the present invention provides a diffusion cell that integrates a diffusion chamber, sampling chamber, and bubble trap into a single receptor compartment.
  • the cell design of the present invention allows for a diffusion cell that is completely free of tubing.
  • the design of a diffusion cell according to the present invention eliminates the need for a pump for circulating the fluid within various chambers.
  • the design of the diffusion cell of the present invention has several advantages over diffusion cell designs that include multiple compartments, wherein the receptor medium flows into the different compartments through tubing that places the compartments in fluid communication.
  • the diffusion cells of the present invention can be easily removed and replaced within a diffusion apparatus, which eases experimental set-up and cleaning.
  • calculation of the cell volume includes assessment of the receptor fluid within the tubing, which makes an accurate determination of cell volume difficult.
  • diffusion cells of the present invention include a single-chambered receptor compartment, diffusion cells of the present invention allow easier and more accurate determination of cell volume.
  • Diffusion cells designed according to the present invention are also ease the tasks of replenishing receptor medium and maintaining the receptor medium at a constant volume within the diffusion cell.
  • the diffusion cell design of the present invention allows for relatively easy removal of bubbles appearing under the surface of the diffusion membrane during the course of the experiment.
  • the static diffusion cell of the present invention is designed to automatically reduce the possibility of accumulation of air bubbles at the surface of the diffusion membrane exposed to the receptor compartment.
  • Each embodiment of the diffusion cell of the present invention illustrated herein is shown without a water jacket.
  • Existing diffusion cells are often designed to include a water jacket, which serves to control the temperature of the diffusion cell by circulating water of a desired temperature around at least a portion of the receptor compartment.
  • the diffusion cell of the present invention can be designed to include a water jacket, if desired, presently preferred embodiments do not include such a feature. Eliminating the water jacket further simplifies the design of the diffusion cell, and, in particular, eliminates the need for the tubing and fixtures to support such a temperature regulating system.
  • control of the temperature within the diffusion cells of the present invention can be achieved through alternative means.
  • temperature control of a diffusion cell according to the present invention can be achieved by positioning the diffusion cell within a mounting block that is regulated to a desired temperature and is designed to accommodate one or more diffusion cells.
  • FIG. 3 A first embodiment of the diffusion cell of the present invention is illustrated in FIG. 3.
  • the diffusion cell of the present invention includes a single-chamber receptor compartment, a donor compartment, a diffusion membrane, and a sampling arm.
  • the diffusion membrane is positioned over the first outlet and once the diffusion cell is assembled, a top surface of the diffusion membrane forms at least a portion of the bottom surface of the donor compartment, and a bottom surface of the diffusion membrane forms at least a portion of the top surface of the receptor compartment.
  • the diffusion membrane used in a diffusion cell according to the present invention may be any natural or synthetic material suitable for application in a diffusion cell.
  • Natural membranes useful in a diffusion cell according to the present invention include, but are not limited to, skin, mucosal membranes, cornea, and epithelial membranes (e.g., intestinal, colonic, or nasal epithelial membranes).
  • the diffusion membrane is formed of animal or human skin.
  • the diffusion membrane may be positioned over or disposed between a device or component that reinforces the diffusion membrane and allows the diffusion membrane to be securely held in place without undesired damage to the membrane.
  • a reinforcing ring such as a washer or gasket, is positioned under the diffusion membrane or over the diffusion membrane.
  • a reinforcing ring used in a diffusion cell of the present invention can be formed of any suitable material, such as a polymer material.
  • a cover material such as a cover fabric (shown in FIG. 13), can be positioned over the diffusion membrane and test material.
  • a test material is deposited in the donor compartment in contact with the top surface of the diffusion membrane.
  • the test material includes one or more constituents, such as one or more drugs, to be tested for permeability or flux across the diffusion membrane.
  • the diffusion cell of the present invention is used to evaluate the flux of one or more drugs contained in a test material across the diffusion membrane, diffusion cells according to the present invention are not so limited in use.
  • a diffusion cell according to the present invention can be used to evaluate the permeability or flux of virtually any desired substance across a chosen diffusion membrane.
  • the test material therefore, can include a wide range of substances or formulations. For example, the test material may simply be a desired amount of a particular compound at a chosen purity.
  • the test material may include a formulation of two or more materials, such as a liquid formulation (e.g., a solution, suspension, emulsion, etc.) or a lotion, cream, gel, or other semi-solid formulation.
  • a liquid formulation e.g., a solution, suspension, emulsion, etc.
  • a lotion, cream, gel, or other semi-solid formulation e.g., a lotion, cream, gel, or other semi-solid formulation.
  • the test material may include a drug delivery device, such as a transdermal therapeutic device, designed to delivery a chosen substance, such as one or more therapeutic agents.
  • the receptor compartment of a diffusion cell of the present invention may be designed according to any desired size or shape. However, the geometry of the receptor compartment is preferably designed for efficient stirring of the receptor medium.
  • the receptor compartment typically includes a magnetic stir bar or other suitable means to ensure proper stirring of the receptor medium throughout the diffusion cell, which reduces the possibility of forming stagnant diffusion layers near the diffusion membrane.
  • a receptor compartment of a diffusion cell according to the present invention also includes a first outlet and a second outlet.
  • the first outlet may be formed to any size and shape that allows positioning of the diffusion membrane over the first opening.
  • the first opening is preferably sized from about 0.7 to about 5 cm 2 .
  • the size and shape of the first opening can be varied, as desired, to allow the use of differently sized diffusion membranes and to suit any particular test conditions.
  • the first opening can also be adapted to facilitate positioning of the diffusion membrane and association of the donor compartment with the receptor compartment.
  • the first outlet and donor compartment of the diffusion cell illustrated in FIG. 3 are designed with a flange that facilitate clamping of the donor compartment over the diffusion membrane and the first opening of the receptor compartment.
  • the donor compartment can be associated with the receptor compartment using any suitable mechanism, not just a clamp.
  • the donor compartment can be associated with the receptor compartment using a threaded connection, a male-female connection, a snap- fit connection, or through a friction or interference fit.
  • Both the donor compartment and the receptor compartment, including the first opening, can be adapted as necessary to facilitate the use of a desired mechanism for the association of the donor compartment with the receptor compartment.
  • the second outlet of the receptor compartment serves as a sampling arm and a bubble trap.
  • the second outlet may be sized and shaped according to any desired configuration providing a suitable sampling arm.
  • the opening of the second outlet will be smaller than that of first outlet.
  • the second outlet includes a cap or a seal having a septum that can be penetrated by a sampling needle.
  • the opening of the second outlet will be circular in shape and will be about 0.5 cm in diameter.
  • the second outlet is sized and shaped so that HPLC vial caps with a septum can be used to cap the second outlet.
  • the sampling arm formed at the second outlet also serves as a bubble trap, allowing the removal of bubbles that form under the diffusion membrane.
  • bubbles are removed either by tilting the cell and forcing the bubbles from under the diffusion membrane and into the sampling arm, or the diffusion cell may be designed such that bubbles forming within the cell automatically migrate into the sampling arm formed by the second outlet. If large bubbles accumulate in the sampling arm and the total receptor medium level decreases, more receptor medium can be easily added through the sampling arm to keep the total receptor medium level constant.
  • the donor compartment of a diffusion cell according to the present invention is positioned over the first opening of the receptor compartment and can be sized and shaped as desired to meet any experimental need.
  • the donor compartment is designed to contain the test material.
  • a cap or seal such as a screw cap, septum, or the like, may be provided over the donor compartment and may be necessary where the test material is a liquid or low viscosity or where evaporation or contamination of the test material are to be reduced or eliminated.
  • the donor compartment can be associated with the receptor compartment using any suitable mechanism.
  • the donor compartment may be clamped to the receptor compartment or, alternatively, the donor compartment may be associated with the receptor compartment using a threaded connection, a male-female connection, a snap- fit connection or by a friction or interference fit. Therefore, the design of one or more components forming the donor compartment can be adapted to facilitate association of the donor compartment with the receptor compartment according to any desired mechanism.
  • the mechanism for associating the donor compartment with the receptor compartment maintains the donor compartment in close contacting relationship with the diffusion membrane or the first opening of the receptor compartment.
  • FIG. 4, FIG. 5 and FIG. 8 illustrate embodiments of the diffusion cell of the present invention that facilitate the automatic migration of bubbles from the underside of the diffusion membrane positioned at the first outlet of the receptor compartment to the bubble trap formed at the second outlet of the receptor compartment.
  • the first outlet of the receptor compartment can be positioned on a side of the receptor compartment instead of the top. Designing the diffusion cell in this manner effectively rotates the arrangement of the diffusion membrane from a roughly horizontal position to a roughly vertical position. Because the diffusion membrane is positioned horizontally on one side of the receptor compartment, any bubbles formed within the receptor compartment will tend to rise away from the surface of the diffusion membrane to the top of the receptor compartment, where the second outlet and bubble trap are located.
  • the top surface of the receptor chamber can form an incline that raises toward the second outlet, thereby further increasing the likelihood that any bubbles formed within the receptor compartment will automatically migrate into the bubble trap formed by the second outlet.
  • the association of the diffusion membrane, donor compartment and receptor compartment form a seal that prevents leaking of the receptor medium from within the receptor compartment.
  • Any suitable mechanism for associating the donor and receptor compartments can be used.
  • the necessary seal at the interface between the diffusion membrane, donor compartment and receptor compartment can be formed solely by the mechanism associating the components, or, alternatively, one or more additional sealing members may be included to provide the desired seal.
  • the mechanisms already described for associating the donor compartment and receptor compartment, as well as the additional sealing members described herein are also suitable for use in a diffusion cell designed according to the embodiment illustrated in FIG. 4.
  • FIG. 5 and FIG. 8 illustrate diffusion cells according to the present invention wherein both the first and second outlets of the receptor compartment are located at the top of the receptor compartment, but the first outlet is designed such that the portion of the top surface of the receptor compartment formed by the bottom surface of the diffusion membrane inclines upward toward the second outlet.
  • This tilt or inclination of the top surface of the receptor compartment toward the second outlet of the receptor compartment works to automatically direct any bubbles that form or come to rest on the bottom surface of the diffusion membrane toward the bubble trap formed by the second outlet.
  • the diffusion cell of the present invention is not only designed with receptor compartment having a top surface that inclines upward toward the second opening, but the diffusion cell also includes a channel connecting the first and second outlets.
  • the channel can simply be a depression formed in the top surface of the receptor compartment that extends between the first and second outlets. An illustration of such a channel is provided in FIG. 9.
  • the first outlet of the receptor compartment will not be designed such that the bottom surface of the diffusion membrane is flush with the other portions of the top surface of the receptor compartment. Because of this, bubbles may be trapped at the step formed where the bottom surface of the diffusion membrane interfaces with the remainder of the top surface of the receptor compartment. Forming a channel between the first and second outlet reduces any step formed at this interface and thereby further facilitates the automatic migration of bubbles from the bottom surface of the diffusion membrane to the bubble trap formed by the second outlet.
  • the volume of receptor medium contained within a diffusion cell according to the present invention must be considered when designing a diffusion study.
  • receptor compartment volumes for diffusion cells range from about 5-30 ml.
  • diffusion cells having virtually any desired volume of receptor media can be designed.
  • relatively small volumes of receptor medium are desirable and may be necessary so that the concentration of the material to be assayed within the receptor medium can be above the limit of detection for the assay method used within a reasonable amount of time.
  • the volume of the receptor compartment can be varied to provide any particular volume of receptor medium useful for a chosen diffusion study.
  • the diffusion cell of the present invention can be designed having separable top and bottom sections (shown in FIG. 6 - FIG.8).
  • the top section of such an embodiment is formed as a cap or a plug, includes the first outlet of the receptor compartment and integrates an area for association of the donor compartment with the receptor compartment.
  • a bottom surface of the top section also forms at least a portion of the fop surface of the receptor compartment.
  • the top section also incorporates the second outlet of the receptor compartment and, as a result, the sample arm and bubble trap of the diffusion cell.
  • the bottom section is typically a cup-, well-, or tube-shaped reservoir that is removable from the top section of the diffusion cell.
  • the shape or geometry of the bottom section is preferably designed for efficient stirring of the receptor medium.
  • a sealed receptor compartment of a given volume is formed when the top and bottom sections of the diffusion cell are properly associated.
  • the volume of the receptor compartment can be readily tailored to a meet the needs of a desired diffusion study.
  • the two sections of the diffusion cell can be associated using any suitable means.
  • the top and bottom section are designed to fit together with a friction or interference fit.
  • the top section may include a lip, flange, or other feature that ensures the top section is inserted into the bottom section to a desired depth, providing a receptor compartment having a desired volume.
  • the top or bottom section can incorporate one or more sealing members, such as one or more O-rings or gaskets.
  • the force required to associate and dissociate the top and bottom sections should be at least sufficient to maintain the two sections together during a diffusion test and to form an adequate seal where the top and bottom sections interface.
  • top and bottom sections of a diffusion cell of the present invention might also be associated using any other suitable mechanism.
  • the top and bottom sections of a diffusion cell according to the present invention can be associated using a clamp.
  • the top and bottom sections of a diffusion cell of the present invention can be associated using, for example, a threaded connection, a male-female connection or a snap-fit connection.
  • the design of the top and bottom sections of a diffusion cell of the present invention is flexible and can be altered to accommodate the use of virtually any suitable connection mechanism.
  • the various different components of diffusion cells of the present invention can be fabricated using materials well known in the art. However, in preferred embodiments, at least a portion of the receptor compartment is formed of a glass material. Where the diffusion cell according to the present invention includes a top and bottom section, it is preferable to form the top section of TEFLON® and the bottom section of glass. However, any other materials that are suitable for application in a diffusion cell of the present invention may also be used. For example, instead of TEFLON®, the top section of a diffusion cell of the present invention can be formed of a metal or metal alloy, a polymer material or glass. Moreover, instead of glass, the bottom section of a diffusion cell of the present invention can be formed of a metal or metal alloy or a polymer material. A material is suitable for use in the fabrication of a diffusion cell of the present invention provided it is capable of withstanding exposure to the anticipated test conditions without physical failure and without contaminating the receptor media or retaining undesirable amounts of the material to be assayed.
  • diffusion cells of the present invention can be used to conduct a variety of assays used in the art.
  • diffusion cells of the present invention can be used to test various drug dosage forms, including transdermal dosage forms, oral dosage forms, ocular dosage forms such as transdermal or transmucosal patches, tablets, semi-solid dosage forms, gel formulations, pastes, ointments, emulsions, suspension, drops and the like.
  • Diffusion cells according to the present invention can also be used for mechanistic studies, e.g. transport studies through epithelia that focus on various parameters, such as vehicle effect, ionic strength, markers and the like.
  • the diffusion cells of the present invention can also be used for non-passive diffusion assessments that involve active transport mechanisms, which include iontophoresis, sonophoresis, and the like.
  • a diffusion sampling system of the present invention includes one or more diffusion cells according to the present invention positioned within a mounting apparatus, such as a mounting block, that allows for stirring of the receptor media in the diffusion cells and serves to maintain the diffusion cells at a desired temperature.
  • a mounting apparatus such as a mounting block
  • the mounting block is preferably formed of a conductive metal, such as an aluminum alloy or stainless steel, that can be maintained at a substantially uniform temperature throughout the mounting block and allows the use of magnetic stir bars within the receptor compartment.
  • the diffusion cells included in a diffusion sampling system of the present invention are positioned within the mounting apparatus such that sampling ports of each diffusion cell are readily accessible.
  • the diffusion cells include a keying feature that require the diffusion cells to be positioned within the mounting apparatus such that the sample ports are aligned in a configuration that facilitates easy sampling. Once positioned within the mounting apparatus, the diffusion cells can be sampled manually or automatically.
  • the diffusion sampling system of the present invention can include, for example, a robot with multidirectional flexibility, such as an XYZ.
  • XYZ robots are often used in high throughput screening applications and are capable of controlled, programmable movements in all directions along the XYZ axes.
  • XYZ robots can also be provided with sampling heads that allow the simultaneous sampling of several cells (generally up to 6 to 12 cells simultaneously).
  • different robot sampling heads can be used. Examples of two designs for the blocks and the matching sampling heads are shown in Figs. 10-12.
  • the static diffusion cells of the present invention are also adapted for manual sampling.

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  • Physics & Mathematics (AREA)
  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Biochemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Immunology (AREA)
  • Pathology (AREA)
  • Apparatus Associated With Microorganisms And Enzymes (AREA)
  • Investigating Or Analysing Biological Materials (AREA)
  • Sampling And Sample Adjustment (AREA)
  • Measuring Or Testing Involving Enzymes Or Micro-Organisms (AREA)
  • Automatic Analysis And Handling Materials Therefor (AREA)
PCT/US2004/009193 2003-03-28 2004-03-27 Static diffusion cell for diffusion sampling systems Ceased WO2004086004A1 (en)

Priority Applications (7)

Application Number Priority Date Filing Date Title
NZ542397A NZ542397A (en) 2003-03-28 2004-03-27 Static diffusion cell for diffusion sampling systems
MXPA05010435A MXPA05010435A (es) 2003-03-28 2004-03-27 Celda de difusion estatica para sistemas de muestreo de difusion.
JP2006509305A JP2006527366A (ja) 2003-03-28 2004-03-27 拡散試料採取装置用の静止拡散セル
CA002520439A CA2520439A1 (en) 2003-03-28 2004-03-27 Static diffusion cell for diffusion sampling systems
AU2004223328A AU2004223328A1 (en) 2003-03-28 2004-03-27 Static diffusion cell for diffusion sampling systems
EP04749440A EP1608950A1 (en) 2003-03-28 2004-03-27 Static diffusion cell for diffusion sampling systems
NO20054947A NO20054947L (no) 2003-03-28 2005-10-25 Statisk diffusjonscelle for diffusjonsprovetakingssystem

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US45890503P 2003-03-28 2003-03-28
US60/458,905 2003-03-28

Publications (1)

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WO2004086004A1 true WO2004086004A1 (en) 2004-10-07

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US (2) US7470535B2 (enExample)
EP (1) EP1608950A1 (enExample)
JP (1) JP2006527366A (enExample)
KR (1) KR20050113256A (enExample)
CN (1) CN1768257A (enExample)
AU (1) AU2004223328A1 (enExample)
CA (1) CA2520439A1 (enExample)
MX (1) MXPA05010435A (enExample)
NO (1) NO20054947L (enExample)
NZ (1) NZ542397A (enExample)
WO (1) WO2004086004A1 (enExample)
ZA (1) ZA200508728B (enExample)

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FR2951089A1 (fr) * 2009-10-09 2011-04-15 Univ Franche Comte Insert de diffusion pour l'analyse de membrane, kit-cellule-unite et procede de diffusion
WO2011067587A1 (en) * 2009-12-01 2011-06-09 Health Protection Agency Assay method and apparatus
CN104007045A (zh) * 2014-05-12 2014-08-27 河海大学 一种泥水盾构机泥浆成膜数值模拟方法

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JP2006527366A (ja) * 2003-03-28 2006-11-30 アルザ・コーポレーション 拡散試料採取装置用の静止拡散セル
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US20110120214A1 (en) * 2009-11-23 2011-05-26 Logan Instruments Corp. Transdermal diffusion cell testing vessel and methods using same
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NZ542397A (en) 2008-03-28
CN1768257A (zh) 2006-05-03
US8133721B2 (en) 2012-03-13
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US20050019903A1 (en) 2005-01-27
US7470535B2 (en) 2008-12-30

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