Devices for tissue cryopreservation and recovery
The device for cryopreserved tissue recovery addresses the challenges of tissue damage and sterility by providing automated thawing and culture, ensuring efficient and sterile tissue recovery for transplantation.
Patent Information
- Application Number
- JP2023127909
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-02-01
- Filing Date
- 2023-08-04
- Publication Date
- 2026-03-05
- Estimated Expiration
- 2038-01-31
AI Technical Summary
Cryopreservation of tissue sheets and three-dimensional tissue constructs is challenging due to damage from tensile stresses during freezing and thawing, non-uniform physical changes, and the toxicity of conventional cryopreservation media, requiring manual handling and specialized equipment for transplantation, which compromises sterility and viability.
A device for cryopreserved tissue recovery includes a tissue container receptacle with recovery and waste chambers, automated thawing and culture capabilities, and a conditioning device that identifies tissue type for controlled thawing and maintenance, maintaining a sterile environment and reducing human and infrastructure requirements.
Facilitates simpler, faster, and less hazardous recovery of cryopreserved tissue, minimizing contamination and resource use while ensuring tissue viability for transplantation.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 62 / 453,148, filed February 1, 2017, which is incorporated herein by reference in its entirety.
[0002] Statement of government support This invention was made with government support under project numbers Z01#:EY00419, EY000542, EY000456 and EY000531 awarded by the National Eye Institute, National Institutes of Health. The government has certain rights in this invention.
[0003] Field The present invention relates to the field of tissue cryopreservation and recovery. [Background technology]
[0004] background Cryopreservation is a process in which living biological materials (e.g., cells, tissues) that are susceptible to damage caused by unregulated chemical kinetics are preserved by cooling to very low temperatures in the presence of a specific cryopreservation medium that protects the biological material from damage. At sufficiently low temperatures, physical or chemical activity that may cause damage to the biological material is virtually stopped. The biological material is then thawed in a controlled manner that minimizes damage and, hopefully, restores the material to a viable state.
[0005] While single-cell suspensions are commonly cryopreserved, cryopreserving tissue sheets or layers so that they can later be recovered and remain viable for transplantation into a patient is much more difficult, and even more so for three-dimensional tissue constructs. Tissue layers and three-dimensional tissue constructs can suffer damage from tensile stresses incurred during, for example, the expansion and contraction that occurs during freezing and thawing. Non-uniform physical changes within the tissue during cooling or warming can also result in tissue damage. Furthermore, conventional cryopreservation media can be toxic to unfrozen tissue, rendering the tissue unsuitable for subsequent recovery and culture. Another problem arises when tissue needs to be transported into the operating room for transplantation, which typically requires cell culture laboratory equipment to recover the tissue from the frozen state prior to the transplantation procedure. This also imposes specific requirements for maintaining sterility. For example, in the process of using retinal epithelial tissue layers, the cryopreserved epithelial tissue must be manually thawed and then transferred between multiple containers for culture and maintenance, which introduces variability, can compromise sterility, and requires specialized equipment, including a cell culture lab with highly trained personnel to complete the various steps. Summary of the Invention [Means for solving the problem]
[0006] Abstract The disclosed technology makes frozen tissue recovery, culture, and maintenance simpler, faster, and less hazardous to the tissue, reducing tissue contamination and requiring fewer human and infrastructure resources to accomplish. The disclosed device for recovering cryopreserved tissue can include a tissue container receptacle that receives a sealed frozen tissue container containing cryopreserved tissue (e.g., a tissue sheet or a complex three-dimensional tissue construct) and a cryopreservation medium. The recovery device also can include at least one recovery medium chamber configured to contain at least one reservoir of tissue recovery medium fluidly coupled to the tissue container receptacle and a waste chamber fluidly coupled to the tissue container receptacle.
[0007] The recovery device, into which the frozen tissue container is loaded, can be placed in a conditioning device that facilitates thawing and warming of the frozen tissue and cryopreservation medium inside the tissue container, and can also warm the tissue recovery medium. The conditioning device can identify the tissue type based on an ID tag (e.g., an NFC or RFID tag) on the tissue container and automatically apply the appropriate algorithm to thaw, culture, and maintain the tissue in a viable state until ready for use (e.g., transplantation into a patient, testing, etc.). In some embodiments, the conditioning device can control the recovery, culture, and maintenance process in an almost fully automated manner once the tissue container is inserted into the recovery device and the recovery device is inserted into the conditioning device.
[0008] The recovery device directs tissue recovery medium from at least one recovery medium chamber into a tissue container in a tissue container receiver and directs waste medium (e.g., including thawed cryopreservation medium) from inside the tissue container into a waste chamber, while maintaining the tissue container and medium in a sterile, contained environment that provides controlled temperature, gas levels (e.g., carbon dioxide levels), and / or parameters.
[0009] In some embodiments, the device can include a first housing component including at least one recovery medium chamber and a second housing component including a waste chamber, such that the first and second housing components are attachable to and detachable from each other. A tissue container receptacle can be defined between the first and second housing components when the first and second housing components are attached together. Each component can include an engagement means, such as a thread or an interlocking member, to secure the two components together around the tissue container in a sealed manner. The tissue container can be removable from the tissue container receptacle by removing the first and second housing components from each other.
[0010] The device can further include at least a first piercing element (e.g., a needle) that creates at least a first opening in the received tissue container to allow recovery medium to be introduced from the recovery medium chamber into the tissue container, and at least a second piercing element (e.g., another needle) that creates at least a second opening in the received tissue container to allow waste medium to be introduced from the tissue container to the waste chamber. The piercing element can include an internal conduit that directs fluid flow. In some embodiments, piercing occurs when the container is inserted into the device or when the two components are secured together. For other embodiments, piercing can be automated, occurring after the tissue container is sealed inside the device.
[0011] The at least one recovery medium chamber can include two or more recovery medium chambers configured to contain two or more different tissue recovery media, for example, one medium can be applied to one side of the sheet of tissue while another medium is applied to the opposite side of the sheet of tissue.
[0012] In some embodiments, the recovery medium chamber can receive an insertable and removable medium container containing tissue recovery medium. The insertable and removable medium container can include a manually actuable mechanism for directing a desired amount of recovery medium from the medium container to the tissue container. For example, the manually actuable mechanism can include a plunger or a screw-drive actuator. In some embodiments, the recovery medium chamber can be fully automated and controlled to dispense medium at a predetermined rate. The waste chamber can also be removable from the device to discard the received waste and can be replaced with an empty waste chamber. This allows certain components of the device to be disposable, replaceable, and / or sanitizable without the need to discard or sanitize the entire device after each new use.
[0013] The tissue container itself can include a container vessel, a tissue well positioned inside the container vessel, tissue positioned inside the tissue well, cryopreservation medium inside the tissue well and container vessel, a lid sealed to the container vessel that seals the cryopreservation medium within the container vessel, and an identification tag on the container vessel, lid, or tissue well that identifies the tissue. In certain applications, the tissue includes a sheet of epithelial tissue (e.g., a monolayer of retinal pigment epithelium on a scaffold), and the cryopreservation medium can include sodium alginate. The entire tissue container can be cryopreserved and stored for long periods (e.g., 5 years or more) by the disclosed device, and then thawed, cultured, and maintained in a usable state. In some embodiments, the entire recovery device, with the recovery medium and tissue container enclosed inside, can be frozen and stored as a unit.
[0014] The foregoing and other objects, features, and advantages of the disclosed technology will become more apparent from the following detailed description which proceeds with reference to the accompanying drawings. For example, the present application provides the following: (Item 1) 1. A device for restoring cryopreserved tissue, comprising: a tissue container receptacle for receiving a sealed tissue container containing cryopreserved tissue and a cryopreservation medium; at least one recovery medium chamber configured to contain a reservoir of tissue recovery medium, the at least one recovery medium chamber being fluidly coupled to the tissue container receptacle; a waste outlet fluidly coupled to the tissue container receptacle; Equipped with The device promotes thawing and culturing of frozen tissue inside the received tissue container by directing tissue recovery medium from the at least one recovery medium chamber into the tissue container in the tissue container receiver, and by directing waste containing thawed cryopreservation medium from inside the tissue container out through the waste outlet. (Item 2) Item 1, wherein the device comprises a first housing component containing the at least one recovery medium chamber and a second housing component containing the waste outlet, the first and second housing components being attachable to and detachable from each other. (Item 3) 3. The device of claim 2, wherein the tissue container receptacle is defined between the first and second housing components when the first and second housing components are attached together. (Item 4) 4. The device of claim 3, wherein the received tissue container is sealed within the tissue container receptacle when the first and second housing components are attached together, and the tissue container is removable from the tissue container receptacle by detaching the first and second housing components from one another. (Item 5) 5. The device of any one of items 1-4, further comprising at least a first piercing element that creates at least a first opening in the received tissue container to allow recovery medium to be guided from the recovery medium chamber into the tissue container, and at least a second piercing element that creates at least a second opening in the received tissue container to allow waste medium to be guided out of the tissue container through the waste outlet. (Item 6) 6. The device of any one of items 1-5, wherein the at least one recovery medium chamber comprises two or more recovery medium chambers configured to contain two or more different tissue recovery media. (Item 7) 7. The device of any one of items 1-6, wherein the at least one recovery medium chamber receives an insertable and removable medium container containing the tissue recovery medium. (Item 8) 8. The device of claim 7, wherein the insertable and removable medium container is manually actuatable to direct a desired amount of the recovery medium from the medium container to the tissue container. (Item 9) 9. The device of any one of items 1-8, further comprising a waste chamber fluidly coupled to the waste outlet, the waste chamber configured to receive and store the waste within the device. (Item 10) 10. The device of any one of items 1-9, further comprising at least a first conduit fluidly connecting the at least one recovery medium chamber to the tissue container receptacle. (Item 11) 11. The device of any one of items 1-10, wherein the device directs a first recovery medium to a first side of the tissue and a second recovery medium to a second side of the tissue. (Item 12) 12. The device of any one of claims 1-11, wherein the waste outlet is connectable to an active vacuum to draw waste out of the device. (Item 13) 13. The device of any one of items 1-12, further comprising a valve positioned along a fluid conduit coupled between the at least one recovery medium chamber and the tissue container receptacle. (Item 14) 14. The device of any one of items 1-13, wherein the tissue recovery medium comprises a ROCK inhibitor, Y-27632. (Item 15) An adjustment device, 15. A housing having a compartment operable to receive the tissue repair device of any one of items 1-14; an identification tag reader that reads an identification tag on the tissue container in the tissue recovery device and enables the adjustment unit to determine identification information about the tissue inside the tissue container; at least a first heater for heating the tissue container inside the tissue recovery device; An adjustment device comprising: (Item 16) Item 16. The adjustment apparatus of item 15, further comprising at least a second heater that warms the tissue recovery medium in the recovery medium chamber of the tissue recovery device. (Item 17) 17. The adjusting device of claim 15 or 16, further comprising a control system programmed to control heating of the tissue container by the first heater based at least in part on the identification information about the tissue to restore the tissue to a viable state and to maintain the tissue in the viable state. (Item 18) 18. The adjusting apparatus of any one of items 15-17, further comprising a valve controller that controls the operation of a valve within the tissue recovery device to adjust the flow of tissue recovery medium into the tissue container. (Item 19) A tissue container that can be used with the device according to any one of items 1-14, A container tank; a tissue well positioned inside the vessel; and a tissue positioned inside the tissue well; and a cryopreservation medium inside the tissue well and the container bath; a lid that seals the cryopreservation medium within the vessel and is sealed to the vessel; an identification tag on the vessel, the lid, or the tissue well that identifies the tissue; A tissue container comprising: (Item 20) 20. The tissue container of item 19, wherein the tissue comprises a sheet of epithelial tissue and the cryopreservation medium comprises sodium alginate. [Brief explanation of the drawings]
[0015] [Figure 1] FIG. 1 shows an exemplary tissue well that holds tissue and fluids during cryopreservation and recovery. [Figure 2] FIG. 2 shows an exemplary sealed container enclosing the tissue well of FIG. 1 with tissue and fluid during cryopreservation and recovery. [Figure 3] FIG. 3 is a top view of the container base and tissue well of FIG. 2 with the lid removed. [Figure 4] FIG. 4 is a perspective view of the container base and tissue well that fits inside the container base. [Figure 5] FIG. 5 shows a sealed container with the lid sealed over the container base. [Figure 6] FIG. 6 is a vertical cross-sectional schematic diagram illustrating an exemplary retrieval device for retrieving frozen tissue stored within a sealed cryopreservation container. [Figure 7] FIG. 7 illustrates various isolated components of the recovery device of FIG. [Figure 8] FIG. 8 shows the recovery device of FIG. 6 inserted into a regulating device that heats the recovery device and regulates the flow of recovery fluid inside the recovery device. [Figure 9]9 is a vertical cross-sectional schematic diagram illustrating the recovery device of FIG. 6 installed in the coordinating device of FIG. 8, with the coordinating device detecting the nature of the recovery device via an NFC tag reader. [Figure 10] FIG. 10 is a flow chart illustrating an exemplary method for tissue cryopreservation, storage, transport, and retrieval. [Figure 11] FIG. 11 is a schematic side cross-sectional view illustrating another exemplary recovery device inside another exemplary adjustment device. [Figure 12] FIG. 12 is an enlarged view of a tissue-containing container mounted inside the recovery device of FIG. 11 and pierced by a needle of the recovery device to allow recovery fluid to flow through the container. [Figure 13] FIG. 13 shows the heater of the regulating device of FIG. 12 warming the recovery fluid in the upper portion of the recovery device. [Figure 14] FIG. 14 shows the heater of the conditioning device of FIG. 12 warming the recovery fluid in the upper portion of the recovery device and warming the frozen contents of the tissue container. [Figure 15] FIG. 15 shows the adjustment device of FIG. 12 actuating a valve inside the recovery device to allow recovery fluid to flow into the tissue container and push waste fluid into the lower waste container of the recovery device. [Figure 16] FIG. 16 shows the state of the recovery device of FIG. 12 after the recovery fluid has passed through the tissue container and washed the fluid contents of the tissue container into the lower waste container, leaving some recovery fluid behind in the tissue container. DETAILED DESCRIPTION OF THE INVENTION
[0016] Detailed Description 1-5 illustrate an exemplary tissue container 22 containing tissue or other biological material within the tissue well 12 in addition to cryopreservation medium. The tissue is not shown in the figures. The sealed tissue container 22 can be frozen and stored for extended periods of time. Later, the tissue container 22 can be placed into a recovery device, such as the recovery device 30 shown in FIG. 6 or the recovery device 230 shown in FIG. 11, and the frozen tissue can be thawed, cultured, and recovered to a viable state suitable for transplantation into a patient and / or other uses for the tissue. In some embodiments, the tissue can be stored in a cryopreserved state within the recovery device for extended periods of time, such as within the entire recovery device, which is kept in a frozen environment. A conditioning device, such as the embodiment 80 shown in FIG. 9 or the embodiment 200 shown in FIG. 11, can be used in conjunction with the recovery device to carefully monitor and control the thawing, culture, and recovery processes.
[0017] FIG. 1 shows an exemplary tissue well 12 in which tissue is positioned (the tissue itself is not shown, but rests at the bottom of the well 12). FIG. 2 shows the tissue well 12 inside a tissue container 22, which includes a bath 14 and a lid 20 sealed over the top of the bath. The bath 14 can include a recess 16 that receives the tissue well 12 ( FIG. 4 ) in addition to the cryopreservation medium, and an upper flat surface 18 to which the lid 20 is sealed. As shown in FIG. 5 , the lid 20 can include a peelable tab 24 or other feature to facilitate easy removal from the lid 20 when the tissue is ready to be removed. The lid 20, bath 14, or well 12 can include an identification tag, such as the tag 26 shown in FIG. 5 , that can be read by a recovery device, a regulator, and / or another device to determine details of the tissue and / or medium contained within the tissue container 22. The tag 26 can include an NFC tag, an RFID tag, a barcode, a handwritten label, or other suitable identification means. The lid 20 can be sealed to the vessel 14 using any suitable means, such as heat sealing.
[0018] In some embodiments, the tissue well 12 can comprise a thermoplastic material, such as Splint Material from Keystone Industries, having a thickness of, for example, 0.5-1.0 mm. A sheet of such material can be thermoformed over a mold to form the tissue well. This type of material can provide biocompatibility with tissue and can survive freeze-thaw cycles well. Disinfection with ethylene oxide also works well with this type of material.
[0019] In some embodiments, a retaining ring can be included inside the well over the tissue sample to hold the tissue in place within the well. The retaining ring can comprise, for example, PTFE / Teflon or a similar material. The retaining ring can hold the tissue in place when the well is tilted, turned on its side, upside down, etc. The ring can have openings to allow fluid to flow into and out of the well and interact with the tissue sample.
[0020] In some embodiments, the lid 20 can include a film with an adhesive layer to secure the lid to the vessel 14. For example, the lid 20 can include a polyester label film, such as M-129-461 film or M-114-490 film from BRADY. This type of material is designed to survive the freezing of liquid nitrogen without losing its adhesive properties.
[0021] In some embodiments, tissue container 22 does not include a separate tissue well, such as well 12 of FIG. 1; instead, the tissue is placed directly into vessel 14. In other embodiments, other forms of tissue containers or tissue holders can be included inside tissue container 22 to maintain the tissue in a desired orientation or position. For example, it may be desirable to maintain a layer of tissue suspended in medium, with both sides of the sheet exposed to the medium, rather than one side resting on a solid surface of the container.
[0022] Cryopreserved tissues can contain any type of biological material, including single-cell suspensions, monolayer tissue sheets, three-dimensional tissue constructs, vascularized tissue constructs, and / or other biological materials. The disclosed technology may be particularly suitable for more complex tissues. One exemplary suitable material includes a monolayer of retinal pigment epithelium on a scaffold. Further information regarding this exemplary tissue material and others, as well as methods for their culture and transplantation, and other related information, can be found in U.S. Provisional Patent Application No. 62 / 419,835, filed November 9, 2016, and U.S. Provisional Patent Application No. 62 / 419,804, filed November 9, 2016, both of which are incorporated herein by reference in their entireties.
[0023] In addition to the tissue, the cryopreservation medium placed inside the tissue container can include any material suitable for the particular tissue and cryopreservation and recovery process. An exemplary cryopreservation medium for use with cryopreserving a monolayer of retinal pigment epithelium on a scaffold is CryoStor (e.g., commercially available from BioLifeSolutions, Inc.) mixed with sodium alginate (e.g., 0.24% sodium alginate). (R) In an exemplary cryopreservation process, such tissue and medium sealed inside a tissue container can be cooled at a rate of 1° C. per minute.
[0024] 6 and 7 illustrate an exemplary tissue recovery device 30. The device 30 can include two main housing components, an upper component 32 and a lower component 34, which can be attached and detached together. In other embodiments, the recovery device does not include two removable components as shown. The device 30 includes a tissue container receptacle 40 configured to receive a sealed tissue container, such as the illustrated container 22. In the illustrated embodiment, the receptacle 40 is defined between the upper and lower components 32 and 34 such that the tissue container is inserted when the upper and lower components are detached and then the two components are attached together to enclose and / or seal the tissue container. To facilitate containment of the tissue container 22, an engaging and / or sealing feature 36 can be included between the upper and lower components. For example, the two components can include mating threaded features, snap-lock features, twist-lock features, magnetic engaging features, and / or other means for attaching and detaching the two components together. In some embodiments, the device can include an O-ring or gasket at the interface to help seal the received tissue container.
[0025] In alternative embodiments, device 30 may include other tissue container receptacle configurations, such as a slot on the side of the housing with a closable door or lid, and in such embodiments, device 30 need not include two removable and reattachable housing components.
[0026] The tissue recovery device can further include at least one recovery medium chamber, such as chamber 40 of device 30, configured to contain a reservoir of tissue recovery medium and fluidly coupled to the tissue container receptacle. In the illustrated embodiment, device 30 includes two chambers 40, each receiving a syringe 42 or similar insertable, removable, and / or replaceable recovery medium container. Syringe 42 or a similar device can be pre-loaded with a recovery medium 44 selected for the particular tissue and / or cryopreservation medium inside tissue container 22. Syringe 42 can further include a manual dispensing feature, such as knob 50, that is rotated to cause inchworm mechanism 48 to push plunger 46 downward and force medium 44 out of the syringe's lower outlet 52 (e.g., needle).
[0027] In some embodiments, only one such syringe or other recovery medium container is used, while in other embodiments, two, three, or more different recovery medium containers can be simultaneously received within device 30. Multiple different recovery media can be dispensed to aid in the recovery and cultivation of a given tissue. For example, one type of medium can be directed to the apical surface of a sheet of tissue, and another type of medium can be directed to the basal surface of the sheet of tissue. The two can be dispensed simultaneously, sequentially, or in any desired temporal order or pattern.
[0028] An exemplary recovery medium comprises ROCK inhibitor Y-27632, a cell-permeable, highly potent, and selective inhibitor of Rho-associated coiled-coil-containing protein kinase (commercially available from STEMCELL Technologies, Inc.), present in the medium at a concentration of about 10 μM. Such a recovery medium can be used to recover a monolayer of retinal pigment epithelium on a scaffold that has been frozen in a cryopreservation medium comprising, for example, CryoStor CS2 mixed with about 0.24% sodium alginate.
[0029] Using device 30, syringe 42 can be manually actuated to dispense media by rotating knob 50. In some embodiments, each rotation of knob 50 is calibrated to dispense a predetermined or calculated amount of media. In other embodiments, an automated mechanism can be included to actuate the syringe or other media container and automatically dispense a selected amount of media.
[0030] Syringes 42 can be removed as needed (e.g., when they are empty or when a different medium is desired) and replaced with new syringes containing more of the same or a different medium. The removed syringes can be disposable and discarded after use, or sterilizable and refilled for reuse. This allows for quick and safe loading and reloading of the recovery medium syringes while keeping the remainder of device 30 in use.
[0031] When syringe 42 is inserted, needle 52 can pass through a hole or sheet of material 70 at the bottom of chamber 40 of device 30 and then penetrate lid 20 of tissue container 22. The dispensed recovery medium can then be dispensed into the tissue container inside device 30 in a sterile manner.
[0032] In some embodiments, the outlet needle 52 can include a sterile sheath mounted around the needle. The sheath can include a flexible polymeric material, such as rubber or the like. The sheath can initially form a sealed, sterile shield that completely surrounds the needle. When the needle is pressed against the tissue container lid 20, the sheath is secured between the tip of the needle and the lid. The needle then penetrates simultaneously through the sheath and through the lid so that the needle and contents below the lid are maintained in a sterile environment. The sheath, which seals against the lid, can also serve to prevent fluid leakage out of the penetration made in the lid. Later, the needle is retracted from the lid, and the needle is retracted back into the sheath, which resiliently reseals around the needle with the sheath's rubber material, which naturally closes the penetration made by the needle, continuing to maintain a sterile environment around the needle and facilitating reuse of the entire needle and syringe. The needle and sheath can also optionally be replaceable to ensure sterility. The sheath can allow the thawing device 80, 200 to be reused with multiple capsules 30, 230. Exemplary sheaths suitable for this application include Terumo Luer adapters, such as the VENOJECT multi-sample Luer adapter (e.g., Terumo XX*MN2000T).
[0033] The device 30 can also include a waste chamber 60 fluidly coupled to the tissue container receptacle and configured to receive waste material exiting the tissue container. The waste material may include thawed cryopreservation medium, recovery medium, and / or other materials from the tissue container. The waste chamber 60 can also be removable, disposable, and / or replaceable. The waste chamber 60 can include a pressure relief conduit 66 and / or a filter 64 to allow air to escape but maintain the interior of the chamber in a sterile condition.
[0034] The lower component 34 of the device 30 may further include a piercing element, such as a hollow needle 62, that pierces the tissue container chamber 14 and allows waste to exit the tissue container toward the waste chamber 60. The needle 62 may pierce the chamber 14 as the two components 32, 34 are secured together, or prior to or after the two components are attached together and the tissue container is placed in the receptacle 40. The height of the needle 62 may be determined according to the level of medium remaining in the receptacle 22. Medium above the level of the opening at the end of the needle 62 drains through the needle into the waste chamber 60 via gravity. The height of the needle 62 may be selected to leave a sufficient amount of medium in the chamber 14 at any given time, such as enough medium to keep the tissue submerged in the medium at all times.
[0035] 8, after the frozen tissue container is loaded into recovery device 30, device 30 can be loaded into regulator 80. Regulator 80 can detect the contents of the tissue container and / or recovery medium, can use a heater to provide heat to thaw and warm the material inside device 30, and can use sensors, software, and computing components to monitor, manage, and maintain the tissue recovery process.
[0036] FIG. 9 is a cross-sectional view of an exemplary adjustment apparatus 80 with recovery device 30 inserted into a recess 82 of the apparatus. Device 30 contains a frozen tissue container 22 and is loaded with a recovery medium syringe 42. A sensor 86 (e.g., an NFC, RFID, or barcode reader) within apparatus 80 can read a corresponding ID tag (e.g., tag 26 of FIG. 5 ) on tissue container 22 to determine information about the tissue and / or cryopreservation medium in tissue container 22. Device 80 can be powered by an electrical cord plugged into a wall outlet or via any other powering means. Device 80 can further include an on / off switch 84 ( FIG. 8 ), an automatic power-on mechanism triggered by sensed insertion of device 30, and / or various other control features. Device 80 can include various computing and control components, such as a processor, memory, sensors, user input devices, output devices such as a display and status indicators, firmware, software, etc. For example, device 80 can be pre-programmed with specific algorithms for each different type of tissue that may be used with it. The algorithms can further be specific to the type of cryopreservation medium, the type of recovery medium, the type of tissue container, the type of recovery device, and / or other variable parameters.
[0037] In alternative embodiments, the recovery device and regulator can be operated manually without electricity. Heating and / or cooling can be performed, for example, using chemical means. Recovery medium can be manually dispensed in a desired manner, for example, by turning a knob or depressing a plunger on a syringe. For example, knob 50 can be rotatable and configured to click with each rotational increment to provide feedback to be used regarding the amount of medium dispensed. Device 30 can be configured, for example, so that a desired amount of recovery medium is dispensed with each click of knob 50.
[0038] Once the contents of device 30 and / or tissue container 22 have been identified, apparatus 80 can apply heat to the recovery medium in syringe 42 using heater 90 and to tissue container 22 using heater 92. Recovery medium 44 in syringe 42 may initially be frozen upon insertion into device 30 and therefore may need to be thawed and warmed to a functional temperature before introduction into the tissue container. The apparatus can be pre-programmed to adjust the heating level and heating sequence to optimize the process for the specific frozen tissue detected by sensor 86. Apparatus 80 and / or device 30 can include a temperature sensor for monitoring the temperature of the recovery medium and / or tissue container. The recovery medium can be warmed to a desired temperature and maintained in a state ready for introduction into tissue container 22 before the tissue container is thawed, minimizing the duration that the tissue is thawed prior to implantation or other use in a patient and extending the period of time that the tissue is maintained in a fully recovered and usable state. Device 80 may include visual and / or audio indicators that allow the user to know the current state of the tissue, its remaining viable lifespan, and / or other useful information.
[0039] Once the cryopreservation medium in tissue container 22 has sufficiently thawed and warmed, recovery medium 44 can begin to be directed into the tissue container from syringe 42 or other recovery medium container. As the recovery medium enters the tissue container, the thawed cryopreservation medium is expelled or poured out of the tissue container into waste chamber 60. Recovery medium can be introduced into the tissue container at a desired rate and in a desired sequence to recover the tissue from cryopreservation, pour out unwanted cryopreservation medium, continue to culture the tissue inside device 30, and restore the tissue to a viable state inside container 22 as well as the sterile confines of device 30, allowing the tissue to remain viable for extended periods of time, such as days or weeks, so that it can be kept ready for immediate use where it may be utilized (e.g., in an operating room). In some embodiments, a user can rotate knob 50 of syringe 42 (or perform a similar action) once per day or once every two days to dispense fresh recovery medium and maintain the tissue in a viable state.
[0040] When the recovered tissue is ready for use, device 30 can be removed from apparatus 80, top and bottom components 32 and 34 can be detached, and tissue container 22 can be removed from device 30. Lid 20 can then be peeled off, and the tissue can be removed from well 12 within vessel 14. Opening lid 20 can be accomplished without compromising the sterility of the biological material in tissue container 22. Further steps may be taken to prepare the tissue for its specific intended use, such as implantation into a patient. The empty tissue container can then be discarded. After the tissue container is removed, device 30 can be prepared for its next use by removing syringe 42 and waste chamber 60. A new syringe filled with fresh recovery medium can be inserted into device 30, and a new, empty waste chamber 60 can be inserted into the device. Device 30 is then ready to accept a new frozen tissue container to begin the recovery and culture process again. In some embodiments, the housing of device 30 does not need to be sterilized between uses, minimizing preparation time.
[0041] FIG. 10 is a flowchart illustrating an exemplary method 100 for cryopreservation and recovery of tissue using the disclosed technology. At 102, fully grown, viable tissue is prepared for the freezing process using a cryopreservation medium. At 104, a well to hold the tissue is placed in a tissue container, cryopreservation medium is added, and the tissue container is sealed. At 106, the sealed tissue container is placed in a controlled freezing device for cryopreservation. At 108, the tissue can be kept frozen inside the tissue container for extended periods of time, such as years, until needed. At 110, the frozen tissue container can be shipped or transported as needed while still remaining frozen without compromising the viability of the tissue. At 112, when it is desired to restore the tissue to a viable state, the frozen tissue container is placed in a recovery device, which is then inserted into a conditioning apparatus to control the recovery and culture process and maintain the tissue in a viable state. At 114, the viable restored tissue can be removed from the tissue container and implanted into the patient.
[0042] 11 illustrates another exemplary conditioning apparatus 200 and corresponding recovery device 230. Apparatus 200 and device 230 have the same general functionality as apparatus 80 and device 30, but with some differences. Device 230 includes an upper housing component 232 and a lower housing component 234 that are removable to allow insertion of tissue container 222 into receptacle 240 between the two components. Upper component 232 includes recovery medium chamber 240 containing recovery medium 244, and lower component 234 includes waste chamber 260.
[0043] In this embodiment, there is no removable and replaceable syringe containing recovery medium, but instead, chamber 240 in upper component 232 can be refilled with recovery medium as needed, such as through a sealable port in the upper component. Similarly, waste can also be emptied from chamber 260 through a port in the lower component. Alternatively, chambers 240 and 260 can comprise removable enclosures that are insertable into and removable from device 230 so as to be disposable and / or sterilizable.
[0044] Device 230 further includes a valve 202 that determines when recovery medium is allowed to flow from chamber 240 to tissue container 222. Valve 202 can be controlled by a valve controller 294 within apparatus 200 (shown in FIG. 11 ). In one example, valve controller 294 can include a magnetic device that uses a magnetic field to actuate the valve. Using valve controller 294, the main control system of apparatus 200 can determine when to release recovery medium, how much to release, and the type of sequence.
[0045] Device 230 can optionally include more than one recovery medium chamber 240 that holds different types of recovery medium.
[0046] Device 230 can also optionally include more than one conduit for directing recovery medium to different portions of the tissue container. For example, as shown in Figures 11 and 12, a first conduit 204 can direct medium via a first needle 205 through the lid 220 of tissue container 222 so that the medium fills the reservoir 214 below the tissue holder 212. A second conduit 202 can direct medium via a second needle 203 through the lid 220 into the tissue holder 212. In other embodiments, one conduit can direct a first medium to the apical side of the tissue and a second conduit can direct a second, different medium to the bottom side of the tissue.
[0047] An outlet conduit 262 directs waste medium from the tissue container 222 through to the waste chamber 260. Figure 12 shows an embodiment with a single outlet conduit 260 having a single needle 263 that penetrates the side of the tissue container at the desired level. In some embodiments, as shown in Figure 11, the outlet conduit 262 comprises two outlet conduits 208 and 209. The upper outlet conduit 208 can drain waste overflowing from the tissue holder 212 or from the top surface of the tissue, while the lower outlet conduit 209 can drain waste from the reservoir 214 or the bottom side of the tissue. Each outlet conduit has its own needle and can penetrate a separate hole in the tissue container.
[0048] Figure 13 illustrates the heater 290 of the device 200 with the valve 202 closed and the inner tissue container 222 and cryopreservation medium 223 still frozen, for example, while initially heating the recovery medium 244 from a frozen state. Figure 14 illustrates the heater 290 of the device 200 with the valve 202 closed and the inner tissue container 222 and cryopreservation medium 223 being thawed and warmed by the heater 292 within the device, while continuing to provide heat to the recovery medium 244, for example, to maintain it at a desired temperature. Once the tissue container 222 and its contents have sufficiently warmed, Figure 15 illustrates the valve 202 being opened by the valve controller 294, allowing the recovery medium 244 to flow into the tissue container 222 and wash the cryopreservation medium 223 out into the waste chamber 260. This flow process can continue in stages or sequences as needed to flush out toxic cryopreservation medium 223, replacing it with recovery medium 244, and incubate the tissue to a viable state while heater 292 maintains the tissue container at the desired temperature. A pressure relief conduit 266 can connect chambers 240 and 260 and maintain pressure equilibrium between the two. FIG. 16 shows device 230 after all of recovery medium 244 has flowed out of chamber 240, washing the cryopreservation medium into waste chamber 260, in addition to the majority of the recovery medium that passed through the tissue container. Some of the recovery medium 244 remains inside the tissue container. At this point, the recovery medium chamber can be replenished with additional recovery medium or replaced with a chamber filled with recovery medium, or it can remain in a steady state as shown in FIG. 16 to maintain the tissue in a viable state for a period of time until it is used.
[0049] In some embodiments, the tissue container 222 can be rotated approximately 90 degrees to a vertical orientation during the cleaning and recovery process illustrated in FIGS. 15 and 16 . By rotating the tissue container 222 vertically, gravity can aid the cleaning process by reducing mixing of the fresh and old media within the container, accelerating the medium exchange process and requiring less recovery medium. In the illustrated horizontal position, recovery medium flows approximately horizontally across the container 222 from the injection points 203, 205 to the exit point 263. This horizontal flow results in cryopreservation medium exchange with gentler, more vigorous mixing of the two media as gravity acts perpendicular to the primary flow direction. Therefore, additional recovery medium is required to completely flush out the cryopreservation medium (e.g., in one example, 40-50 ml of recovery medium). In contrast, when the tissue container is oriented vertically, a more linear flow occurs within the container as recovery medium enters the top and, in conjunction with gravity toward the lower outlet, pushes the cryopreservation medium downward. This results in a less strenuous, more efficient washing process that requires substantially less recovery medium (e.g., 5-10 ml of recovery medium in one example). Various different optional embodiments exist for placing the tissue container in a vertical orientation. In some embodiments, the entire adjustment device 200 can simply be rotated 90 degrees during the washing process (e.g., manually via an automated system). In some embodiments, the adjustment device 200 can be configured horizontally so that the recovery device 230 is inserted horizontally into the opening at the side instead of the top. In some embodiments, the recovery device 230 can be configured with a needle penetrating the lid from the side, etc., to hold the tissue container 222 in a vertical orientation instead of a horizontal orientation, as shown. In some embodiments, the tissue container 222 itself can be configured in a more vertical shape rather than the short, wide shape illustrated herein. A vertically oriented tissue container 222 holds the well and tissue sample in a horizontal orientation and can rely, for example, on a retaining ring within the well to hold the tissue in place within the well.
[0050] In some embodiments, waste fluid collection and / or removal can be implemented in other ways. In recovery device 30, a passive waste collection chamber 60 is included for collecting waste from tissue chamber 22, and chamber 60 includes a pressure relief conduit 66 to prevent pressure buildup within chamber 60. In recovery device 230, a pressure relief conduit 266 is included to relieve pressure buildup within waste collection chamber 260. In other embodiments, active suction can be applied to the waste chamber to reduce pressure therein and / or draw waste out of the waste chamber. In such embodiments, a vacuum pump can be coupled to the outlet of the waste chamber. The vacuum pump can be a separate external device or can be an integral component of the recovery device or regulator in which the recovery device is placed during thawing / recovery. In some embodiments, the regulator device can include a vacuum pump and a needle positioned at the bottom or side of a receptacle that receives the recovery device, such that the needle penetrates or enters an opening in the waste chamber in the recovery device. The needle can then serve as a conduit to draw waste and / or air out of the waste chamber via a vacuum pump. The needle can optionally include a protective / sterile sheath around the needle, such as that described above with reference to needle 52, to reduce leakage and / or maintain sterility.
[0051] In some embodiments, no waste collection chamber is included within the recovery device, and waste is drawn directly from the tissue chamber outlet to an external location, such as in a conditioning unit or otherwise.
[0052] In some embodiments, a large supply of recovery medium can be coupled to one or two or more recovery devices simultaneously or sequentially to facilitate multiple tissue recovery events occurring over a relatively short period of time, such as in a busy hospital or clinic. In some embodiments, a large waste collection chamber can also be coupled to the waste chambers of one or two or more recovery devices simultaneously or sequentially to further facilitate multiple tissue recovery events occurring over a relatively short period of time. Waste can be actively drawn from the recovery devices into the large waste collection chamber using an active pump or other suitable means.
[0053] In some embodiments, the recovery device and / or regulator can control any one or more additional environmental parameters related to the tissue being recovered, such as temperature, carbon dioxide levels, other gas levels, and / or other factors. Regarding carbon dioxide level control in conventional cell culture devices, the carbon dioxide level in the incubator, in combination with a carbonate buffer in the medium, acts to maintain a constant medium pH. The requirement for a stable pH can be maintained when cryopreserved tissue is in the recovery phase, such as when using the disclosed techniques. To maintain pH using the disclosed techniques, a carbon dioxide-independent recovery medium can be used, or some means for controlling carbon dioxide levels in the recovery chamber can be implemented. For example, this can be accomplished by chemical means or by controlled injection of carbon dioxide gas into the tissue recovery chamber.
[0054] In some situations, the disclosed techniques can be used to recover and prepare cryopreserved tissue for a specific use; the tissue is recovered and cultured, and then transplanted as soon as it is ready. Such situations, such as tissue transplantation for burn patients, can be very time-sensitive, and the disclosed techniques can help increase the speed, safety, and accuracy of tissue preparation in such cases.
[0055] In some situations, the disclosed technology can be used to restore cryopreserved tissue and maintain the tissue in a viable or near-viable state over an extended time window when the tissue may be needed. This can be considered an "on-demand" use of the disclosed technology. For example, in a setting where a tissue is needed periodically, at least one sample of the tissue can be kept available for on-demand use. When a tissue sample reaches the end of its on-demand "shelf life" without needing to be used, it can be discarded or potentially refrozen, and another sample can be prepared ready for use. In this way, fresh and viable tissue can be kept available for on-demand use.
[0056] The disclosed technology also enables tissue recovery and transplantation processes to be performed by fewer people, with fewer resources and infrastructure, and in less carefully controlled environments. Less human input is required compared to conventional processes, resulting in a lower risk of complications. The technology can be used with low risk anywhere the disclosed devices and apparatuses can be used, such as where a power outlet is present or, even without electricity, where a manual version of the technology is used. The disclosed technology can eliminate the need for a person to perform several steps of tissue thawing, culturing, and incubation (which typically require these steps to be performed using a specialized cell culture hood in a specialized cell culture room) and then transport the recovered tissue to a surgical suite. Using the disclosed technology, the thawing, culturing, and maintenance of viable tissue can all be performed inside a small, self-contained device, automated or at least simple to control.
[0057] For purposes of description, certain aspects, advantages, and novel features of embodiments of the present disclosure have been described herein. The disclosed methods, apparatus, and systems should not be construed as limiting in any way. Instead, the present disclosure is directed to all novel and non-obvious features and aspects of the various disclosed embodiments, alone and in various combinations and subcombinations with one another. The methods, apparatus, and systems are not limited to any specific aspect or feature or combination thereof, nor do the disclosed embodiments require that any one or more specific advantages exist or problems be solved.
[0058] It should be understood that features, elements, and characteristics described in connection with a particular aspect, embodiment, or example of the disclosed technology are applicable to any other aspect, embodiment, or example described herein, unless inconsistent therewith. All of the features disclosed in this specification (including any accompanying claims, abstract, and drawings) and / or all of the steps of any method or process so disclosed may be combined in any combination, except for combinations where at least some of such features and / or steps are mutually exclusive. The invention is not limited to the details of any of the foregoing embodiments. The invention extends to any novel one or any novel combination of the features disclosed in this specification (including any accompanying claims, abstract, and drawings), or any novel one or any novel combination of the steps of any method or process so disclosed.
[0059] Although the operations of some of the disclosed methods are described in a particular sequential order for convenience of presentation, it should be understood that this description style encompasses rearrangement unless a particular ordering is required by specific language. For example, operations described sequentially may, in some cases, be rearranged or performed simultaneously. Moreover, for simplicity, the accompanying figures may not show the various ways in which the disclosed methods can be used in conjunction with other methods.
[0060] As used herein, the terms "a," "an," and "at least one" include one or more of the specified elements. That is, if two of a particular element are present, one of those elements is also present, and thus "an" element is present. The terms "plurality" and "plurality" refer to two or more of the specified elements. As used herein, the term "and / or" used between the last two of a list of elements refers to any one or more of the listed elements. For example, the phrase "A, B, and / or C" means "A," "B," "C," "A and B," "A and C," "B and C," or "A, B, and C." As used herein, the term "coupled" generally means physically, chemically, electrically, magnetically, or otherwise coupled or connected, and does not exclude the presence of intermediate elements between the coupled items, absent specific language to the contrary.
[0061] In view of the many possible embodiments to which the principles of the disclosed technology may be applied, it should be recognized that the illustrated embodiments are merely examples and should not be taken as limiting the scope of the present disclosure. Rather, the scope of the present disclosure is at least as broad as the following claims. Accordingly, we claim all that comes within the scope of those claims.
Claims
1. 1. A device for receiving a sealed tissue container containing cryopreserved tissue and a cryopreservation medium and for recovering said cryopreserved tissue, said device comprising: a first housing component; a second housing component, the second housing component being attachable to and detachable from the first housing component; and a tissue container receiver disposed between the first housing component and the second housing component, the tissue container receiver configured to receive the sealed tissue container containing the cryopreserved tissue and the cryopreservation medium when the second housing component is removed from the first housing component, the received tissue container being held between the first housing component and the second housing component when the first housing component and the second housing component are attached together; at least one recovery medium chamber configured to contain a reservoir of tissue recovery medium, the at least one recovery medium chamber fluidly coupled to the tissue container receptacle; a waste outlet fluidly coupled to the tissue container receptacle; Equipped with The device facilitates thawing and culturing of the cryopreserved tissue inside the received tissue container by directing the tissue recovery medium from the at least one recovery medium chamber into the received tissue container in the tissue container receiver, and by directing waste comprising thawed cryopreservation medium from inside the received tissue container out through the waste outlet.
2. The device of claim 1 , wherein the first housing component contains the at least one recovery medium chamber and the second housing component contains the waste outlet.
3. 3. The device of claim 2, wherein the received tissue container is sealed within the tissue container receptacle when the first and second housing components are attached together, and the received tissue container is removable from the tissue container receptacle by detaching the first and second housing components from each other.
4. 4. The device of claim 1, further comprising at least a first piercing element and at least a second piercing element, wherein the at least first piercing element creates at least a first opening in the received tissue container to allow the tissue recovery medium to be guided from the recovery medium chamber into the received tissue container, and the at least second piercing element creates at least a second opening in the received tissue container to allow the waste to be guided out of the received tissue container through the waste outlet.
5. The device of any one of claims 1 to 4, wherein the at least one recovery medium chamber comprises two or more recovery medium chambers configured to contain tissue recovery medium.
6. The device of any one of claims 1 to 5, wherein the at least one recovery medium chamber receives an insertable and removable medium container containing the tissue recovery medium.
7. 7. The device of claim 6, wherein the insertable and removable medium container is manually actuatable to direct a desired amount of the tissue recovery medium from the insertable and removable medium container into the received tissue container.
8. 8. The device of any one of claims 1 to 7, wherein the device further comprises a waste chamber fluidly coupled to the waste outlet, the waste chamber configured to receive and store the waste within the device.
9. The device of any one of claims 1 to 8, further comprising at least a first fluid conduit fluidly coupling the at least one recovery medium chamber to the tissue container receptacle.
10. 10. The device of any one of claims 1 to 9, wherein the device directs a first tissue recovery medium to a first side of the cryopreserved tissue and a second tissue recovery medium to a second side of the cryopreserved tissue.
11. A device according to any preceding claim, wherein the waste outlet is connectable to an active vacuum for drawing the waste out of the device.
12. 10. The device of claim 9, further comprising a valve positioned along the first fluid conduit coupled between the at least one recovery medium chamber and the tissue container receptacle.
13. The device of any one of claims 1 to 12, wherein the tissue recovery medium comprises a ROCK inhibitor, Y-27632.
14. An adjustment device, the adjustment device comprising: a housing having a compartment operable to receive the device of claim 1; an identification tag reader that reads an identification tag on the received tissue container within the device, thereby enabling the regulator to determine identification information about the cryopreserved tissue inside the received tissue container; at least a first heater for heating the received tissue container inside the device; An adjustment device comprising:
15. 15. The conditioning apparatus of claim 14, further comprising at least a second heater for warming the tissue recovery medium in the recovery medium chamber of the device.
16. 16. The adjustment device of claim 14, further comprising a control system programmed to restore the cryopreserved tissue to a viable state and maintain the cryopreserved tissue in the viable state by controlling heating of the received tissue container by the first heater based at least in part on the identification information regarding the cryopreserved tissue.
17. 17. The regulating apparatus of any one of claims 14 to 16, further comprising a valve controller that controls operation of a valve within the device to regulate the flow of tissue recovery medium into the received tissue container.
18. The device of claim 4 , wherein assembly of the first housing component and second housing component closes the received tissue container within the tissue container receiver, resulting in the at least second piercing element creating the second opening.
19. The device of claim 4, or the device of claim 18, or any one of claims 5-6, 8-11, and 13 when claim 4 is taken as a reference, wherein the at least first piercing element comprises a needle and a sterile sheath mounted around the needle.
20. 20. The device of claim 19, wherein the sterile sheath comprises rubber.
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