A method for producing highly functional artificial organs using aptamers

Aptamers are used to address vascular reconstruction and immune rejection issues in artificial organs by enhancing adhesion and viability, improving the functionality and reducing thrombus formation in artificial livers.

JP7720644B2Active Publication Date: 2025-08-08KANGSTEM BIOTECH
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Patent Information

Application Number
JP2023507998
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-11-12
Filing Date
2021-07-27
Publication Date
2025-08-08
Estimated Expiration
2041-07-27

AI Technical Summary

Technical Problem

Existing artificial organs face challenges in vascular reconstruction and immune rejection, leading to thrombus formation and reduced functionality, particularly in liver transplants due to the lack of biocompatibility and efficient vascularization.

Method used

Utilizing nucleic acid aptamers, specifically anti-CD31 aptamers, as coating agents for decellularized organ scaffolds to enhance vascular adhesion, viability, and angiogenesis, thereby reconstructing a functional vascular structure that minimizes thrombus formation and enhances liver functionality.

Benefits of technology

The use of aptamers as coating agents improves vascular reconstruction efficiency, reduces thrombus formation, and enhances the functionality of artificial organs, particularly artificial livers, by promoting adhesion, viability, and angiogenesis, making them suitable for transplantation.

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Abstract

The present invention relates to a method for fabricating a highly functional artificial organ including perfusable blood vessels using an aptamer, and when the aptamer of the present invention is used as a coating agent for a decellularized support, it enhances the adhesion, viability, and angiogenesis of blood vessels, enabling more efficient reconstruction of the vascular structure than conventional antibodies. Therefore, a vascularized artificial liver fabricated using an aptamer not only reduces thrombus formation in vivo but also exhibits the effect of enhancing liver functionality, and artificial organs fabricated using the aptamer of the present invention are expected to be applied as disease treatment methods.
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Description

[Technical Field]

[0001] The present invention relates to a method for producing a highly functional artificial organ using an aptamer.

[0002] This application claims priority based on Korean Patent Application No. 10-2020-0098314 filed on August 6, 2020, and Korean Patent Application No. 10-2020-0150913 filed on November 12, 2020, the entire contents of which are incorporated herein by reference in their entirety in their specifications and drawings. [Background technology]

[0003] Artificial organ biotechnology is a technology that uses various methods to create replacement devices for bodily organs, including culturing stem cells and cell growth factors (cell fluid nutrients, etc.) in a 3D bioartificial support and creating artificial organs using this mold.With the development of modern medicine, organ transplants via donors are now performed for almost all organs, but due to a shortage of donors, many patients cannot benefit, and artificial organs currently have side effects due to their lack of biocompatibility.

[0004] Chronic liver diseases, including cirrhosis, are fatal for approximately 2 million patients each year. Over the past few decades, groundbreaking advances in immunology and organ transplantation have led to the widespread use of liver transplants for end-stage liver disease. While liver transplantation is currently recognized as the only treatment for congenital or acquired liver disease, there is a shortage of donors. In light of this, the production of artificial livers through tissue engineering has been gaining attention as a potential alternative to donor organs. Korea is one of the countries with the highest number of liver transplants, with a significantly higher mortality rate from liver-related diseases compared to other diseases and a shortage of transplant organs resulting in a significant number of patients waiting for transplants. Therefore, the development of technologies that can improve this situation is essential.

[0005] Various methods have been investigated for creating liver supports, including tissue engineering, 3D printer technology, and stem cell-based organ reconstruction (organoids). However, they have yet to overcome technical limitations, such as the inability to mimic organ microstructures and size limitations. Decellularized supports, in which all cells are removed from animal organs, are considered a useful substrate for overcoming these limitations and creating safe and functional human organ-mimicking supports. While removing cellular components that could induce an immune response, these supports also create an organ-specific microenvironment, including microstructures and biochemical signals within the support. This facilitates 3D cell organization within the support when human cells are injected. Therefore, decellularized supports can be used as suitable substrates for producing artificial organs, and research is underway to use them to reconstruct various organs.

[0006] The liver has a highly complex vascular structure, and more than 25% of cardiac output passes through it. Therefore, vascularization of the organ is crucial for successful reconstruction of an artificial liver. Artificial organs without a vascular structure are susceptible to intravascular thrombus formation due to an acute immune response after transplantation and subsequent graft failure. Therefore, various coating agents are being investigated to efficiently reconstruct the vascular structure.

[0007] Aptamers are single-stranded nucleic acids consisting of short sequences. They have the advantages of high binding affinity to specific proteins, low immunogenicity, and the ability to be mass-produced. Therefore, they are used as alternatives to antibodies. Aptamers are primarily used in medical diagnostics and have been gaining attention as therapeutic agents targeting cancer and viral diseases. However, the usefulness of aptamers as coating agents in tissue engineering has not been elucidated.

[0008] Furthermore, human leukocyte antigen (HLA) is one of the human histocompatibility antigens. When allogeneic cells or artificial organs are transplanted into a patient, a mismatch in HLA types can lead to immune rejection. Recently, much research has been conducted into universal cells established by removing HLA-A, B, and C types using gene editing. However, HLA-A, B, and C-depleted cells still exhibit sensitivity to NK cells upon transplantation. Therefore, overexpression of "don't eat me" signals, which suppress the NK cell response, can ultimately lead to the creation of cells that can evade immune responses. In particular, cells differentiated into various lineages from off-the-shelf universal stem cells (USCs) with these properties can be used as cell compositions to minimize immune rejection during the construction of artificial organs.

[0009] Therefore, this technology maximizes the efficiency of vascular reconstruction by using nucleic acid aptamers as a coating agent, and is the first to establish a technology that can minimize thrombus formation after transplantation of artificial organs. Furthermore, this technology has enabled the creation of a vascularized artificial liver with enhanced functionality that can be transplanted in vivo using hepatic constituent cells derived from universal stem cells (USCs). [Prior art documents] [Non-patent literature]

[0010] [Non-Patent Document 1] KHHussein, KMPark, KSKang, HMWoo, Heparin-gelatin mixture improves vascular reconstruction efficiency and hepatic function in bioengineered livers, Acta Biomater 38(2016)82-93 Summary of the Invention [Problem to be solved by the invention]

[0011] As a result, the present inventors have established a technology that maximizes the efficiency of vasculature reconstruction and minimizes side effects after transplantation of artificial organs by using nucleic acid aptamers as a coating agent for the first time. Furthermore, the present inventors have been the first to confirm that nucleic acid aptamers can be used to fabricate artificial organs that can be transplanted in vivo and have improved functionality, thereby completing the present invention.

[0012] Therefore, an object of the present invention is to provide a composition for fabricating an artificial organ, which contains an aptamer.

[0013] Another object of the present invention is to provide a composition for coating blood vessels, which comprises an aptamer.

[0014] It is still another object of the present invention to provide a method for producing an artificial organ using an aptamer.

[0015] It is yet another object of the present invention to provide a prosthetic device manufactured by the above method.

[0016] However, the technical problems that the present invention aims to achieve are not limited to those mentioned above, and other problems not mentioned can be clearly understood by a person skilled in the art from the following description. [Means for solving the problem]

[0017] To achieve the above object of the present invention, the present invention provides a composition for fabricating an artificial organ, which comprises an aptamer.

[0018] The present invention also provides the use of compositions comprising aptamers in the fabrication of prosthetic organs.

[0019] The present invention also provides a method for producing an artificial organ, which comprises a step of treating an aptamer.

[0020] The present invention also provides a composition for coating blood vessels, which comprises an aptamer.

[0021] The present invention also provides a use of a composition comprising an aptamer for coating blood vessels.

[0022] The present invention also provides a method for coating blood vessels, which comprises treating a composition containing an aptamer.

[0023] The present invention also provides a prosthetic device produced by the above method.

[0024] In one embodiment of the present invention, the prosthesis may be biocompatible.

[0025] In another embodiment of the present invention, the prosthetic organ may be, for example, any organ including blood vessels, and may be, but is not limited to, the liver.

[0026] In yet another embodiment of the present invention, the aptamer may be, but is not limited to, an anti-CD31 aptamer.

[0027] In yet another embodiment of the present invention, the aptamer may include, but is not limited to, the base sequence represented by SEQ ID NO: 1.

[0028] In yet another embodiment of the present invention, the aptamer is characterized by being specific to vascular endothelial cells, but is not limited thereto.

[0029] In yet another embodiment of the present invention, the aptamer can increase the expression of one or more selected from the group consisting of, but not limited to, integrin beta 3 and phosphorylated Akt.

[0030] In yet another embodiment of the present invention, the aptamer may reduce the expression of cleaved caspase-3, but is not limited thereto.

[0031] In yet another embodiment of the present invention, the composition may further comprise one or more cells selected from the group consisting of, but not limited to, parenchymal cells and non-parenchymal cells.

[0032] In yet another embodiment of the present invention, the cells may be, but are not limited to, stem cell-derived cells.

[0033] In yet another embodiment of the present invention, the cells include, but are not limited to, differentiated cells derived from stem cells.

[0034] In yet another embodiment of the present invention, the composition may further comprise, but is not limited to, stem cell-derived parenchymal cells.

[0035] In yet another embodiment of the present invention, the composition may further comprise, but is not limited to, stem cell-derived non-parenchymal cells.

[0036] In yet another embodiment of the present invention, the stem cells may be one or more selected from the group consisting of induced pluripotent stem cells (iPSCs), embryonic stem cells (embryonic stem cells), mesenchymal stromal cells (MSCs), off-the-shelf universal stem cells (USCs), bone marrow-derived stem cells, adipose tissue-derived stem cells, and placenta-derived stem cells, but are not limited to these.

[0037] In still another embodiment of the present invention, the universal stem cells may have one or more of the following characteristics, but are not limited thereto. The HLA genes are removed; and Attack neutralization signals are overexpressed.

[0038] In yet another embodiment of the present invention, the manufacturing method may include, but is not limited to, the following steps: a) Providing an organ from an individual; b) decellularizing the donated organ; and c) treating the decellularized organ with an aptamer.

[0039] In yet another embodiment of the present invention, the method may further include one or more steps selected from the group consisting of, but not limited to, the following steps: d-1) Recellularizing the decellularized organ with vascular endothelial cells; d-2) recellularizing the decellularized organ with parenchymal cells; and d-3) Recellularizing the decellularized organ with non-parenchymal cells. [Effects of the Invention]

[0040] When the aptamer of the present invention is used as a coating agent for acellular support, it can enhance the adhesion, viability, and angiogenesis of blood vessels, enabling the reconstruction of vasculature more efficiently than conventional antibodies. Therefore, a vascularized artificial liver fabricated using the aptamer not only reduces thrombus formation in vivo but also enhances liver functionality, and is expected to be used as a disease treatment method using an artificial organ fabricated using the aptamer of the present invention. [Brief explanation of the drawings]

[0041] [Figures 1a-1g]Figures 1a to 1g show the results of analyzing the properties of the anti-CD31 aptamer: Figure 1a shows the functional structure of the anti-CD31 aptamer forming the CD31-aptamer complex; Figures 1b to 1d show the results of confirming the dose-dependent binding of Cy5-labeled anti-CD31 aptamer to HUVEC, HepG2 cells, and MSCs; Figure 1b shows the dose-dependent binding efficiency of the anti-CD31 aptamer in the FACS profiles of HUVEC, HepG2 cells, and MSCs; Figure 1c shows the results of quantifying the binding rate; and Figure 1d shows the MFI (mean fluorescence intensity) of the anti-CD31 aptamer bound to HUVEC, HepG2 cells, and MSCs. Figure 1e shows immunocytochemical images of HUVECs stained with a Cy5-labeled anti-CD31 aptamer (upper row, red) and an anti-CD31 antibody (lower row, red); Figures 1f and 1g show immunocytochemical images of HepG2 cells and MSCs stained with an anti-CD31 aptamer (upper row, red) and an anti-CD31 antibody (lower row, red). [Figures 2a-2j]Figures 2a-j show that anti-CD31 aptamers mediate integrin-mediated adhesion of endothelial cells (ECs) to the extracellular matrix (ECM) under shear stress: Figure 2a shows ECM components; Figure 2b shows a representative phase-contrast image of sheared HUVECs; Figure 2c shows adhesion kinetics; Figure 2d shows qRT-PCR analysis results for devices coated with PBS (vehicle, uncoated), anti-CD31 aptamer (APT-coated), and anti-CD31 antibody (Ab-coated), respectively; Figures 2e-g show integrin-mediated adhesion of endothelial cells (ECs) to the extracellular matrix (ECM) under shear stress. Figure 2h-i shows Western blot analysis results for integrin beta3, total Akt, and phosphorylated Akt in static HUVECs and exposed HUVECs after shear stress exposure in a microfluidic device. Figure 2h-i shows Western blot analysis results for cleaved caspase-3 expression in HUVECs exposed to shear stress and static HUVECs in the PBS (vehicle, uncoated), anti-CD31 aptamer (APT-coated), and anti-CD31 antibody (Ab-coated) groups, respectively. Figure 2j shows qRT-PCR results for NOS3 (Nitric Oxide Synthase 3) expression in sheared HUVECs of each group normalized to static HUVECs. [Figures 3a-3l]Figures 3a-3l show the efficient re-endothelialization results of decellularized liver scaffolds using HUVECs: Figure 3a shows the re-endothelialization method of decellularized rat liver scaffolds using HUVECs; Figure 3b shows representative immunofluorescence images of endothelialized vessels with CFDA-labeled HUVECs in scaffolds coated with anti-CD31 aptamer (APT-coated) or anti-CD31 antibody (Ab-coated) or uncoated scaffolds; Figure 3c shows the endothelialized extent of re-endothelialized vessels in each scaffold; Figure 3d shows the quantification of the average number of re-endothelialized vessels in each scaffold; Figure 3e shows the quantification of intravascular dextran discharged from the inferior vena cava of each construct after perfusion of dextran via the portal vein; Figure 3f shows the quantification of intravascular dextran discharged from the inferior vena cava of each construct after perfusion of dextran via the portal vein; Figure 3g shows the results of qRT-PCR detection of VE-cadherin and CLDN5 (Claudin 5) in static HUVECs, uncoated, APT-coated, and Ab-coated reendothelialized HUVECs. Figure 3h shows the results of a resazurin reduction perfusion assay performed to confirm the viability of each construct using PrestoBlue reagent on days 3, 5, and 7. Figure 3i shows representative confocal images of reendothelialized constructs from each group stained with cleaved caspase-3 (red) and DAPI (blue). Figure 3j shows the results of quantification of cells expressing cleaved caspase-3 in each group. Figure 3k shows the amount of NO produced by ELISA in reendothelialized constructs from each group. Figure 3l shows the results of ELISA quantification of human VEGF secreted from reendothelialized constructs from each group on day 7. [Figures 4a-4g]Figures 4a-4g show the results demonstrating that re-endothelialized constructs form low thrombus after human blood perfusion. Figure 4a shows the method used to deliver human blood to the re-endothelialized constructs to evaluate thrombus formation. Figure 4b shows macroscopic images of each scaffold after human blood perfusion. Non-endothelialized DLM was used as a negative control. Figure 4c shows representative immunohistochemical images of harvested constructs from each group stained with integrin αIIb (green). Figure 4d shows the quantification of the fluorescence intensity of integrin αIIb expression. Figure 4e shows the results of platelet quantification using a hematology analyzer after harvesting the blood perfusate from the DLM group at specific time points. Figure 4f shows the results of platelet quantification using a blood analyzer after harvesting the hemoperfusate from the reendothelialized constructs of each group at specific time points; Figure 4g shows the results of RT-PCR analysis of CD63, PLSCR1, TBXAS1, and THBS1, genes involved in platelet aggregation, in the hemoperfused constructs of each group. [Figure 5a-5m]Figures 5a-5m show the results confirming the enhanced functional maturation of VBHL constructs: Figure 5a is a schematic diagram illustrating the recellularization process of decellularized rat liver scaffolds using HepG2 cells, LX2 cells, HUVECs, and MSCs; Figure 5b is a representative immunofluorescence image of uncoated VBHL constructs (CTL-VBHL) or VBHL constructs coated with anti-CD31 aptamer (APT-VBHL) and anti-CD31 antibody (Ab-VBHL) at day 21; Figure 5c is a diagram showing the endothelial extent of blood vessels in each group; Figure 5d is the result of quantifying the average number of endothelial vessels per field; Figure 5e is a diagram showing the endothelial extent of CTL-VBHL and APT-VBHL stained with α-SMA (red). Figure 5f shows representative immunohistochemical images of L- and Ab-VBHL constructs; Figure 5f shows the results of dextran perfusion analysis; Figures 5g-5h show the results of ELISA quantification of VEGF and NO secretion from VBHL constructs of each group at the indicated time points; Figures 5i and 5j show the results of ELISA quantification of the amount of albumin and urea secreted from VBHL constructs of each group at the indicated time points; Figure 5k shows the results showing improved viability in APT-VBHL constructs on days 17 and 20; Figure 5l shows a representative confocal image of TUNEL analysis; Figure 5m shows the results of quantification of TdT-positive cells in randomized fields. [Figures 6a-6e]Figures 6a-6e show the successful in vivo reperfusion results of anti-CD31 aptamer-coated VBHL constructs. Figure 6a shows a photograph of the VBHL construct after transplantation. The renal vein (yellow arrow) was connected to the inferior vena cava of the VBHL construct, and the renal artery (white arrow) was connected to the portal vein of the construct. After removing the vascular clamp (blue arrow), the VBHL construct was reperfused into the in vivo renal circulatory system. Figure 6b shows a representative image of the constructs harvested after transplantation. Figure 6c shows a representative confocal image of the harvested constructs of each group stained with integrin αIIb (green). Figure 6d shows the results of quantifying the fluorescence intensity of integrin αIIb expression. Figure 6e shows the results of RT-PCR analysis of Cd63, Plscr1, and Thbs1 in each VBHL construct after transplantation. [Figures 7a-7f] Figures 7a-7f show the results of VBHL construct transplantation in thioacetamide (TAA)-induced liver fibrosis: Figure 7a is a schematic diagram of the method for transplanting VBHL constructs into rats with TAA-induced cirrhosis; Figure 7b shows representative H&E staining images of host liver tissue sections harvested 4 weeks after transplantation of each construct and representative picrosirius red staining results of liver sections; Figure 7c shows the results of quantification of the degree of fibrosis in the host liver of each group; Figure 7d shows the results of qRT-PCR analysis of fibrosis-related genes, αSma, Vimentin, TGF-beta1, and Timp1, expressed in the host liver of each group; Figures 7e and 7f show the results of ELISA measurement of ALT and AST levels in rat serum; the red lines indicate the normal range. BEST MODE FOR CARRYING OUT THE INVENTION

[0042] The present invention will be described in detail below.

[0043] The present invention provides compositions for fabricating prosthetic devices that include aptamers.

[0044] The present invention also relates to a composition for coating blood vessels, which comprises an aptamer.

[0045] Tissue engineering is a method of retaining cells in any structure (cast) that uses a combination of cells and various materials. Such structures (casts) are called scaffolds, and the purpose of creating them is to create structures that can replace damaged tissues or organs, i.e., organs. There are various types, but a structure (cast) that is created by decellularizing a biological structure (i.e., an organ) and removing the cells, leaving only the microstructure and outline of the organ, is called a bioscaffold.

[0046] The prosthetic organ of the present invention is characterized in that a target organ structure, for example, a vascular structure, is reconstructed by treating a bioscaffold with an aptamer, but is not limited thereto. Specifically, the aptamer of the present invention can reconstruct or generate a vascular structure by coating the vascular wall of a decellularized support and specifically binding to vascular endothelial cells.

[0047] The present inventors have confirmed that when the vascular walls of a decellularized support are coated with anti-CD31 aptamers so that vascular endothelial cells can adhere to the walls of the support, a highly functional vascular structure in which the function of the vascular barrier is maintained is reconstructed (see the Examples of the present invention).

[0048] In the present invention, the blood vessels may be blood vessels of a decellularized support, but are not limited thereto.

[0049] In the present invention, the blood vessel may be a hepatic blood vessel, such as, but not limited to, the hepatic portal vein, hepatic sinusoid, hepatic vein, or hepatic artery.

[0050] In the present invention, the prosthetic organ may be biocompatible. The term "biocompatible" is used interchangeably with "transplant compatibility" and refers to the property of not causing immune rejection upon cell transplantation. Cells, tissues, or organs can be made transplant compatible by reducing the expression of genes that cause immune rejection. A non-limiting example of this is that cells, tissues, or organs can be made transplant compatible by reducing the expression level of the HLA genes. Transplant compatible cells include, but are not limited to, cells that are homozygous or null for immune compatibility antigens.

[0051] In the present invention, the artificial organ may be, for example, a liver, a kidney, a heart, a valve, a ureter, a bladder, a lung, a pancreas, etc., but is not limited thereto.

[0052] In the present invention, the artificial organ may be an organ containing a blood vessel, but is not limited thereto.

[0053] In the present invention, an aptamer is a substance that can specifically bind to a target substance, and refers to a single-stranded nucleic acid (DNA, RNA, or modified nucleic acid) that has a stable tertiary structure by itself and can specifically bind to a target protein (substance). Aptamers can be produced by synthesizing oligonucleotide sequences that have selective and high binding strength to the target substance to be identified using a general aptamer production method, and then modifying the 5' or 3' end of the oligonucleotide with -SH, -COOH, -OH, or NH2 so that it can be bound to a functional group on an aptamer chip, but is not limited thereto.

[0054] In the present invention, the aptamer may be, but is not limited to, an anti-CD31 aptamer.

[0055] In the present invention, the anti-CD31 aptamer may contain or consist of the base sequence represented by SEQ ID NO: 1, but is not limited thereto.

[0056] In the present invention, the aptamer is characterized by being specific to vascular endothelial cells, but is not limited thereto. Furthermore, the aptamer of the present invention is not limited to targeting only vascular endothelial cells for blood vessel reconstruction, but can be used in organ reconstruction, such as liver parenchyma reconstruction and bile duct reconstruction, regardless of the type of organ. That is, an aptamer that binds to a protein specifically expressed by liver parenchymal cells can be used for liver parenchyma reconstruction, and an aptamer that binds to a protein specifically expressed by bile duct cells can be used for bile duct reconstruction.

[0057] Therefore, the aptamer of the present invention may be specific to a protein that is specifically expressed in a target cell, but is not limited thereto.

[0058] In the present invention, the aptamer can increase the expression of one or more selected from the group consisting of integrin beta 3 and phosphorylated Akt, but is not limited thereto.

[0059] In the present invention, the aptamer can reduce the expression of cleaved caspase-3, but is not limited thereto.

[0060] In the present invention, the composition can be delivered to a tissue or organ matrix in a solution (e.g., a physiological composition) that is miscible with cells under physiological conditions (e.g., 37° C.) and may include, but is not limited to, buffers, nutrients (e.g., sugars, carbohydrates), enzymes, growth and / or differentiation media, cytokines, antibodies, inhibitory factors, growth factors, salt solutions, or serum-derived proteins.

[0061] In the present invention, the composition may further comprise, but is not limited to, parenchymal cells. The term "parenchymal cells" used in the present invention refers to cells that constitute the main part of a cell and perform its inherent function. In the present invention, the parenchymal cells may be, specifically, liver parenchymal cells, kidney parenchymal cells, corneal parenchymal cells, vascular endothelial cells, etc., and preferably, liver parenchymal cells, i.e., hepatocytes, but are not limited thereto. In the present invention, parenchymal hepatocytes account for 80% of the total liver in a non-pathological condition.

[0062] In the present invention, the parenchymal cells may be derived from the same species as the donor, but are not limited thereto.

[0063] In the present invention, the composition may further comprise, but is not limited to, stem cell-derived parenchymal cells, which may be, but are not limited to, parenchymal cells differentiated from human universal stem cells that have been depleted of human leukocyte antigens and / or overexpress neutralizing signals.

[0064] In the present invention, the composition may further comprise, but is not limited to, non-parenchymal cells, which may be one or more selected from the group consisting of hepatic endothelial cells, Kupffer cells, hepatic stellate cells (Ito cells, lipocytes, fat-storing cells), bile duct cells, Pit cells, vascular epithelial cells, and fibroblasts.

[0065] In the present invention, the composition may further comprise, but is not limited to, stem cell-derived non-parenchymal cells, which may be, but are not limited to, non-parenchymal cells differentiated from human universal stem cells that have been depleted of human leukocyte antigens and / or overexpress neutralizing signals.

[0066] In the present invention, the cells are characterized by including differentiated cells derived from stem cells, but are not limited thereto.

[0067] The term "stem cell" as used in the present invention refers to a cell that has the ability to continuously produce the same cells as itself for a certain period of time in an undifferentiated state, and the ability to differentiate into specific cells under appropriate conditions.

[0068] In the present invention, the stem cells may be one or more selected from the group consisting of induced pluripotent stem cells (iPSCs), embryonic stem cells (embryonic stem cells), mesenchymal stromal cells (MSCs), off-the-shelf universal stem cells (USCs), bone marrow-derived stem cells, adipose tissue-derived stem cells, and placenta-derived stem cells, but are not limited thereto.

[0069] In the present invention, the universal stem cells are characterized by, but not limited to, being HLA-depleted or overexpressing a neutralizing signal. The present invention is expected to minimize immune rejection during transplantation by constructing universal artificial organs containing constituent cells derived from stem cells that have been HLA-depleted and / or overexpress a neutralizing signal, making it clinically applicable.

[0070] In the present invention, the general-purpose stem cells may be, but are not limited to, HLA class I knockout iPSC cells or HLA class I knockout MSC cells.

[0071] In the present invention, the attack neutralizing signal may be, but is not limited to, CD47 or CD24.

[0072] The present invention also provides a method for producing an artificial organ, which comprises a step of treating an aptamer. In the present invention, the method for manufacturing the prosthetic device may include, but is not limited to, the following steps: a) Providing an organ from an individual; b) decellularizing the donated organ; and c) treating the decellularized organ with an aptamer.

[0073] In the present invention, the method includes the steps of: d-1) recellularizing the decellularized organ with vascular endothelial cells; d-2) recellularizing the decellularized organ with parenchymal cells; and d-3) recellularizing the decellularized organ with non-parenchymal cells, but is not limited thereto.

[0074] In the present invention, the individual can be selected from various mammalian groups such as humans, monkeys, mice, rats, pigs, cows, and rabbits.

[0075] In the present invention, the decellularization can be performed by a method known in the art. In one embodiment of the present invention, the hepatic portal vein of the liver harvested from an individual was washed with deionized water and PBS, then washed with deoxyribonuclease, and then sterilized with peroxyacetic acid. For example, the following references describe perfusion-based decellularization of lung, liver, kidney, brain, and limbs: Van Putte et al., 2002, Ann. Thorac. Surg., 74(3):893-8; den Butter et al., 1995, Transpl. Int., 8:466-71; Firth et al., 1989, Clin. Sci. (Lond.), 77(6):657-61; Mazzetti et al., 2004, Brain Res., 999(1):81-90; Wagner et al., 2003, J. Artif. Organs, 6(3):183-91. As an alternative to perfusion-based decellularization, biological tissues and organs can be decellularized by immersion in a decellularization solution that removes cells. See, for example, U.S. Patent Nos. 6,376,244 and 6,753,181.

[0076] In the present invention, physiological buffers suitable for perfusion include, but are not limited to, nutrient supplies that can be used for storage and / or organ perfusion, including transplantation, such as glucose-containing buffers, EGM-2, EGM-2MV, DMEM, Promocell endothelial cell medium, Medium 200, and DMEMF / 12. Additionally, the buffers include, but are not limited to, culture media solutions suitable for culturing endothelial cells or phosphate buffered saline (PBS).

[0077] In the present invention, alternating the direction of perfusion (e.g., anterograde and retrograde) during decellularization can help effectively remove cells from the entire organ or tissue. Decellularization as described herein essentially removes cells from the interior of the organ, causing little damage to the ECM, but is not limited to this. Organs or tissues can be decellularized at an appropriate temperature between 4 and 40°C. Depending on the size and weight of the organ or tissue and the specific detergent and detergent concentration in the cytolysis medium, organs or tissues are generally perfused with the cytolysis medium for about 2 to about 12 hours per gram of solid organ or tissue. Organs containing lavage fluid can be perfused for about 1 to about 12 hours per gram of tissue. Perfusion is generally regulated by physiological conditions, including pulsatile blood flow, flow rate, and pressure.

[0078] In the present invention, recellularization to generate organs or tissues may involve varying numbers of regenerative cells introduced into and onto the decellularized organ depending on the organ (e.g., the type of organ and its size and weight) or tissue and the type and developmental stage of the regenerative cells. Different types of cells may have different tendencies regarding the population density they reach. Similarly, different organs or tissues may be recellularized at different densities. For example, a decellularized organ or tissue may be "seeded" with at least 1,000, 10,000, 100,000, 1,000,000, 10,000,000, or 100,000,000 regenerative cells; or, after recellularization, may have, but is not limited to, about 1,000 cells / mg of tissue (wet weight, i.e., weight before decellularization) to about 100,000,000 cells / mg of tissue (wet weight).

[0079] In the present invention, the method may further include, but is not limited to, culturing the aptamer-treated organ in a bioreactor for 1 to 100 days, 1 to 90 days, 1 to 80 days, 1 to 70 days, 1 to 60 days, 1 to 50 days, 1 to 40 days, 1 to 1 month, 1 to 3 weeks, 1 to 15 days, 1 to 2 weeks, 5 to 15 days, 5 to 2 weeks, 1 to 3 weeks, or about 2 weeks.

[0080] The present invention also provides a prosthetic device produced by the above method.

[0081] The artificial organ may be a transplantable organ that does not induce immune rejection in the recipient after transplantation, but is not limited thereto.

[0082] The artificial organ may be used for screening therapeutic agents, preferably for screening therapeutic agents for liver disease, but is not limited thereto.

[0083] Throughout this specification, when any part is said to "comprise" a certain component, this does not mean that it excludes other components, but that it may further include other components, unless otherwise specified. Terms of degree such as "about," "substantially," and the like used throughout this specification are used to mean a numerical value or close to a numerical value when manufacturing and material tolerances inherent in the referred meaning are given, and are used to prevent unscrupulous infringers from unfairly exploiting disclosures in which precise or absolute numerical values are recited to aid in the understanding of the present invention. The terms "steps to (do)" or "steps of" used throughout this specification do not mean "steps for."

[0084] Throughout this specification, the term "combination thereof" contained in a Markush expression means a mixture or combination of one or more elements selected from the group of elements set forth in the Markush expression, and means including one or more elements selected from the group of elements.

[0085] Throughout this specification, the phrase "A and / or B" means "A or B, or A and B."

[0086] In some alternative embodiments, certain steps may be performed out of the order described. For example, two steps described as successive may be performed substantially simultaneously or in the reverse order of the steps described.

[0087] The terms and words used in this specification and claims should not be interpreted as being limited to their ordinary or dictionary meanings, but should be interpreted as meanings and concepts that correspond to the technical idea of the present invention, based on the principle that the inventor can appropriately define the concept of the term in order to explain his / her invention in the best possible way. DETAILED DESCRIPTION OF THE INVENTION

[0088] Preferred examples are presented below to aid in understanding the present invention. However, the following examples are provided merely to facilitate understanding of the present invention, and the contents of the present invention are not limited to the following examples.

[0089] Experimental methods and materials 1. Aptamer Preparation and Analysis An anti-CD31 single-stranded DNA aptamer (76mer, 21966-18-01) with the core sequence of SEQ ID NO: 1 was synthesized and characterized at Aptamer Sciences Inc. (Korea). The anti-CD31 aptamer was dissolved in sterile Ultrapure DEPC-treated water (Invitrogen, USA) and stored at -20°C. Before the experiment, the aptamer was heated at 95°C for 10 minutes and cooled to room temperature to induce proper folding. To confirm that the anti-CD31 aptamer specifically targets CD31+ ECs, immunofluorescence staining and flow cytometry were performed using a 5'-cy3-aptamer-3' labeled aptamer at the 5'-terminus.

[0090] <Anti-CD31 aptamer> 5’-TCA GCC GCC AGC CAG TTC(primer)-G6A GAG GAG G6A CG6 AA6 G6C 6GG G6A 6AC CCC GA6 AA6 6(SEQ ID NO:1; core sequence)-GAC CAG AGC ACC ACA GAG(primer)-3’ 6=NapdU [5-(N-Napthylcarboxyamide)-2’-deoxyuridine]

[0091] [Chemical formula]

[0092] 2.Cell culture Human umbilical vein endothelial cells (HUVECs) purchased from ATCC (USA) and human umbilical cord blood-derived mesenchymal stem cells (MSCs) were maintained in Endothelial Growth Medium-2 (EGM-2, Lonza, Switzerland). Under approval from the Seoul National University Institutional Review Board (IRB No. 1608 / 001-021), MSCs were established as described in "Donor-dependent variation of human umbilical cord blood mesenchymal stem cells in response to hypoxic preconditioning and amelioration of limb ischemia," Exp Mol Med 50(4)(2018)35. Hepatocellular carcinoma (HepG2) cells purchased from ATCC and LX-2 human stellate cells purchased from Millipore (USA) were cultured in high-glucose Dulbecco's modified Eagle's medium (DMEM, Hyclone, USA). All media were supplemented with 10% fetal bovine serum (FBS, Gibco) and antibiotics (100 U / ml penicillin and 100 μg / ml streptomycin (1% P / S, Gibco)) and 20 μg / ml Primocin (InvivoGen, USA). The culture medium was replaced every 48 hours. Cells were maintained at 37°C in a 5% CO2 humidified incubator.

[0093] 3. Microfluidic Device Design and Cell Separation Analysis We evaluated the cell separation rate of coating agents using a 3D microfluidic system. A device with three microchannels was fabricated using polydimethylsiloxane (PDMS, Sylgard 184; Dow Corning, USA) by soft lithography and replica molding. A PDMS prepolymer, consisting of a 10:1 mixture of PDMS base and curing agent, was poured onto a silicon wafer and cured. The PDMS block was then fully solidified before being separated from the wafer.

[0094] After punching the inlet and outlet ports using a biopsy punch, the PDMS block was attached to a vacuum-adhesive polycarbonate film. Before further experiments, the device was kept in a dry oven overnight to restore hydrophobicity and sterilized by UV irradiation. The microfluidic device was coated with a 100 μg / ml mixture of type 1 collagen (rat tail, #354236, Corning, USA), vitronectin (#A31804, Gibco), and fibronectin (#356008, Corning).

[0095] The devices were then coated with the following coating agents: PBS (negative control), 600 nM anti-CD31 aptamer, and 50 μg / mL anti-CD31 antibody, 5 × 10 5 HUVECs were seeded into each channel and incubated for 2 hours. Fluid shear stress was then applied to the HUVEC monolayer using an infusion syringe pump (PHD 2000 Infusion, Harvard Devices, USA). Shear stress was calculated based on a modified Poiseuille equation (see Equation 1).

[0096] [Formula 1] Tw=6μQ / wH 2

[0097] (Tw: shear stress (dynes / cm 2 ), μ: viscosity at 37°C (Poise), Q: flow rate (mL / s), w: channel width (cm), and H: channel height (cm)

[0098] EGM-2 supplemented with 1% FBS was passed through the channel at the indicated flow rates for 10 minutes. After each flow, images of cells attached to the surface were captured using an optical microscope (IX70, Olympus, Japan) and counted using Image J software. To analyze changes in HUVECs in response to shear stress, a shear stress of 10 dynes / cm was used. 2 After 30 minutes of exposure, RNA and protein were extracted from the cells.

[0099] 4. Fabrication of Decellularized Rat Liver Scaffolds Native livers were harvested from 8-week-old female Sprague-Dawley rats (250-300 g) after systemic heparinization. The hepatic portal vein was cannulated with a 24-gauge catheter, and the scaffolds were perfused with 0.1% SDS (Sigma-Aldrich, USA) in deionized water for 6 hours, followed by 10 hours of PBS washes. The scaffolds were then perfused with 0.1 mg / ml deoxyribonuclease 1 (DNase 1; Sigma-Aldrich) for 1 hour and washed with PBS for 2 hours. To remove bioburden from the scaffolds, they were sterilized with 0.1% peroxide acetic acid (Sigma-Aldrich) and stored at 4°C in PBS containing antibiotics. All rat experiments were approved by the Seoul National University Animal Care and Use Committee (SNU-170113-2).

[0100] 5. Re-endothelialization of Rat Liver Scaffolds To stabilize the sterilized decellularized liver matrix scaffolds, they were perfused with EGM-2 for 1 hour, and then coated with the following coating agents at 4°C for 1 hour by injecting them through the hepatic portal vein: PBS, 600 nM anti-CD31 aptamer, and 50 μg / mL anti-CD31 antibody (Product ID: 14-0319-80, eBioscience, USA). 7 HUVECs were labeled with carboxyfluorescein diacetate succinimidyl ester (CFDA) using a Vybrant CFDA SE cell tracker kit (Invitrogen).

[0101] CFDA-labeled HUVECs suspended in EGM-2 supplemented with 10% FBS and antibiotics were delivered via the portal vein at a rate of 0.5 ml / min. After maintaining static culture for 2 hours, the reendothelialized constructs were perfused with culture medium at a rate of 1.5 ml / min using a coupled infusion pump within the bioreactor. The culture medium was replaced every 48 hours, and samples were harvested on day 7 for further analysis. Endothelial coverage and the number of reendothelialized vessels were quantified using Image J software.

[0102] 6. Transduction of Hepatocytes and Non-parenchymal Cells into Decellularized Rat Liver When fabricating the decellularized liver scaffold, the bile duct was cannulated with a 26G catheter and the portal vein with a 24G catheter. After decellularization, a total of 4 × 10 7 HepG2 cells were delivered to the stromal space of the scaffold in half via the bile duct and maintained in the bioreactor for 2 days. After 2 days, 4 x 10 HepG2 cells were 7 The cells were further transferred into the parenchyma and the constructs were cultured for up to 14 days.

[0103] On day 14, 6 × 10 CFDA-labeled HUVECs were cultured. 6 and 3 x 10 of MSCs 6 The mixture is delivered to the vascular lumen via the portal vein and simultaneously to 1 x 10 via the bile duct. 7 LX2 cells were injected. All cells were delivered at a rate of 0.5 ml / min. After maintaining static culture for 2 hours, the constructs were perfused at a rate of 1.5 ml / min using a coupled infusion pump. Until the 14th day, the VBHL constructs were maintained in DMEM high glucose medium with 10% FBS and antibiotics. From the 14th to the 21st day, the medium was changed to EGM-2 with 10% FBS and antibiotics. Additional analysis was performed on the VBHL constructs harvested on the 21st day.

[0104] 7.Statistical analysis Statistical analysis was performed using GraphPad Prism version 5.0. All values were reported using the mean ± standard deviation. A value of p<0.05 was considered significant. Statistical analysis between two groups was performed with an unpaired, two-tailed Student's t-test. For multiple group comparisons, a two-way ANOVA with Bonferroni post hoc test was performed. Data presented represent the results of at least three independent experiments.

[0105] 8. Immunofluorescence Staining Cells or tissue sections were fixed with 4% formaldehyde for 10 minutes, then permeabilized with 0.2% Triton X-100 (Sigma-Aldrich) for 10 minutes and blocked with 5% goat serum (Vector Laboratories, Switzerland) for 1 hour. Samples were then probed overnight at 4°C with the following primary antibodies: anti-human CD31 (14-0319-80, eBioscience, USA), anti-albumin (GTX102419, GeneTex, USA), anti-vimentin (ab45939, Abcam, UK), anti-galactosidase alpha (GTX101178, GeneTex), anti-ZO-1 (#40-2200, Invitrogen), anti-cleaved caspase-3 (#9664, Cell Signaling Technology, USA), anti-phospho-Akt (#9271, Cell Signaling Technology), anti-integrin beta 3 (#13166, Cell Signaling Technology), anti-integrin alpha IIb (sc-365938, Santa Cruz biotechnology, USA), and anti-α-Smooth. Muscle actin (ab7814, Abcam). Fluorescent-dye-conjugated secondary antibodies (Alexa Fluor 488 and 549; Invitrogen) were applied for 1 hour. Nuclei were stained with DAPI (sc3598, Santa Cruz Biotechnology) for 10 minutes, and cells were mounted in fluorescent mounting medium (S302380, DAKO, Denmark). Stained signals were visualized using an Eclipse TE 2000 confocal laser scanning microscope (Nikon, Japan). Similarly, paraffin-embedded tissue sections were deparaffinized, hydrated, fixed in 4% formaldehyde, and then stained as described above.

[0106] 9. Flow Cytometry To estimate the binding kinetics of the anti-CD31 aptamer in a concentration-dependent manner, HUVECs were incubated with different concentrations of Cy5-labeled anti-CD31 aptamer in a reaction buffer consisting of 1 mM MgCl2 and 2 mg / ml bovine serum albumin for 20 min at 4°C. To test the specificity of the anti-CD31 aptamer, HepG2 cells and MSCs were compared. Cells were washed with 1 ml of reaction buffer, suspended in PBS, and analyzed using a FACS Calibur (BD Biosciences, USA). A PE-conjugated anti-CD31 antibody (BD555446, BD Biosciences) was used as a positive control. Data were analyzed using FlowJo software (USA).

[0107] 10. Analysis of Cell Adhesion Ability Rat abdominal aortas were harvested and immersed in agitated 0.05% SDS for decellularization. The decellularized arterial scaffolds were cut longitudinally to expose the internal structure and sterilized with 0.1% acetic acid peroxide. The scaffolds were then immersed in coating agents for 2 hours: PBS (negative control), 600 nM anti-CD31 aptamer, and 50 μg / mL anti-human CD31 antibody (14-0319-80, eBioscience, positive control). The coated scaffolds were then transferred to 24-well plates and 1 × 10 6 HUVECs were seeded onto the inner surface of the arterial scaffold. After maintaining static culture for the indicated time points (2 and 4 hours), the cell-dispensed scaffolds were washed with PBS and transferred to new plates. The number of viable cells was quantified by tetrazolium-based MTT assay. For MTT analysis, samples were maintained in medium containing 10% MTT stock solution (Sigma-Aldrich) at 37°C for 4 hours. The supernatant was then removed, and dimethyl sulfoxide was added to each well to solubilize the purple formazan. The absorbance at 540 nm was measured using a microplate reader (Infinite M200 pro, Tecan, Switzerland).

[0108] 11.qRT-PCR Total RNA was extracted from cells or engineered constructs using NucleoZOL (Macherey-Nagel, Germany). Complementary DNA was then synthesized from the extracted RNA using the Superscript III First-Strand Synthesis System (Invitrogen). qRT-PCR was performed using an ABI 7300 Real-time PCR system (Applied Biosystems) with SYBR Green PCR Master Mix (Applied Biosystems, USA). Relative quantification of target mRNA expression levels was performed using a 2(ΔΔ threshold cycle )(2- ΔΔCT ) method. The expression level of each gene was normalized to the expression of a housekeeping gene. The primer sequences used are shown in Table 1.

[0109] [Table 1]

[0110] 12. Western Blot Proteins were extracted using PRO-PREP (iNtRon Biotechnology, Korea), and whole cell lysates were sonicated. To extract proteins from tissue samples, the tissues were homogenized with steel beads and PRO-PREP, followed by sonication. After centrifugation, the supernatant was transferred to a new tube and analyzed. Protein concentrations were quantified using a DC analysis kit (Bio-Rad, USA). Equal amounts of protein (10 μg) were loaded onto an 8–15% acrylamide Tris-glycine gel. Proteins of interest were probed with the following primary antibodies: anti-GAPDH (AB2302, Millipore), anti-Integrin beta 3 (#13166, Cell Signaling Technology), anti-Akt (#4691, Cell Signaling Technology), anti-phospho-Akt (#9271, Cell Signaling Technology), anti-cleaved Caspase-3 (#9664, Cell Signaling Technology), and anti-Galactosidase. The primary antibodies were: alpha (GTX101178, GeneTex), anti-fibronectin (ab2413, Abcam), anti-Collagen IV (ab19808, Abcam), anti-laminin (ab11575, Abcam), anti-CK18 (MAB3234, Millipore), anti-CYP2E1 (CSB-PA006425EA01HU, Cusabio, China), and anti-AFP (A0008, DAKO). After overnight incubation at 4°C with the primary antibodies, HRP-conjugated secondary antibodies were applied. After probing with the Amersham Enhanced chemiluminescence detection kit (GE Healthcare, USA), specific protein bands were detected using FluorChem HD2 (Alpha Innotech, USA).

[0111] 13. Histological examination Samples were washed three times with PBS and fixed in 4% paraformaldehyde overnight at 4°C. Tissues were embedded in paraffin and serially sectioned at 10 μm thickness. After deparaffinization, tissue sections were hydrated using a descending series of ethanol solutions ranging from 100% to 70%. Tissue slices were then stained with H&E and picrosirius red solution (0.1% Direct Red 80 and 0.1% Fast Green FCF). All reagents were purchased from Sigma-Aldrich. PAS staining was performed using a PAS staining kit (ab150680, Abcam). After staining, sections were washed with tap water, dehydrated using a series of ascending concentrations of ethanol, and mounted. Visualization was performed using Nikon NIS-Elements software and a light microscope (Nikon), and fibrosis quantification was performed using Image J software.

[0112] 14. Resazurin-reduced Perfusion Analysis PrestoBlue Cell Viability Reagent (A13261, Invitrogen), a nontoxic resazurin-based solution, was used according to the manufacturer's instructions. To generate a standard curve for HUVECs, 0.02, 0.05, 0.1, 0.2, 0.5, 1, and 2 million cells were seeded into six-well plates. After 6 hours of incubation, the cells were washed, and the medium was replaced with 2 ml of PrestoBlue Reagent mixed with complete EGM-2 (1:20 ratio). After 1 hour of incubation at 37°C, the medium was collected and the absorbance at 570 nm was measured using a microplate reader. To generate the standard curve, the engineered constructs were perfused with 30 ml of the PrestoBlue-intermediate mixture at 37°C for 1 hour. The harvested medium was analyzed as described above.

[0113] 15. Analysis of FITC-conjugated Dextran Perfusion To assess the permeability of reendothelialized blood vessels in engineered tissues, we used perfusion of 500 kDa FITC-dextran (FD500S, Sigma-Aldrich) via the portal vein. 25 mL of FITC-dextran (0.2 mg / mL) was administered at 20 mmHg. Dextran in the fluid draining from the inferior vena cava was considered intravascular dextran, while peripheral blood was considered extravascular dextran. The amount of total dextran was determined by multiplying the fluorescence intensity (absorbance at 490 nm) by the volume of drained fluid.

[0114] 16.TUNEL Assay To detect apoptotic cells in the engineered constructs, we used the ApopTag Red In situ Apoptosis Detection Kit (Millipore). Tissue sections were deparaffinized and digested with protease K. Equilibration buffer was applied to the sections, which were then probed with TdT enzyme for 1 hour in a 37°C incubator. After washing with stop / wash buffer, anti-digoxigenin (rhodamine-conjugated) was applied to the sections. These sections were then washed with PBS, and nuclei were stained with DAPI. TUNEL-positive cells were detected using a confocal microscope.

[0115] 17. Quantification of secreted NO and VEGF The concentration of NO secreted from the bioengineered constructs was measured using the NO Plus Detection Kit (iNtRON). The conditioned medium was collected at the indicated time points, and cell debris was removed by centrifugation. NO was then measured from the conditioned medium supernatant according to the manufacturer's instructions. The absorbance at 540 nm was measured using a microplate reader. The constructs were cultured in EBM-2 (endothelial basal medium-2) without growth factors and exposed to a human VEGF Quantikine ELISA kit (DVE00, R&D Systems, USA). After 12 hours, the supernatant was collected from each engineered construct for VEGF quantification in the conditioned medium. The absorbance at 450 nm was measured using a microplate reader.

[0116] 18. Ex vivo Human Hemoperfusion Analysis 1×10 7 The scaffolds further filled with HUVECs were maintained in EGM-2 supplemented with 10% FBS and antibiotics for 7 days before perfusion with human blood. Heparinized human blood obtained from the Korean Red Cross Central Blood Center was mixed with culture medium (1:1) and perfused through the portal vein of each scaffold. At the indicated time points, the blood perfusate was collected, and the platelet count in the perfusate was counted using an Advia 2120i hematology system (Siemens Healthineers, Germany). After 24 hours of perfusion, samples were washed with PBS and subjected to gene expression analysis and immunostaining to evaluate the extent of thrombus formation within the scaffolds. cDNA was synthesized from the extracted RNA and amplified by PCR using primers targeting thrombogenic genes. Paraffin-embedded tissue blocks were sectioned and stained for integrin αIIb according to the procedure described in Immunofluorescence Staining.

[0117] 19. Albumin / Urea ELISA Analysis The amount of albumin protein secreted from the constructs in the conditioned medium was determined using a human albumin ELISA kit (ab108788, Abcam). Conditioned medium from VBHL constructs was harvested at the indicated time points. After centrifugation, the secreted albumin concentration in the supernatant was quantified using ELISA according to the manufacturer's recommendations. The absorbance at 450 nm was measured using a microplate reader. The amount of urea secreted from the supernatant collected in the conditioned medium was also measured. The urea concentration was quantified by measuring the absorbance at 520 nm using a QuantiChrom Urea Assay Kit (BioAssay Systems, USA).

[0118] 20. In vivo reperfusion of vascularized liver constructs First, decellularized liver constructs were prepared by catheterization as follows: a 22-gauge catheter for the portal vein, a 26-gauge catheter for the bile duct, and a 20-gauge catheter for the inferior vena cava. VBHL constructs were prepared as described in Experimental Methods 6. After maintaining the VBHL constructs in the bioreactor for 21 days, they were directly connected to the host renal circulatory system using catheters of various sizes. For this procedure, healthy 1-year-old rats were anesthetized and the left kidney was exposed. After clamping the renal artery and vein, they were catheterized with 24-gauge catheters. The catheters placed in the portal vein and inferior vena cava of the construct were connected to the catheters placed in the renal artery and vein, respectively. The connections were fixed with Vetbond adhesive (3M, USA). After removing the vascular clamps, the constructs were perfused with blood for 2 hours in vivo. The harvested liver constructs were then subjected to further analysis.

[0119] 21. Rat Model of TAA-Induced Chronic Liver Injury and Transplantation of VBHL Constructs To evaluate the in vivo function of the VBHL constructs, chronic liver injury was induced in 4-week-old female rats. After 12 weeks of continuous administration of 0.3 g / L TAA (Sigma-Aldrich) in drinking water, the rats were analyzed for induced liver fibrosis. Serum ALT and AST levels were measured using an ALT Activity Colorimetric Assay Kit (K752-100, Biovision, China) and an AST Activity Colorimetric Assay Kit (K753-100, Biovision). After 8 weeks of liver cirrhosis induction in the rats, laparotomy was performed to expose the livers. The fibrous capsule was then removed from each VBHL construct, which was then implanted between the median and right lateral lobes of the host liver and fixed. VBHL constructs were fabricated using decellularized rat livers as described in Part 6 of the Experimental Methods. After 4 weeks, the host livers implanted with the liver constructs were harvested for additional analysis. Serum samples were obtained before and after surgery.

[0120] Example 1. Verification of the properties of anti-CD31 aptamers As shown in Figure 1a, after constructing the anti-CD31 aptamer that can specifically bind to the CD31 protein, the binding strength between the CD31-expressing cells and the aptamer was verified using a flow cytometer.

[0121] As shown in Figure 1b and Figure 1c, 600nM and 800nM aptamers were able to bind to approximately 99% of vascular endothelial cells (HUVECs), while HepG2 and MSCs, which do not express CD31, bound to approximately 2% of the cells. Furthermore, when the binding strength to vascular endothelial cells as a function of aptamer concentration was quantified, the binding strength was saturated at 600nM, so the aptamer concentration conditions were optimized at 600nM.

[0122] Furthermore, as shown in Figure 1e-g, immunocytochemistry confirmed that 600 nM of the aptamer bound to HUVECs but not to HepG2 or MSCs. Based on these results, we verified that the anti-CD31 aptamer specifically bound to CD31.

[0123] Example 2: Evaluation of adhesion ability of vascular endothelial cells upon aptamer treatment and confirmation of effects on vascular endothelial cells As shown in Figure 2a, the inside of a microfluidic device was coated with extracellular matrix (ECM) components, and then coated with anti-CD31 aptamer (APT-coated) and anti-CD31 antibody (Ab-coated, positive control group). HUVECs were then injected, and the cell adhesion ability was evaluated while flowing fluid at a constant speed.

[0124] As a result, as shown in Figures 2b and 2c, the APT-coated group exhibited a 10 dynes / cm 2 When a shear stress of 20 dynes / cm was applied, more than 80% of the cells were firmly attached. 2 The Ab-coated group, the positive control, showed a high adhesion ability of 61.5% even when a strong shear stress of 20 dynes / cm was applied. 2When treated with a shear stress of 1000 kJ / cm, the adhesion ability was 51%. This indicates that the anti-CD31 aptamer enhances the adhesion ability of vascular endothelial cells with higher efficiency than the anti-CD31 antibody.

[0125] To investigate the mechanism mediating the difference in HUVEC adhesion ability between the coating agents, we extracted RNA from cells in the microfluidic device and analyzed the mRNA expression pattern.

[0126] Integrin proteins are composed of an extracellular domain, a transmembrane domain, and an intracellular domain, and it is known that when the excellular domain binds to the extracellular matrix, a signal is transmitted into the cell, activating various signal transduction pathways. This was used to confirm whether integrin proteins are activated by shear stress.

[0127] As a result, as shown in Figures 2e to 2g, the aptamer-coated microfluidic device actually exhibited a current density of 10 dynes / cm 2 We confirmed that HUVECs exposed to shear stress not only activated integrins but also Akt signaling, a downstream signaling pathway. Akt signaling has been reported to be related to cell survival and angiogenesis in vascular endothelial cells. Accordingly, we also confirmed that the expression of cleaved caspase-3, a cell death marker, was reduced in the APT-coated group, as shown in Figure 2i.

[0128] Example 3. Verification of the efficacy of aptamers in reconstructing vascular structure through recellularization of decellularized endothelial cells in vivo As shown in Figure 3a, decellularized support structures were prepared from rat liver and the inner walls of the vessels were coated with a coating agent. HUVECs labeled with CFDA (green) were recellularized and cultured for 7 days, and the reconstructed vascular structures were confirmed.

[0129] As a result, as shown in FIG. 3b, it was confirmed that vascular endothelialization was sufficiently achieved within the anti-CD31 aptamer-coated support.

[0130] Furthermore, as shown in Figures 3c and 3d, approximately 80% endothelialization occurred per blood vessel in the APT-coated group, and approximately 80% endothelialization occurred within the recipient. This confirmed that endothelialization efficiency was maximized in the aptamer-treated group compared to the uncoated group.

[0131] Furthermore, as shown in Figure 3e, when dextran was injected via the portal vein catheter to evaluate the barrier function of the reconstructed blood vessels, we confirmed that the amount of intravascular dextran that did not leak outside the blood vessels was significantly increased in the APT-coated group. Therefore, we verified that when anti-CD31 aptamers are coated with a coating agent, highly functional vascular structures with well-maintained decellularized internal barrier function are efficiently reconstructed.

[0132] In addition, because the viability of cells cultured during in vitro culture can have a significant impact on the functionality of the reconstructed artificial organ, the degree of cell death of the cultured cells was analyzed using immunostaining.

[0133] As a result, as shown in Figures 3i and 3j, cell death was reduced in the APT-coated group compared to the uncoated or anti-CD31 antibody-coated groups.

[0134] Subsequently, enzyme-linked immunosorbent assay (ELISA) was performed to verify the vascular-specific functionality of the reconstructed vascularized organ.

[0135] As shown in Figure 3k and Figure 3l, when we analyzed the amounts of nitric oxide (NO) and VEGF secreted from the recellularized HUVECs, we confirmed that the secretion of NO and VEGF was significantly increased in the APT-coated group compared to the other groups.

[0136] Overall, we demonstrated that the use of anti-CD31 aptamer as a coating agent not only increased the efficiency of vascular reconstruction and barrier function, but also enhanced vascular viability and angiogenesis potential.

[0137] Example 4. Evaluation of sustained in vivo thrombus formation via ex vivo human hemoperfusion To closely examine the degree of vascular reconstruction, human blood was perfused into the recellularized HUVECs cultured for 7 days, and the degree of thrombus formation was evaluated in vitro (Figure 4a). This analysis method allowed us to indirectly evaluate the degree of thrombus formation when the artificial organ was actually transplanted into a human. As a result, as shown in Figure 4b, thrombus formation was visually reduced in the APT-coated group. Furthermore, as shown in Figures 4c and 4d, immunostaining confirmed that the expression of integrin αIIb, a thrombus marker, was reduced in the APT-coated group.

[0138] Furthermore, as shown in Figures 4e and 4f, when the number of platelets in the perfusate was quantified, in the non-reendothelialized decellularized liver matrix (DLM) group, the number of platelets remaining in the perfusate after 4 hours of perfusion decreased to less than 20% due to the phenomenon of retained in vivo coagulation. However, in the APT-coated group, approximately 60% of the platelets remained even after 24 hours of blood perfusion.

[0139] Furthermore, as shown in Figure 4g, the expression of markers related to platelet aggregation (CD63, PLSCR1, TBXAS1, and THBS1) was reduced in the APT-coated group.

[0140] Based on the above results, it was verified that aptamer coating enables the formation of perfusable blood vessels through more efficient endothelialization, minimizing thrombus formation during blood perfusion.

[0141] Example 5. Fabrication of a vascularized artificial liver using aptamers and evaluation of its functionality To reconstruct a vascularized bioengineered human liver (VBHL) using aptamers, decellularized in vivo hepatic parenchymal cells (HepG2), hepatic stellate cells (mesenchymal stem cells), and vascular endothelial cells (HUVEC) were cultured as shown in Figure 5a.

[0142] As a result, as shown in Figures 5b to 5d, in the artificial liver tissue (APT-VBHL) that was coated with aptamer and then endothelialized, more than 90% of the blood vessels were endothelialized, and it was confirmed using albumin immunostaining that the liver parenchyma was also well reconstructed.

[0143] Furthermore, as shown in Figure 5e, aSMA immunostaining confirmed that mesenchymal stem cells successfully engrafted into the perivascular region after aptamer treatment, whereas the uncoated or antibody-treated groups showed no development of the perivascular region.

[0144] Furthermore, as shown in Figure 5f, when dextran was infused through the hepatic portal vein and quantified, it was confirmed that intravascular dextran was significantly increased in the APT-VBHL group, confirming that the vascular barrier function of the liver tissue was maintained.

[0145] Therefore, by treating with the aptamer, not only vascular endothelialization but also the reconstruction of the perivascular region that constitutes the vascular wall was achieved, resulting in the production of highly functional blood vessels that maintain good barrier function.

[0146] In addition, the degree of cell death in the artificial liver tissue was quantified using the TUNEL assay.

[0147] As a result, as shown in FIG. 5l, the APT-VBHL group showed the least cell death, which is associated with the functionality of the artificial liver.

[0148] In addition, to confirm vascular-specific functionality, we measured the amount of NO production and the amount of VEGF secreted from the artificial liver.

[0149] As a result, as shown in Figures 5g and 5h, the APT-VBHL group showed superior functionality compared to the other groups.

[0150] In addition, to confirm liver-specific functionality, ELISA was performed to quantify the albumin and urea components secreted from the artificial liver.

[0151] As shown in Figures 5i and 5j, the amounts of albumin and urea secreted on day 21 of culture were also highest in the APT-VBHL group. In particular, the liver functionality showed a difference after vascular reconstruction, indicating that highly functional vascular reconstruction via aptamer coating plays an important role in maintaining the overall functionality of the artificial liver tissue.

[0152] Example 6. Evaluation of in vivo thrombosis formation of aptamer-treated vascularized artificial liver As shown in Figure 6a, the hepatic portal vein and inferior vena cava of the artificial liver were connected to the renal artery and renal vein of a rat, respectively, and the degree of in vivo thrombosis of the vascularized artificial liver was evaluated by perfusing blood in vivo. Specifically, the renal vein (yellow arrow) was connected to the inferior vena cava of the VBHL construct, and the renal artery (white arrow) was connected to the portal vein of the construct. After removing the vascular clamp (blue arrow), the VBHL construct was reperfused through the in vivo renal circulation system.

[0153] As a result, as shown in Figure 6b, no thrombus formation was visually observed in the aptamer-treated artificial liver.

[0154] Furthermore, as shown in Figures 6c and 6d, it was confirmed that the expression of integrin αIIb, a thrombus marker, was also reduced.

[0155] Furthermore, as shown in Figure 6e, when the expression of blood coagulation-related mRNA markers (Cd63, Plscr1, Thbs1) was analyzed, the expression of blood coagulation-related markers was most reduced in the APT-VBHL group.

[0156] Therefore, based on the above results, it was verified that artificial liver culture was successful in minimizing thrombus formation in vivo through aptamer treatment.

[0157] Therefore, when the aptamer coating agent of the present invention is used, it is expected that the most serious side effects that may occur after artificial liver transplantation can be minimized and the success rate of artificial liver transplantation can be increased.

[0158] Example 7. Evaluation of in vivo liver functionality of aptamer-treated vascularized artificial liver To evaluate liver-specific functionality in vivo, we transplanted a vascularized artificial liver into a rat model of liver fibrosis induced with thioacetamide (TAA) (Figure 7a). Eight weeks after TAA induction, rats received xenotransplants of decellularized liver matrix (DLM transplant) or VBHL constructs (CTL-VBHL; CTL transplant, APT-VBHL; APT transplant, Ab-VBHL; Ab transplant).

[0159] The specific experimental groups are as follows: 1) Sham 2) DLM implanted; transplantation of decellularized support alone without cells 3) CTL implanted: transplantation of an artificial liver reconstructed without coating 4) APT implanted: An artificial liver coated with anti-CD31 aptamer was implanted. 5) Ab implanted: Transplantation of an artificial liver coated with anti-CD31 antibody

[0160] After 4 weeks, the livers of the donor rats were sampled and subjected to H&E tissue staining and Picrosirius red tissue staining (red: collagen, green: cell cytoplasm).

[0161] As a result, as shown in Figures 7b and 7c, transplantation of the decellularized support and artificial liver reduced the degree of liver eosinophilia and fibrosis compared to the sham group. Among these, transplantation of the aptamer-treated artificial liver showed the greatest reduction in liver fibrosis.

[0162] Furthermore, as shown in Figure 7d, when we analyzed the mRNA expressed in the liver of the recipients, we confirmed that the expression of markers associated with fibrosis (α-smooth muscle actin (Sma), Vimentin, TGF-beta1, and Timp1) was clearly reduced in the APT implanted group.

[0163] Furthermore, as shown in Figures 7e and 7f, when the serum levels of ALT and AST, which are indicators of liver damage, were examined in rats, it was confirmed that in the APT implanted group, serum ALT and AST levels were maintained at normal levels (between the red lines) after surgery.

[0164] Therefore, the artificial liver treated with the aptamer of the present invention maintains improved liver-specific functionality in vivo, which supports the damaged liver function of the donor.

[0165] Thus, the present inventors were the first to confirm that aptamers can be applied to artificial organs.

[0166] These results suggest that when aptamers are used as a coating agent for decellularized support, they can enhance vascular adhesion, viability, and angiogenesis through the integrin-Akt signaling pathway, enabling more efficient reconstruction of vasculature than anti-CD31 antibodies used in previous studies. Therefore, the vascularized artificial liver fabricated using the present invention not only reduces thrombus formation in vivo, but also enhances liver functionality. These results also suggest the potential application of artificial livers as therapeutic agents for liver diseases from a tissue engineering perspective.

[0167] The above description of the present invention is for illustrative purposes only, and those skilled in the art will understand that the present invention can be easily modified into other specific forms without changing the technical concept or essential features of the present invention. Therefore, the above-described embodiments should be understood to be illustrative in all respects and not limiting. [Industrial Applicability]

[0168] When the aptamer of the present invention is used as a coating agent for decellularized support, it can enhance the adhesion, viability, and angiogenesis of blood vessels, enabling more efficient reconstruction of the vascular structure than conventional antibodies. Therefore, a vascularized artificial liver fabricated using the aptamer not only reduces thrombus formation in vivo but also exhibits the effect of enhancing liver functionality, and is expected to be applied as a disease treatment method using an artificial organ fabricated using the aptamer of the present invention, making it industrially applicable.

Claims

1. A composition for coating blood vessels, comprising an anti-CD31 aptamer and vascular endothelial cells, The blood vessel is a vascular wall of a decellularized support, A composition, wherein the aptamer comprises a base sequence represented by SEQ ID NO:

1.

2. The composition of claim 1, characterized in that the aptamer increases the expression of one or more selected from the group consisting of integrin beta 3 and phosphorylated Akt after application of shear stress following binding of the aptamer.

3. The composition of claim 1, which reduces the expression of cleaved caspase-3 after application of shear stress following binding of the aptamer.

Citation Information

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