価格表

在庫・価格 : 2025年05月16日 09時13分 現在

商品名 商品コード メーカー 包装 価格 在庫 リスト
Fastin Elastin Assay Kit
データシート※最新のデータシートでない場合があります
F2000 QBSバイオカラー
Biocolor, Ltd.
1 kit ¥130,000 1個 追加

在庫・価格 : 2025年05月16日 09時13分 現在

Fastin Elastin Assay Kit

  • 商品コード:F2000
  • メーカー:QBS
  • 包装:1kit
  • 価格: ¥130,000
  • 在庫:1個
使用文献
No. 文献情報 備考 参照
1 Cramer, C., 2020, Charakterisierung der biomechanischen Eigenschaften und extrazellulテ、ren Matrix bei BAV-assoziierten Aortopathien

PubMed
2 Mohiuddin, O. A., 2020, Characterization of Decellularized Adipose Tissue Hydrogel and Analysis of Its Regenerative Potential in Mouse Femoral Defect Model

PubMed
3 Wang, Y., 2020, Biodegradable vascular grafts

PubMed
4 Sun, W., 2020, Elastase treatment of tissue matrices

PubMed
5 Rashmi, R., 2020, Bioengineered skin grafts for chronic wounds using 3-dimensional hybrid scaffolds made up of silk fibroin, fibrin composite and amnion

PubMed
6 Higuita, M. L.; Griffiths, L., 2020, Effect of extracellular matrix scaffold generation method on function of small diameter venous valved conduits

PubMed
7 Lee, J.; Hong, J.; Kim, W. J.; Kim, G. H., 2020, Bone-derived dECM/alginate bioink for fabricating a 3D cell-laden mesh structure for bone tissue engineering

PubMed
8 Higuita, M. L.; Griffiths, L. G., 2020, Antigen removal process preserves function of small diameter venous valved conduits, whereas SDS-decellularization results in significant valvular insufficiency

PubMed
9 Sumitran-Holgersson, S.; Rosales, A.; ..., 2020, Bioengineered allogeneic valve

PubMed
10 Zhao, C.; Li, Y.; Peng, G.; Lei, X.; Zhang, G.; ..., 2020, Decellularized liver matrix-modified chitosan fibrous scaffold as a substrate for C3A hepatocyte culture

PubMed
11 Bengtsson, E.; Hultman, K.; Edsfeldt, A.; Persson, A.; ..., 2020, CD163+ macrophages are associated with a vulnerable plaque phenotype in human carotid plaques

PubMed
12 Thottappillil, N.; Nair, P. D., 2020, Dual source co-electrospun tubular scaffold generated from gelatin-vinyl acetate and poly-ɛ-caprolactone for smooth muscle cell mediated blood vessel engineering

PubMed
13 Zouhair, S.; Sasso, E. Dal; Tuladhar, S. R.; Fidalgo, C.; ..., 2020, A comprehensive comparison of bovine and porcine decellularized pericardia: new insights for surgical applications

PubMed
14 Coppi, P. De; Urbani, L.; Pinzani, M.; Mazza, G.; ..., 2020, Cryopreservation

PubMed
15 Liang, C. C.; Shaw, S. W. S.; Ko, Y. S.; Huang, Y. H.; Lee, T. H., 2020, Effect of amniotic fluid stem cell transplantation on the recovery of bladder dysfunction in spinal cord-injured rats

PubMed
16 Saleh, T.; Ahmed, E.; Yu, L.; Song, S. H.; ..., 2020, Conjugating homogenized liver‐extracellular matrix into decellularized hepatic scaffold for liver tissue engineering

PubMed
17 Belviso, I.; Romano, V.; Sacco, A. M.; Ricci, G.; ..., 2020, Decellularized human dermal matrix as a biological scaffold for cardiac repair and regeneration

PubMed
18 Luo, Y.; Ma, L., 2020, Bioprosthetic heart valves with reduced immunogenic residuals using vacuum-assisted decellularization treatment

PubMed
19 Tong, J.; Xin, Y. F.; Xu, X.; Yang, F.; Zhang, Z., 2020, Effect of diabetes mellitus on the dissection properties of the rabbit descending thoracic aortas

PubMed
20 Mony, M. P.; Anilkumar, T. V., 2020, Controlled cross‐linking of porcine cholecyst extracellular matrix for preparing tissue engineering scaffold

PubMed
21 Wu, Q.; Cheng, Z.; Zhou, Y.; Zhao, Y.; Li, J.; Zhou, X.; ..., 2020, A novel STAT3 inhibitor attenuates angiotensin II-induced abdominal aortic aneurysm progression in mice through modulating vascular inflammation and …

PubMed
22 Pedroza, A. J.; Koyano, T.; Trojan, J.; Rubin, A.; ..., 2020, Divergent effects of canonical and non‐canonical TGF‐β signalling on mixed contractile‐synthetic smooth muscle cell phenotype in human Marfan syndrome aortic …

PubMed
23 Li, T.; Fu, F.; Wu, C.; Qin, F.; Yuan, J., 2020, Characteristics of penile growth in pubertal rats and a non‐invasive method to lengthen the penis

PubMed
24 Kim, W. J.; Kim, G. H., 2020, An intestinal model with a finger-like villus structure fabricated using a bioprinting process and collagen/SIS-based cell-laden bioink

PubMed
25 Gotoh, D.; Shimizu, N.; Wada, N.; ..., 2020, Effects of a new β3‐adrenoceptor agonist, vibegron, on neurogenic bladder dysfunction and remodeling in mice with spinal cord injury

PubMed
26 Alshaikh, A. B.; Padma, A. M.; Dehlin, M.; Akouri, R.; ..., 2020, Decellularization and recellularization of the ovary for bioengineering applications; studies in the mouse

PubMed
27 Chim, Y. H.; Davies, H. A.; Mason, D.; Nawaytou, O.; ..., 2020, Bicuspid valve aortopathy is associated with distinct patterns of matrix degradation

PubMed
28 Lee, H.; Ju, Y. M.; Kim, I.; Elsangeedy, E.; Lee, J. H.; Yoo, J. J.; ..., 2020, A novel decellularized skeletal muscle-derived ECM scaffolding system for in situ muscle regeneration

PubMed
29 Li, J.; Cai, Z.; Cheng, J.; Wang, C.; Fang, Z.; ..., 2020, Characterization of a heparinized decellularized scaffold and its effects on mechanical and structural properties

PubMed
30 Lan, X.; Zhao, Q.; Zhang, J.; Lei, Y.; Wang, Y., 2020, A combination of hydrogen bonding and chemical covalent crosslinking to fabricate a novel swim-bladder-derived dry heart valve material yields advantageous …

PubMed
31 Hosseini, V.; Mallone, A.; Mirkhani, N.; Noir, J.; ..., 2020, A pulsatile flow system to engineer aneurysm and atherosclerosis mimetic extracellular matrix

PubMed
32 Ristaniemi, A.; Torniainen, J.; Stenroth, L.; ..., 2020, Comparison of water, hydroxyproline, uronic acid and elastin contents of bovine knee ligaments and patellar tendon and their relationships with biomechanical …

PubMed
33 Kim, W. J.; Lee, H.; Lee, J. U.; Atala, A.; Yoo, J. J.; Lee, S. J.; ..., 2020, Efficient myotube formation in 3D bioprinted tissue construct by biochemical and topographical cues

PubMed
34 Sv辰rd, A.; Hammerman, M.; Eliasson, P., 2020, Elastin levels are higher in healing tendons than in intact tendons and influence tissue compliance

PubMed
35 Fazaeli, S.; Mirahmadi, F.; Everts, V.; ..., 2020, Alteration of structural and mechanical properties of the temporomandibular joint disc following elastase digestion

PubMed
36 Panpho, P., 2021, Biomechanics and Biochemistry of the Aorta in Chronic Aortic Dissection

PubMed
37 L坦pez-Mart鱈nez, S.; Campo, H.; ..., 2021, A Natural Xenogeneic Endometrial Extracellular Matrix Hydrogel Toward Improving Current Human in vitro Models and Future in vivo Applications

PubMed
38 Bonito, V.; Koch, S. E.; Krebber, M. M.; ..., 2021, Distinct Effects of Heparin and Interleukin‐4 Functionalization on Macrophage Polarization and In Situ Arterial Tissue Regeneration Using Resorbable …

PubMed
39 Sulaiman, N. S.; Bond, A. R.; Bruno, V. D.; ..., 2021, Effective decellularisation of human saphenous veins for biocompatible arterial tissue engineering applications: Bench optimisation and feasibility in vivo testing

PubMed
40 Kim, W. J.; Lee, H.; Lee, C. K.; Kyung, J. W.; ..., 2021, A bioprinting process supplemented with in situ electrical stimulation directly induces significant myotube formation and myogenesis

PubMed
41 Kim, J. D.; Han, H. S.; Kim, H. I.; Choi, J. S.; Park, J. H.; ..., 2021, 2D to 3D transformation of gold nanosheets on human adipose-derived 留-elastin nanotemplates

PubMed
42 Damanik, F. F. R.; Verkoelen, N., 2021, Blitterswi k, C. an, Rotmans,., &Moroni, L.(2021)

PubMed
43 Qiu, X.; Lee, B. L. P.; Wong, S. Y.; Ding, X.; Xu, K.; Zhao, W.; ..., 2021, Cellular remodeling of fibrotic conduit as vascular graft

PubMed
44 Dou辿, M.; Okwieka, A.; Berquand, A.; Gorisse, L.; ..., 2021, Carbamylation of elastic fibers is a molecular substratum of aortic stiffness

PubMed
45 Shapiro, K. K.; Knight, K. M.; Liang, R.; Cook, J.; ..., 2021, Comparison of 2 single incision slings on the vagina in an ovine model

PubMed
46 Li, B.; Jing, H.; Sun, Z.; Wang, X.; Kong, D.; Liu, J.; ..., 2021, Comprehensive analyses and prioritization of various swim bladder-derived extracellular matrix in the application of heart valve prosthesis

PubMed
47 Jeong, W.; Kim, M. K.; Kang, H. W., 2021, Effect of detergent type on the performance of liver decellularized extracellular matrix-based bio-inks

PubMed
48 Damanik, F. F. R.; Verkoelen, N.; Blitterswijk, C. van; ..., 2021, Control delivery of multiple growth factors to actively steer differentiation and extracellular matrix protein production

PubMed
49 Ristaniemi, A.; Torniainen, J.; Paakkonen, T.; Stenroth, L.; ..., 2021, Biomechanical, biochemical, and near infrared spectral data of bovine knee ligaments and patellar tendon

PubMed
50 Dabaghi, M.; Saraei, N.; Carpio, M. B.; Nanduri, V.; ..., 2021, A robust protocol for decellularized human lung bioink generation amenable to 2D and 3D lung cell culture

PubMed
51 Almeida-Gonz叩lez, F. R.; Gonz叩lez-V叩zquez, A.; ..., 2021, A step closer to elastogenesis on demand; Inducing mature elastic fibre deposition in a natural biomaterial scaffold

PubMed
52 Godinho, M. S.; Thorpe, C. T.; Greenwald, S. E.; Screen, H. R. C., 2021, Elastase treatment of tendon specifically impacts the mechanical properties of the interfascicular matrix

PubMed
53 Kwon, T. R.; Moon, D. W.; Kim, J.; Kim, H. J.; Lee, S. J.; ..., 2021, Application of 630-nm and 850-nm light-emitting diodes and microcurrent to accelerate collagen and elastin deposition in porcine skin

PubMed
54 Chen, C. W.; Wang, Y., 2022, Compositions comprising extracellular matrix of primitive animal species and related methods

PubMed
55 Chen, C. W.; Wang, Y., 2022, Compositions Comprising Extracellular Matrix of Primitive Animal Species and Related Methods

PubMed
56 Lima, EC de; Bezerra, T. F.; ..., 2022, Cosmetic composition and its use, dermocosmetic formulation

PubMed
57 Gehret, P.; Ghavimi, SA Akbari; Dumas, A.; Borek, R. C.; ..., 2022, A Translational Tissue Engineering Approach to Airway Reconstruction Leveraging Decellularized Meniscus and Cartilage Progenitor Cells

PubMed
58 Kim, J. Y.; Lee, H.; Jin, E. J.; Jo, Y.; Kang, B. E.; Ryu, D.; Kim, G. H., 2022, A microfluidic device to fabricate one‐step cell bead‐laden hydrogel struts for tissue engineering

PubMed
59 Rohringer, S.; Schneider, K. H.; Eder, G.; Hager, P.; ..., 2022, Chorion-derived extracellular matrix hydrogel and fibronectin surface coatings show similar beneficial effects on endothelialization of expanded …

PubMed
60 Lee, Y. C.; Richards, T. D.; Fantini, D. A.; Kaczorowski, D. J.; ..., 2022, Ascending and Descending Aortic ECM Hydrogels for Modeling Aortic Wall Biology

PubMed
61 Ramakrishnan, R.; Venkiteswaran, K. K.; ..., 2022, Assembly of skin substitute by cross-linking natural biomaterials on synthetic biodegradable porous mat for critical-size full-thickness burn wound regeneration

PubMed
62 Zhu, J.; Wang, Y.; Rivett, A.; Li, H.; Wu, L.; Wang, R.; ..., 2022, Deficiency of cystathionine gamma-lyase promotes aortic elastolysis and medial degeneration in aged mice

PubMed
63 Todesco, M.; Imran, S. J.; Fortunato, T. M.; Sandrin, D.; ..., 2022, A new detergent for the effective decellularization of bovine and porcine pericardia

PubMed
64 Mudigonda, J.; Xu, D.; Amedi, A.; Lane, B. A.; ..., 2022, A biohybrid material with extracellular matrix Core and polymeric coating as a cell honing cardiovascular tissue substitute

PubMed
65 Ergun, C.; Parmaksiz, M.; Vurat, M. T.; El巽in, A. E.; ..., 2022, Decellularized liver ECM-based 3D scaffolds: compositional, physical, chemical, rheological, thermal, mechanical, and in vitro biological evaluations

PubMed
66 Faggioli, M.; Moro, A.; Butt, S.; Todesco, M.; Sandrin, D.; ..., 2022, A new decellularization protocol of porcine aortic valves using tergitol to characterize the scaffold with the biocompatibility profile using human bone marrow …

PubMed
67 Verhorstert, K.; Gudde, A.; Weitsz, C.; ..., 2022, Absorbable electrospun poly-4-hydroxybutyrate scaffolds as a potential solution for pelvic organ prolapse surgery

PubMed
68 Vu, D. M.; Nguyen, V. T.; Nguyen, T. H.; Do, P. T. X.; Dao, H. H.; ..., 2022, Effects of extracellular vesicles secreted by TGFβ-stimulated umbilical cord mesenchymal stem cells on skin fibroblasts by promoting fibroblast migration and …

PubMed
69 Huang, Z.; Zhang, Y.; Liu, R.; Li, Y.; Rafique, M.; Midgley, A. C.; ..., 2022, Cobalt loaded electrospun poly (竜-caprolactone) grafts promote antibacterial activity and vascular regeneration in a diabetic rat model

PubMed
70 Kim, H.; Choi, K. H.; Sung, S. C.; Kim, Y. S., 2022, Effect of ethanol washing on porcine pulmonary artery wall decellularization using sodium dodecyl sulfate

PubMed
71 Giang, N. N.; Trinh, X. T.; Han, J.; Chien, P. N.; ..., 2022, Effective decellularization of human skin tissue for regenerative medicine by supercritical carbon dioxide technique

PubMed
72 Nesbitt, D. Q., 2023, Effect of Age on the Mechanical Behavior and Molecular Structure of Human Meniscus: An Experimental and Computational Analysis

PubMed
73 Jaiswal, A.; Rehman, R.; Dutta, J.; Singh, S.; Ray, A.; ..., 2023, Cellular Distribution of Secreted Phospholipase A2 in Lungs of IPF Patients and Its Inhibition in Bleomycin-Induced Pulmonary Fibrosis in Mice

PubMed
74 Kim, W. J.; Kim, G. H., 2023, Bioprinting 3D muscle tissue supplemented with endothelial-spheroids for neuromuscular junction model

PubMed
75 Wang, D.; Charoensombut, N.; Kawabata, K.; Kimura, T.; ..., 2023, Effect of pressure conditions in uterine decellularization using hydrostatic pressure on structural protein preservation

PubMed
76 Costa, E.; Thrasivoulou, C.; Becker, D. L.; ..., 2023, Cx43 regulates mechanotransduction mechanisms in human preterm amniotic membrane defects

PubMed
77 Cuevas, R. A.; Wong, R.; Joolharzadeh, P.; ..., 2023, Ecto-5′-nucleotidase (Nt5e/CD73)-mediated adenosine signaling attenuates TGFβ-2 induced elastin and cellular contraction

PubMed
78 Carvalho, M. J.; Pedrosa, S. S.; Mendes, A.; ..., 2023, Anti-Aging Potential of a Novel Ingredient Derived from Sugarcane Straw Extract (SSE)

PubMed
79 Du, H.; Zhang, W.; Shi, Y.; Sun, W.; Liu, G.; Liu, H., 2023, Decellularized extracellular matrix tissues from human gastric cancer tissues as a three-dimensional model for cancer cell growth and drug treatments

PubMed
80 Ahmed, K.; Rodboon, T.; Oo, Y.; Phan, T.; ..., 2023, Biofabrication, biochemical profiling, and in vitro applications of salivary gland decellularized matrices via magnetic bioassembly platforms

PubMed
81 Zulkiflee, I.; Amirrah, I. N.; Fadilah, N. I. M.; Wee, MFMR; ..., 2023, Characterization of Dual-Layer Hybrid Biomatrix for Future Use in Cutaneous Wound Healing

PubMed
82 Siquier-Dameto, G.; Boisnic, S.; Boadas-Vaello, P.; ..., 2023, Anti-Aging and Depigmentation Effect of a Hyaluronic Acid Mechanically Stabilized Complex on Human Skin Explants

PubMed
83 Oganesyan, R. V.; Lellouch, A. G.; Acun, A.; ..., 2023, Acellular nipple scaffold development, characterization, and preliminary biocompatibility assessment in a swine model

PubMed
84 Cheng, Q.; Zhang, L.; Zhang, J.; Zhou, X.; ..., 2023, Decellularized Scaffolds with Double‐Layer Aligned Microchannels Induce the Oriented Growth of Bladder Smooth Muscle Cells: Toward Urethral and Ureteral …

PubMed
85 Jianying, M. A. O.; Wenjing, Y.; He, G. U. O.; Ruili, D.; ..., 2023, A cervical cancer tissue-derived decellularized extracellular matrix scaffold for cervical cancer tissue reconstruction in vitro

PubMed
86 Charoensiddhi, S.; Methacanon, P.; Su, P.; Zhang, W., 2023, Anti-skin glycation and collagen level stimulation of brown seaweed extracts and their compositional characteristics

PubMed
87 Castells-Sala, C.; P辿rez, M. L.; L坦pez-Chic坦n, P.; ..., 2023, Development of a full-thickness acellular dermal graft from human skin: Case report of first patient rotator cuff patch augmentation repair

PubMed
88 Kuナ殪ト殕u, A.; Yangトアn, K.; テ奔kan, S. N.; ..., 2023, Different decellularization methods in bovine lung tissue reveals distinct biochemical composition, stiffness, and viscoelasticity in reconstituted hydrogels

PubMed
89 Godefroy, W.; Faivre, L.; Sansac, C.; Thierry, B.; Allain, J. M.; ..., 2023, Development and qualification of clinical grade decellularized and cryopreserved human esophagi

PubMed
90 Kim, D.; Kim, G. H., 2023, Bioprinted hASC-laden cell constructs with mechanically stable and cell alignment cue for tenogenic differentiation

PubMed
91 Fern叩ndez-Carro, E.; Garcia-Barrios, A.; ..., 2023, Decellularized human dermal extracellular matrix-derived scaffolds: compositional, mechanical, and in vitro biological characterizations

PubMed
92 Liu, X.; Deng, Y.; Li, F.; Zhao, D.; Yang, Y.; Huang, T.; ..., 2023, Effect of elastin degradation of patellar tendon on the quasi-static tensile mechanical properties

PubMed
93 Hou, J.; Jie, J.; Wei, X.; Shen, X.; Zhao, Q.; Chai, X.; Pang, H.; ..., 2024, A Core-Shell-Type Nanosystem Promotes Diabetic Wound Healing Through Photothermal-Responsive Release of Transforming Growth Factor 硫

PubMed
94 Duckworth, C.; Stutts, J.; Clatterbuck, K.; ..., 2023, Effect of ellagic acid and retinoic acid on collagen and elastin production by human dermal fibroblasts

PubMed
95 Jo, S. Y.; Lee, H.; Jo, Y.; Jin, E. J.; Kim, D.; Ryu, D.; ..., 2024, Bioengineered cell-constructs using decellularized fish skin-based composite bioink for regenerating muscle tissue

PubMed
96 Wang, Y.; Xue, F.; Cheng, W.; Zhao, Q.; Song, N.; ..., 2024, Design and Synthesis of Novel Ultralong-Acting Peptides as EDP-EBP Interaction Inhibitors for Pulmonary Fibrosis Treatment

PubMed
97 Velthoven, MJJ van; Gudde, A. N.; ..., 2024, An improved understanding of the pathophysiology of pelvic organ prolapse: a 3d in vitro model under static and mechanical loading conditions

PubMed
98 Nesbitt, D. Q.; Pu, X.; Turner, M. W.; Zavala, A. G.; ..., 2024, Age‐dependent changes in collagen crosslinks reduce the mechanical toughness of human meniscus

PubMed
99 Ishizaki, Y.; Wang, J.; Kim, J.; Matsumoto, T.; Maeda, E., 2024, Contributions of collagen and elastin to elastic behaviours of tendon fascicle

PubMed
100 Kheradvar, A.; Zareian, R., 2020, Methods for development of hybrid tissue engineered valve with polyurethane core

PubMed
101 Torniainen, J., 2020, Near infrared spectroscopy-based evaluation of patellar tendon and knee ligaments

PubMed
102 O'neill, J.; Vunjak-Novakovic, G., 2020, Regionally specific tissue-derived extracellular matrix

PubMed
103 Ristaniemi, A., 2020, Structure and function of knee ligaments and patellar tendon: biomechanics, biochemistry and computational modeling

PubMed
104 Maghin, E., 2020, Study of extracellular matrix in healthy and pathological condition

PubMed
105 Ramakrishnan, R.; Sreelatha, H. V.; Anil, A.; ..., 2020, Human-derived scaffold components and stem cells creating immunocompatible dermal tissue ensuing regulated nonfibrotic cellular phenotypes

PubMed
106 Zhang, X.; Simmons, C. A.; Santerre, J. P., 2020, Paracrine signalling from monocytes enables desirable extracellular matrix accumulation and temporally appropriate phenotype of vascular smooth muscle cell-like …

PubMed
107 Meran, L.; Massie, I.; Campinoti, S.; Weston, A. E.; ..., 2020, Engineering transplantable jejunal mucosal grafts using patient-derived organoids from children with intestinal failure

PubMed
108 Hwangbo, H.; Kim, W. J.; Kim, G. H., 2020, Lotus-root-like microchanneled collagen scaffold

PubMed
109 Everwien, H.; Schellenberger, AA de; Haep, N.; ..., 2020, Magnetic resonance elastography quantification of the solid-to-fluid transition of liver tissue due to decellularization

PubMed
110 Zamboulis, D. E.; Thorpe, C. T.; Kharaz, Y. Ashraf; Birch, H. L.; ..., 2020, Postnatal mechanical loading drives adaptation of tissues primarily through modulation of the non-collagenous matrix

PubMed
111 Woods, I.; Black, A.; Molloy, E. J.; ..., 2020, Fabrication of blood‐derived elastogenic vascular grafts using electrospun fibrinogen and polycaprolactone composite scaffolds for paediatric applications

PubMed
112 Curciarello, R.; Sobande, T.; Jones, S.; ..., 2020, Human neutrophil elastase proteolytic activity in ulcerative colitis favors the loss of function of therapeutic monoclonal antibodies

PubMed
113 Fu, J.; Ding, X.; Stowell, C. E. T.; Wu, Y. L.; Wang, Y., 2020, Slow degrading poly (glycerol sebacate) derivatives improve vascular graft remodeling in a rat carotid artery interposition model

PubMed
114 Ajit, A.; Ramakrishnan, R.; Retnabai, S. T.; ..., 2020, Generation of niche tuned antifibrotic fibroblasts and non‐viral mediated endothelial commitment using adipose stem cells for dermal graft development

PubMed
115 Qin, K.; Wang, F.; Simpson, R. M. L.; Zheng, X.; Wang, H.; Hu, Y.; ..., 2020, Hyaluronan promotes the regeneration of vascular smooth muscle with potent contractile function in rapidly biodegradable vascular grafts

PubMed
116 Nayakawde, N. B.; Methe, K.; Banerjee, D.; ..., 2020, In Vitro Regeneration of Decellularized Pig Esophagus Using Human Amniotic Stem Cells

PubMed
117 Lee, S. J.; Lee, J. H.; Park, J.; Kim, W. D.; Park, S. A., 2020, Fabrication of 3D printing scaffold with porcine skin decellularized bio-ink for soft tissue engineering

PubMed
118 Liu, J.; Li, B.; Jing, H.; Wu, Y.; Kong, D.; ..., 2020, Swim bladder as a novel biomaterial for cardiovascular materials with anti‐calcification properties

PubMed
119 Capella-Monson鱈s, H.; Tilbury, M. A.; Wall, J. G.; ..., 2020, Porcine mesothelium matrix as a biomaterial for wound healing applications

PubMed
120 Rotmans, J. I.; Rothuizen, T. C.; Moroni, L.; ..., 2021, In situ tissue engineering

PubMed
121 Ogen‐Shtern, N.; Chumin, K.; Cohen, G.; ..., 2020, Increased pro‐collagen 1, elastin, and TGF‐β1 expression by copper ions in an ex‐vivo human skin model

PubMed
122 Ayoub, S.; Howsmon, D. P.; Lee, C. H.; Sacks, M. S., 2021, On the role of predicted in vivo mitral valve interstitial cell deformation on its biosynthetic behavior

PubMed
123 Hariri, R. J.; Bhatia, M., 2021, Extracellular matrix composition beads for cell culture

PubMed
124 Alshaikh, A. B., 2021, Principles of scaffold generation for bioengineering of the ovary and uterus: a study focusing on decellularization

PubMed
125 Gaillard, E.; Perichet, C.; Humbert, M.; ..., 2021, Extracts of plants containing polygodial, compositions comprising such extracts and cosmetic and/or dermatological uses thereof

PubMed
126 Lee, H.; Kim, W. J.; Lee, J. U.; Park, K. S.; Yoo, J. J.; ..., 2021, Self-aligned myofibers in 3D bioprinted extracellular matrix-based construct accelerate skeletal muscle function restoration

PubMed
127 Jeannerat, A.; Peneveyre, C.; Armand, F.; Chiappe, D.; ..., 2021, Hypoxic incubation conditions for optimized manufacture of tenocyte-based active pharmaceutical ingredients of homologous standardized transplant …

PubMed
128 Murata, K.; Oyama, M.; Ogata, M.; Fujita, N.; ..., 2021, Oral administration of Jumihaidokuto inhibits UVB-induced skin damage and prostaglandin E2 production in HR-1 hairless mice

PubMed
129 Neidlinger-Wilke, C.; Ekkerlein, A.; ..., 2021, Mesenchymal stem cell secretome decreases the inflammatory response in annulus fibrosus organ cultures

PubMed
130 Yeo, M.; Kim, G. H., 2021, Electrohydrodynamic-direct-printed cell-laden microfibrous structure using alginate-based bioink for effective myotube formation

PubMed
131 Patel, D.; Zamboulis, D. E.; Spiesz, E. M.; Birch, H. L.; ..., 2021, Structure-function specialisation of the interfascicular matrix in the human achilles tendon

PubMed
132 Jana, S.; Morse, D.; Lerman, A., 2021, Leaflet tissue generation from microfibrous heart valve leaflet scaffolds with native characteristics

PubMed
133 Ristaniemi, A.; Regmi, D.; Mondal, D.; ..., 2021, Structure, composition and fibril-reinforced poroviscoelastic properties of bovine knee ligaments and patellar tendon

PubMed
134 Li, W.; Bai, Y.; Cao, J.; Gao, S.; Xu, P.; Feng, G.; Wang, L.; ..., 2021, Highly interconnected inverse opal extracellular matrix scaffolds enhance stem cell therapy in limb ischemia

PubMed
135 Zerbinati, N.; Sommatis, S.; Maccario, C.; Capillo, M. C.; ..., 2021, Evaluation of anti-photoaging effects of a novel cosmeceutical containing a retinoids mixture using in vitro cell models

PubMed
136 Minami, A.; Fujita, Y.; Goto, J.; Iuchi, A.; Fujita, K.; Mikami, Y.; ..., 2021, Enhancement of elastin expression by transdermal administration of sialidase isozyme Neu2

PubMed
137 Lin, C. H.; Hsia, K.; Su, C. K.; Chen, C. C.; Yeh, C. C.; Ma, H.; Lu, J. H., 2021, Sonication-assisted method for decellularization of human umbilical artery for small-caliber vascular tissue engineering

PubMed
138 Gonzalez, A.; Lee, M. R.; Johnson, B. A.; Booshehri, L.; ..., 2021, Safety and efficacy of a new vaginal gel, Feminilove, for the treatment of symptoms associated with vaginal dryness and vulvovaginal atrophy in women: An in vitro …

PubMed
139 Parasaram, V.; Wang, X.; Krisanarungson, P.; ..., 2021, Targeted delivery of pentagalloyl glucose inhibits matrix metalloproteinase activity and preserves elastin in emphysematous lungs

PubMed
140 P辿rez, M. L.; Castells-Sala, C.; L坦pez-Chic坦n, P.; ..., 2021, Fast protocol for the processing of split-thickness skin into decellularized human dermal matrix

PubMed
141 Chowdhury, A.; Nosoudi, N.; Karamched, S.; ..., 2021, Polyphenol treatments increase elastin and collagen deposition by human dermal fibroblasts; Implications to improve skin health

PubMed
142 Bhatia, M. B.; Lugo, C.; Ye, Q.; Edinger, J. W., 2022, Human placental collagen compositions and methods of making and using the same

PubMed
143 Coppi, P. De; Elvassore, N.; Giobbe, G. G.; ..., 2022, Extracellular Matrix Gels, and Organoid Cultures Comprising the Same

PubMed
144 Huang, Z.; Wang, X.; Ryzhuk, V.; Gao, W., 2022, Preparation and use of tissue matrix derived powder

PubMed
145 Ellis, M. W. A., 2022, Extracellular Elastin Assembly and Vascular Hyperproliferation: Connections for Treatment and Tissue Engineering

PubMed
146 Zambaiti, E., 2022, Organoidi gastrointestinali pediatrici e fetali: modello di cultura tridimensionale in vitro

PubMed
147 Davies, H. A.; Caamano-Gutierrez, E.; ..., 2022, Rapid evaporative ionization mass spectrometry (intelligent knife) for point-of-care testing in acute aortic dissection surgery

PubMed
148 Anitua, E.; Mu単oz, V.; Aspe, L.; Tierno, R.; ..., 2022, In vitro and in vivo effect of platelet-rich plasma-based autologous topical serum on cutaneous wound healing

PubMed
149 Adil, A.; Xu, M.; Haykal, S., 2022, Recellularization of bioengineered scaffolds for vascular composite allotransplantation

PubMed
150 Xiao, W.; Chen, W.; Wang, Y.; Zhang, C.; Zhang, X.; ..., 2022, Recombinant DT硫4-inspired porous 3D vascular graft enhanced antithrombogenicity and recruited circulating CD93+/CD34+ cells for endothelialization

PubMed
151 Li, M.; Zheng, C.; Wu, B.; Ding, K.; Zhang, S.; ..., 2022, Glycidyl methacrylate-crosslinked fish swim bladder as a novel cardiovascular biomaterial with improved antithrombotic and anticalcification properties

PubMed
152 Wendel, H. P.; Keller, T.; Nolte, A.; Avci-Adali, M.; ..., 2022, Stabilized polyribonucleotide coding for an elastic fibrous protein

PubMed
153 Hwangbo, H.; Lee, J. U.; Kim, G. H., 2022, Mechanically and biologically enhanced 3D-printed HA/PLLA/dECM biocomposites for bone tissue engineering

PubMed
154 Girardeau-Hubert, S.; Lynch, B.; Zuttion, F.; Label, R.; ..., 2022, Impact of microstructure on cell behavior and tissue mechanics in collagen and dermal decellularized extra-cellular matrices

PubMed
155 Nguyen, H. T.; Choi, Y. H.; Choi, C. W.; ..., 2022, Enhanced anti‐wrinkle activity of adlay bran fermented with Lactobacillus brevis MJM60390

PubMed
156 Casarin, M.; Fortunato, T. M.; Imran, S.; Todesco, M.; ..., 2022, Porcine Small Intestinal Submucosa (SIS) as a Suitable scaffold for the creation of a tissue-engineered urinary conduit: Decellularization, biomechanical and …

PubMed
157 Matsumura, G.; Isayama, N.; Sato, H., 2022, Evaluation method for cell-free in situ tissue-engineered vasculature monitoring: Proof of growth and development in a canine IVC model

PubMed
158 Fletcher, A. J.; Nash, J.; Syed, M. B. J.; ..., 2022, Microcalcification and thoracic aortopathy: a window into disease severity

PubMed
159 Ramakrishnan, R.; Chouhan, D.; ..., 2022, Silk fibroin-based bioengineered scaffold for enabling hemostasis and skin regeneration of critical-size full-thickness heat-induced burn wounds

PubMed
160 Ramakrishnan, R.; Harikrishnan, V. S.; ..., 2022, Extracellular matrix‐based combination scaffold for guided regeneration of large‐area full‐thickness rabbit burn wounds upon a single application

PubMed
161 Palmosi, T.; Tolomeo, A. M.; Cirillo, C.; Sandrin, D.; ..., 2022, Small intestinal submucosa-derived extracellular matrix as a heterotopic scaffold for cardiovascular applications

PubMed
162 Fukunishi, T.; Lui, C.; Ong, C. S.; Dunn, T.; ..., 2022, Extruded poly (glycerol sebacate) and polyglycolic acid vascular graft forms a neoartery

PubMed
163 Zhi, D.; Cheng, Q.; Midgley, A. C.; Zhang, Q.; Wei, T.; Li, Y.; ..., 2022, Mechanically reinforced biotubes for arterial replacement and arteriovenous grafting inspired by architectural engineering

PubMed
164 Guagliano, G.; Volpini, C.; Sardelli, L.; ..., 2022, Hep3Gel: a shape-shifting extracellular matrix-based, three-dimensional liver model adaptable to different culture systems

PubMed
165 Hermans, L. H. L.; Kelle, MAJ Van; Oomen, P. J. A.; ..., 2022, Scaffold Geometry-Imposed Anisotropic Mechanical Loading Guides the Evolution of the Mechanical State of Engineered Cardiovascular Tissues in vitro

PubMed
166 Gudde, A. N.; Velthoven, MJJ van; Roovers, JPWR; ..., 2022, Polyisocyanides as a substrate to trigger vaginal fibroblast functioning in an in vitro model for prolapse repair

PubMed
167 Damanik, F. F. R.; Rothuizen, C. T.; Lalai, R.; ..., 2022, Long-Term Controlled Growth Factor Release Using Layer-by-Layer Assembly for the Development of In Vivo Tissue-Engineered Blood Vessels

PubMed
168 Lu, X.; Han, L.; Kassab, G. S., 2022, Pulmonary visceral pleura biomaterial: Elastin-and collagen-based extracellular matrix

PubMed
169 Fern叩ndez, E., 2023, Estibaliz Fern叩ndez-Decellularized human dermal extracellular matrix-derived scaffolds: compositional, mechanical, and in vitro biological characterizations

PubMed
170 Breuer, C.; Best, C.; Strouse, R.; Hibino, N.; ..., 2023, Systems and methods for optimized patient specific tissue engineering vascular grafts

PubMed
171 Griffiths, L. G.; Papalamprou, A., 2023, Solubilization of antigen components for removal from tissues

PubMed
172 Tedeschi, A. M., 2023, Mesoangioblast promote regeneration of a stable and organised vasculature in a decellularised intestinal graft

PubMed
173 Hargis, J. G.; Klitzke, K., 2023, Porcine Scaffolds and Methods of Preparation

PubMed
174 Grant, R.; Davis, N. F.; Callanan, A., 2023, Methods in Cell-Stimulated Extracellular Matrix Production in Tissue Engineering

PubMed
175 Huang, S.; Sun, H.; Sun, W., 2023, Physical and chemical properties of porcine dermis matrix affected by process integration for decellularization, viral inactivation and sterilization

PubMed
176 Lin, Y. H.; Wu, P. Y., 2023, Method for improving body shape and improving skin condition using noni fruit ferment

PubMed
177 Hausmanns, S.; Frech, H. U.; Oesser, S.; ..., 2023, Recombinant production of a collagen peptide preparation and use thereof

PubMed
178 Nejad, S. Parvin; Lecce, M.; Mirani, B.; ..., 2023, Serum-and xeno-free culture of human umbilical cord perivascular cells for pediatric heart valve tissue engineering

PubMed
179 Dittfeld, C.; Welzel, C.; Kテカnig, U.; Jannasch, A.; ..., 2023, Hemocompatibility tuning of an innovative glutaraldehyde-free preparation strategy using riboflavin/UV crosslinking and electron irradiation of bovine pericardium for 窶ヲ

PubMed
180 Wang, Z.; Spitz, R.; Vezina, C.; Hou, J.; ..., 2023, Lack of expression of miR-29a/b1 impairs bladder function in male mice

PubMed
181 Lin, Y. H.; Lai, M., 2023, Method for improving skin condition with redlove apples extract

PubMed
182 Tommasini, F.; Benoist, T.; Shibuya, S.; Woodall, M. N. J.; ..., 2023, Lung viral infection modelling in a bioengineered whole-organ

PubMed
183 Skornia, A.; Geerling, G.; Spaniol, K.; Witt, J., 2023, Influence of storage conditions on decellularized porcine conjunctiva

PubMed
184 Costa, E. M.; Oliveira, A. S.; Silva, S.; Ribeiro, A. B.; ..., 2023, Spent yeast waste streams as a sustainable source of bioactive peptides for skin applications

PubMed
185 Song, N.; Xu, H.; Wu, S.; Luo, S.; Xu, J.; Zhao, Q.; ..., 2023, Synergistic activation of AMPK by AdipoR1/2 agonist and inhibitor of EDPs窶摘BP interaction recover NAFLD through enhancing mitochondrial function in mice

PubMed
186 Guzman, RC de; Meer, A. S.; Mathews, A. A.; ..., 2023, Reduced fibrous capsule elastic fibers from biologic ECM-enveloped CIEDs in minipigs, supported with a novel compression mechanics model

PubMed
187 Schneider, K. H.; Goldberg, B. J.; Hasturk, O.; Mu, X.; ..., 2023, Silk fibroin, gelatin, and human placenta extracellular matrix-based composite hydrogels for 3D bioprinting and soft tissue engineering

PubMed
188 Zhang, W.; Lu, W.; Sun, K.; Jiang, H., 2023, Genetically engineered chondrocytes overexpressing elastin improve cell retention and chondrogenesis in a three‐dimensional GelMA culture system

PubMed
189 Arin, A.; Rahaman, M. S.; Farwa, U.; ..., 2023, Faster and protective wound healing mechanistic of para‐coumaric acid loaded liver ECM scaffold cross‐linked with acellular marine kelp

PubMed
190 Shigeta, Y.; Saleh, T.; Benedetti, G.; Caciolli, L.; ..., 2023, Stomach engineering: region-specific characterization of the decellularized porcine stomach

PubMed
191 Shin, E.; Kim, J. U.; Ko, J.; Koh, R. H.; Kim, J.; ..., 2023, Enhanced Anti‐Photoaging Effects of Adipose‐Derived Stem Cell (ADSC) Secretome via Liposomal and Iontophoretic Intradermal Delivery

PubMed
192 Minami, A.; Suzuki, T.; Iwao, Y., 2023, Elastin production promoter and cosmetic preparation for skin

PubMed
193 Velthoven, MJJ van; Gudde, A. N.; ..., 2023, Growth Factor Immobilization to Synthetic Hydrogels: Bioactive bFGF‐Functionalized Polyisocyanide Hydrogels

PubMed
194 Sakai, T.; Sodemoto, N.; Inoue, A.; ..., 2023, Suitability of high‐molecular‐weight tissue‐derived elastin polypeptides and their particles as cosmetic biomaterials

PubMed
195 Fernandez-Carro, E.; Remacha, A. R.; Orera, I.; ..., 2024, Human Dermal Decellularized ECM Hydrogels as Scaffolds for 3D In Vitro Skin Aging Models

PubMed
196 Kim, W. J.; Kim, G. H., 2024, Engineered 3D liver-tissue model with minispheroids formed by a bioprinting process supported with in situ electrical stimulation

PubMed
197 Gerecht, S.; Yarbrough, D.; Hall, F., 2024, Engineered vascular tissue models

PubMed
198 Sun, X.; Xiao, T.; Qin, J.; Song, Y.; Lu, K.; Ding, R.; Sh, W.; ..., 2024, Mechanism of circRNA_SMG6 mediating lung macrophage ECM degradation via miR-570-3p in microplastics-induced emphysema

PubMed
199 Higuita, M. L., 2020, Xenogeneic Small Diameter Vein Extracellular Matrix Scaffolds for Use in Vascular Diseases

PubMed
200 Chung, Y. M.; Lee, S. Y.; Lin, Y. K.; Lin, Y. H.; ..., 2020, The high potential of a red-light submerged fermentation technique in the biofunctionality improvement of rambutan extracts

PubMed
201 Tiemann, T. T.; Padma, A. M.; Sehic, E.; ..., 2020, Towards uterus tissue engineering: a comparative study of sheep uterus decellularisation

PubMed
202 Fu, J.; Wang, M.; Vlaminck, I. De; Wang, Y., 2020, Thick pcl fibers improving host remodeling of pgs‐pcl composite grafts implanted in rat common carotid arteries

PubMed
203 Hui, J.; Sharma, S.; Rajani, S.; Singh, A., 2020, The Specific Molecular Composition and Structural Arrangement of Eleutherodactylus Coqui Gular Skin Tissue Provide Its High Mechanical Compliance

PubMed
204 Laker, L.; Dohmen, P. M.; Smit, F. E., 2020, The sequential effects of a multifactorial detergent based decellularization process on bovine pericardium

PubMed
205 Griffin, K. J.; Simpson, K. R.; Beckers, C. M. L.; Newell, L. M.; ..., 2021, Transglutaminase 2 moderates the expansion of mouse abdominal aortic aneurysms

PubMed
206 Song, M.; Tang, Z.; Liu, Y.; Xie, X.; Qi, X.; Wu, Q.; ..., 2021, Yak pericardium as an alternative biomaterial for transcatheter heart valves

PubMed
207 Cathery, W.; Faulkner, A.; Jover, E.; ..., 2021, Umbilical cord pericytes provide a viable alternative to mesenchymal stem cells for neonatal vascular engineering

PubMed
208 Brady, L.; Pai, S.; Iaquinto, J. M.; Wang, Y. N.; ..., 2021, The compressive, shear, biochemical, and histological characteristics of diabetic and non-diabetic plantar skin are minimally different

PubMed
209 Galicka, A.; Sutkowska-Skolimowska, J., 2021, The beneficial effect of rosmarinic acid on benzophenone-3-induced alterations in human skin fibroblasts

PubMed
210 Kim, S. N.; Lee, C. J.; Nam, J. H.; Choi, B.; ..., 2021, The effects of human bone marrow-derived mesenchymal stem cell conditioned media produced with fetal bovine serum or human platelet lysate on skin …

PubMed
211 Badylak, S. F.; Fercana, G. R.; Gleason, T. G.; ..., 2022, Vascular extracellular matrix hydrogel

PubMed
212 Badylak, S. F.; Phillippi, J. A.; Gleason, T. G.; ..., 2022, Vascular Extracellular Matrix Hydrogel

PubMed
213 Saunders, S., 2022, Towards the Systematic Evaluation of Variable Modes of Mechanical Conditioning on the Compositional, Microstructural and Mechanical Properties of Engineered …

PubMed
214 Panpho, P.; Yang, Y.; Davies, H. A.; ..., 2022, Time-dependent mechanical behaviour of the aortic chronic dissection flap

PubMed
215 Xie, X.; Wu, Q.; Liu, Y.; Chen, C.; Chen, Z.; Xie, C.; ..., 2022, Vascular endothelial growth factor attenuates neointimal hyperplasia of decellularized small-diameter vascular grafts by modulating the local inflammatory …

PubMed
216 Yoon, J.; Yoon, D.; Lee, H.; Lee, J. U.; Jo, S. Y.; Kym, D.; ..., 2022, Wound healing ability of acellular fish skin and bovine collagen grafts for split-thickness donor sites in burn patients: Characterization of acellular grafts and clinical …

PubMed
217 Calle, E.; Niklason, L. E.; Petersen, T.; Gui, L., 2023, Tissue engineering of lung

PubMed
218 Calle, E.; Niklason, L. E.; Petersen, T.; ..., 2023, Tissue engineering of lung

PubMed
219 Ahn, J.; Sen, T.; Lee, D.; Kim, H.; Lee, J. Y.; ..., 2023, Uterus‐Derived Decellularized Extracellular Matrix‐Mediated Endometrial Regeneration and Fertility Enhancement

PubMed
220 Dua, H. S.; Freitas, R.; Mohammed, I.; Ting, D. S. J.; ..., 2023, The pre-Descemet's layer (Dua's layer, also known as the Dua-Fine layer and the pre-posterior limiting lamina layer): Discovery, characterisation, clinical and …

PubMed
221 Lee, H.; Chun, W.; Kim, G. H., 2023, Three-dimensional artificial skin construct bioprinted with a marine-based biocomposite

PubMed
222 Brown, M.; Zhu, S.; Taylor, L.; Tabrizian, M.; ..., 2023, Unraveling the Relevance of Tissue‐Specific Decellularized Extracellular Matrix Hydrogels for Vocal Fold Regenerative Biomaterials: A Comprehensive Proteomic …

PubMed
223 Tondato, S.; Moro, A.; Butt, S.; Todesco, M.; Sandrin, D.; ..., 2023, Tergitol Based Decellularization Protocol Improves the Prerequisites for Pulmonary Xenografts: Characterization and Biocompatibility Assessment. Polymers …

PubMed
224 Liu, J.; Feng, Z.; Liu, P.; Fang, L.; Wang, X.; Lao, H.; ..., 2023, Transcriptome Analysis of Human Vascular Smooth Muscle Cells Cultured on a Polyglycolic Acid Mesh Scaffold

PubMed
225 Tondato, S.; Moro, A.; Butt, S.; Todesco, M.; Sandrin, D.; ..., 2023, Tergitol Based Decellularization Protocol Improves the Prerequisites for Pulmonary Xenografts: Characterization and Biocompatibility Assessment

PubMed
226 Maetzold, E. C.; Santillan, D. A.; Kenne, K. A.; ..., 2023, Urinary biomarkers and overactive bladder symptoms before and after prolapse surgery

PubMed
227 Zhang, W.; Lu, W.; Yu, Q.; Liu, X.; Jiang, H., 2023, Upregulated desmin/integrin 硫1/MAPK axis promotes elastic cartilage regeneration with increased ECM mechanical strength

PubMed
228 Lee, C. R.; Lee, Y. J.; Kwon, B. Y.; Lee, S. J.; Ryu, Y. H.; ..., 2023, Vessel-derived decellularized extracellular matrices (VdECM): novel bio-engineered materials for the Wound Healing

PubMed
229 Capella-Monson鱈s, H.; Cramer, M.; Turner, N.; ..., 2023, The composition and mechanical properties of porcine placental ecm from three different breeds

PubMed
230 Do, N. T.; Lee, S. Y.; Lee, Y. S.; Lee, T. G.; Son, J. G.; Kim, S. H., 2023, Time-sequential fibroblast-to-myofibroblast transition in elastin-variable 3D hydrogel environments mediated by calcium signaling

PubMed
231 Do, N. T.; Lee, S. Y.; Lee, Y. S.; Shin, C. H.; Kim, D.; ..., 2023, Time-sequential fibroblast-to-myofibroblast transition in elastin-variable 3D hydrogel environments by collagen networks

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  • No.: 1
  • 文献情報:
    Cramer, C., 2020, Charakterisierung der biomechanischen Eigenschaften und extrazellulテ、ren Matrix bei BAV-assoziierten Aortopathien

  • 備考:
  • 参照:
    PubMed
  • No.: 2
  • 文献情報:
    Mohiuddin, O. A., 2020, Characterization of Decellularized Adipose Tissue Hydrogel and Analysis of Its Regenerative Potential in Mouse Femoral Defect Model

  • 備考:
  • 参照:
    PubMed
  • No.: 3
  • 文献情報:
    Wang, Y., 2020, Biodegradable vascular grafts

  • 備考:
  • 参照:
    PubMed
  • No.: 4
  • 文献情報:
    Sun, W., 2020, Elastase treatment of tissue matrices

  • 備考:
  • 参照:
    PubMed
  • No.: 5
  • 文献情報:
    Rashmi, R., 2020, Bioengineered skin grafts for chronic wounds using 3-dimensional hybrid scaffolds made up of silk fibroin, fibrin composite and amnion

  • 備考:
  • 参照:
    PubMed
  • No.: 6
  • 文献情報:
    Higuita, M. L.; Griffiths, L., 2020, Effect of extracellular matrix scaffold generation method on function of small diameter venous valved conduits

  • 備考:
  • 参照:
    PubMed
  • No.: 7
  • 文献情報:
    Lee, J.; Hong, J.; Kim, W. J.; Kim, G. H., 2020, Bone-derived dECM/alginate bioink for fabricating a 3D cell-laden mesh structure for bone tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 8
  • 文献情報:
    Higuita, M. L.; Griffiths, L. G., 2020, Antigen removal process preserves function of small diameter venous valved conduits, whereas SDS-decellularization results in significant valvular insufficiency

  • 備考:
  • 参照:
    PubMed
  • No.: 9
  • 文献情報:
    Sumitran-Holgersson, S.; Rosales, A.; ..., 2020, Bioengineered allogeneic valve

  • 備考:
  • 参照:
    PubMed
  • No.: 10
  • 文献情報:
    Zhao, C.; Li, Y.; Peng, G.; Lei, X.; Zhang, G.; ..., 2020, Decellularized liver matrix-modified chitosan fibrous scaffold as a substrate for C3A hepatocyte culture

  • 備考:
  • 参照:
    PubMed
  • No.: 11
  • 文献情報:
    Bengtsson, E.; Hultman, K.; Edsfeldt, A.; Persson, A.; ..., 2020, CD163+ macrophages are associated with a vulnerable plaque phenotype in human carotid plaques

  • 備考:
  • 参照:
    PubMed
  • No.: 12
  • 文献情報:
    Thottappillil, N.; Nair, P. D., 2020, Dual source co-electrospun tubular scaffold generated from gelatin-vinyl acetate and poly-ɛ-caprolactone for smooth muscle cell mediated blood vessel engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 13
  • 文献情報:
    Zouhair, S.; Sasso, E. Dal; Tuladhar, S. R.; Fidalgo, C.; ..., 2020, A comprehensive comparison of bovine and porcine decellularized pericardia: new insights for surgical applications

  • 備考:
  • 参照:
    PubMed
  • No.: 14
  • 文献情報:
    Coppi, P. De; Urbani, L.; Pinzani, M.; Mazza, G.; ..., 2020, Cryopreservation

  • 備考:
  • 参照:
    PubMed
  • No.: 15
  • 文献情報:
    Liang, C. C.; Shaw, S. W. S.; Ko, Y. S.; Huang, Y. H.; Lee, T. H., 2020, Effect of amniotic fluid stem cell transplantation on the recovery of bladder dysfunction in spinal cord-injured rats

  • 備考:
  • 参照:
    PubMed
  • No.: 16
  • 文献情報:
    Saleh, T.; Ahmed, E.; Yu, L.; Song, S. H.; ..., 2020, Conjugating homogenized liver‐extracellular matrix into decellularized hepatic scaffold for liver tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 17
  • 文献情報:
    Belviso, I.; Romano, V.; Sacco, A. M.; Ricci, G.; ..., 2020, Decellularized human dermal matrix as a biological scaffold for cardiac repair and regeneration

  • 備考:
  • 参照:
    PubMed
  • No.: 18
  • 文献情報:
    Luo, Y.; Ma, L., 2020, Bioprosthetic heart valves with reduced immunogenic residuals using vacuum-assisted decellularization treatment

  • 備考:
  • 参照:
    PubMed
  • No.: 19
  • 文献情報:
    Tong, J.; Xin, Y. F.; Xu, X.; Yang, F.; Zhang, Z., 2020, Effect of diabetes mellitus on the dissection properties of the rabbit descending thoracic aortas

  • 備考:
  • 参照:
    PubMed
  • No.: 20
  • 文献情報:
    Mony, M. P.; Anilkumar, T. V., 2020, Controlled cross‐linking of porcine cholecyst extracellular matrix for preparing tissue engineering scaffold

  • 備考:
  • 参照:
    PubMed
  • No.: 21
  • 文献情報:
    Wu, Q.; Cheng, Z.; Zhou, Y.; Zhao, Y.; Li, J.; Zhou, X.; ..., 2020, A novel STAT3 inhibitor attenuates angiotensin II-induced abdominal aortic aneurysm progression in mice through modulating vascular inflammation and …

  • 備考:
  • 参照:
    PubMed
  • No.: 22
  • 文献情報:
    Pedroza, A. J.; Koyano, T.; Trojan, J.; Rubin, A.; ..., 2020, Divergent effects of canonical and non‐canonical TGF‐β signalling on mixed contractile‐synthetic smooth muscle cell phenotype in human Marfan syndrome aortic …

  • 備考:
  • 参照:
    PubMed
  • No.: 23
  • 文献情報:
    Li, T.; Fu, F.; Wu, C.; Qin, F.; Yuan, J., 2020, Characteristics of penile growth in pubertal rats and a non‐invasive method to lengthen the penis

  • 備考:
  • 参照:
    PubMed
  • No.: 24
  • 文献情報:
    Kim, W. J.; Kim, G. H., 2020, An intestinal model with a finger-like villus structure fabricated using a bioprinting process and collagen/SIS-based cell-laden bioink

  • 備考:
  • 参照:
    PubMed
  • No.: 25
  • 文献情報:
    Gotoh, D.; Shimizu, N.; Wada, N.; ..., 2020, Effects of a new β3‐adrenoceptor agonist, vibegron, on neurogenic bladder dysfunction and remodeling in mice with spinal cord injury

  • 備考:
  • 参照:
    PubMed
  • No.: 26
  • 文献情報:
    Alshaikh, A. B.; Padma, A. M.; Dehlin, M.; Akouri, R.; ..., 2020, Decellularization and recellularization of the ovary for bioengineering applications; studies in the mouse

  • 備考:
  • 参照:
    PubMed
  • No.: 27
  • 文献情報:
    Chim, Y. H.; Davies, H. A.; Mason, D.; Nawaytou, O.; ..., 2020, Bicuspid valve aortopathy is associated with distinct patterns of matrix degradation

  • 備考:
  • 参照:
    PubMed
  • No.: 28
  • 文献情報:
    Lee, H.; Ju, Y. M.; Kim, I.; Elsangeedy, E.; Lee, J. H.; Yoo, J. J.; ..., 2020, A novel decellularized skeletal muscle-derived ECM scaffolding system for in situ muscle regeneration

  • 備考:
  • 参照:
    PubMed
  • No.: 29
  • 文献情報:
    Li, J.; Cai, Z.; Cheng, J.; Wang, C.; Fang, Z.; ..., 2020, Characterization of a heparinized decellularized scaffold and its effects on mechanical and structural properties

  • 備考:
  • 参照:
    PubMed
  • No.: 30
  • 文献情報:
    Lan, X.; Zhao, Q.; Zhang, J.; Lei, Y.; Wang, Y., 2020, A combination of hydrogen bonding and chemical covalent crosslinking to fabricate a novel swim-bladder-derived dry heart valve material yields advantageous …

  • 備考:
  • 参照:
    PubMed
  • No.: 31
  • 文献情報:
    Hosseini, V.; Mallone, A.; Mirkhani, N.; Noir, J.; ..., 2020, A pulsatile flow system to engineer aneurysm and atherosclerosis mimetic extracellular matrix

  • 備考:
  • 参照:
    PubMed
  • No.: 32
  • 文献情報:
    Ristaniemi, A.; Torniainen, J.; Stenroth, L.; ..., 2020, Comparison of water, hydroxyproline, uronic acid and elastin contents of bovine knee ligaments and patellar tendon and their relationships with biomechanical …

  • 備考:
  • 参照:
    PubMed
  • No.: 33
  • 文献情報:
    Kim, W. J.; Lee, H.; Lee, J. U.; Atala, A.; Yoo, J. J.; Lee, S. J.; ..., 2020, Efficient myotube formation in 3D bioprinted tissue construct by biochemical and topographical cues

  • 備考:
  • 参照:
    PubMed
  • No.: 34
  • 文献情報:
    Sv辰rd, A.; Hammerman, M.; Eliasson, P., 2020, Elastin levels are higher in healing tendons than in intact tendons and influence tissue compliance

  • 備考:
  • 参照:
    PubMed
  • No.: 35
  • 文献情報:
    Fazaeli, S.; Mirahmadi, F.; Everts, V.; ..., 2020, Alteration of structural and mechanical properties of the temporomandibular joint disc following elastase digestion

  • 備考:
  • 参照:
    PubMed
  • No.: 36
  • 文献情報:
    Panpho, P., 2021, Biomechanics and Biochemistry of the Aorta in Chronic Aortic Dissection

  • 備考:
  • 参照:
    PubMed
  • No.: 37
  • 文献情報:
    L坦pez-Mart鱈nez, S.; Campo, H.; ..., 2021, A Natural Xenogeneic Endometrial Extracellular Matrix Hydrogel Toward Improving Current Human in vitro Models and Future in vivo Applications

  • 備考:
  • 参照:
    PubMed
  • No.: 38
  • 文献情報:
    Bonito, V.; Koch, S. E.; Krebber, M. M.; ..., 2021, Distinct Effects of Heparin and Interleukin‐4 Functionalization on Macrophage Polarization and In Situ Arterial Tissue Regeneration Using Resorbable …

  • 備考:
  • 参照:
    PubMed
  • No.: 39
  • 文献情報:
    Sulaiman, N. S.; Bond, A. R.; Bruno, V. D.; ..., 2021, Effective decellularisation of human saphenous veins for biocompatible arterial tissue engineering applications: Bench optimisation and feasibility in vivo testing

  • 備考:
  • 参照:
    PubMed
  • No.: 40
  • 文献情報:
    Kim, W. J.; Lee, H.; Lee, C. K.; Kyung, J. W.; ..., 2021, A bioprinting process supplemented with in situ electrical stimulation directly induces significant myotube formation and myogenesis

  • 備考:
  • 参照:
    PubMed
  • No.: 41
  • 文献情報:
    Kim, J. D.; Han, H. S.; Kim, H. I.; Choi, J. S.; Park, J. H.; ..., 2021, 2D to 3D transformation of gold nanosheets on human adipose-derived 留-elastin nanotemplates

  • 備考:
  • 参照:
    PubMed
  • No.: 42
  • 文献情報:
    Damanik, F. F. R.; Verkoelen, N., 2021, Blitterswi k, C. an, Rotmans,., &Moroni, L.(2021)

  • 備考:
  • 参照:
    PubMed
  • No.: 43
  • 文献情報:
    Qiu, X.; Lee, B. L. P.; Wong, S. Y.; Ding, X.; Xu, K.; Zhao, W.; ..., 2021, Cellular remodeling of fibrotic conduit as vascular graft

  • 備考:
  • 参照:
    PubMed
  • No.: 44
  • 文献情報:
    Dou辿, M.; Okwieka, A.; Berquand, A.; Gorisse, L.; ..., 2021, Carbamylation of elastic fibers is a molecular substratum of aortic stiffness

  • 備考:
  • 参照:
    PubMed
  • No.: 45
  • 文献情報:
    Shapiro, K. K.; Knight, K. M.; Liang, R.; Cook, J.; ..., 2021, Comparison of 2 single incision slings on the vagina in an ovine model

  • 備考:
  • 参照:
    PubMed
  • No.: 46
  • 文献情報:
    Li, B.; Jing, H.; Sun, Z.; Wang, X.; Kong, D.; Liu, J.; ..., 2021, Comprehensive analyses and prioritization of various swim bladder-derived extracellular matrix in the application of heart valve prosthesis

  • 備考:
  • 参照:
    PubMed
  • No.: 47
  • 文献情報:
    Jeong, W.; Kim, M. K.; Kang, H. W., 2021, Effect of detergent type on the performance of liver decellularized extracellular matrix-based bio-inks

  • 備考:
  • 参照:
    PubMed
  • No.: 48
  • 文献情報:
    Damanik, F. F. R.; Verkoelen, N.; Blitterswijk, C. van; ..., 2021, Control delivery of multiple growth factors to actively steer differentiation and extracellular matrix protein production

  • 備考:
  • 参照:
    PubMed
  • No.: 49
  • 文献情報:
    Ristaniemi, A.; Torniainen, J.; Paakkonen, T.; Stenroth, L.; ..., 2021, Biomechanical, biochemical, and near infrared spectral data of bovine knee ligaments and patellar tendon

  • 備考:
  • 参照:
    PubMed
  • No.: 50
  • 文献情報:
    Dabaghi, M.; Saraei, N.; Carpio, M. B.; Nanduri, V.; ..., 2021, A robust protocol for decellularized human lung bioink generation amenable to 2D and 3D lung cell culture

  • 備考:
  • 参照:
    PubMed
  • No.: 51
  • 文献情報:
    Almeida-Gonz叩lez, F. R.; Gonz叩lez-V叩zquez, A.; ..., 2021, A step closer to elastogenesis on demand; Inducing mature elastic fibre deposition in a natural biomaterial scaffold

  • 備考:
  • 参照:
    PubMed
  • No.: 52
  • 文献情報:
    Godinho, M. S.; Thorpe, C. T.; Greenwald, S. E.; Screen, H. R. C., 2021, Elastase treatment of tendon specifically impacts the mechanical properties of the interfascicular matrix

  • 備考:
  • 参照:
    PubMed
  • No.: 53
  • 文献情報:
    Kwon, T. R.; Moon, D. W.; Kim, J.; Kim, H. J.; Lee, S. J.; ..., 2021, Application of 630-nm and 850-nm light-emitting diodes and microcurrent to accelerate collagen and elastin deposition in porcine skin

  • 備考:
  • 参照:
    PubMed
  • No.: 54
  • 文献情報:
    Chen, C. W.; Wang, Y., 2022, Compositions comprising extracellular matrix of primitive animal species and related methods

  • 備考:
  • 参照:
    PubMed
  • No.: 55
  • 文献情報:
    Chen, C. W.; Wang, Y., 2022, Compositions Comprising Extracellular Matrix of Primitive Animal Species and Related Methods

  • 備考:
  • 参照:
    PubMed
  • No.: 56
  • 文献情報:
    Lima, EC de; Bezerra, T. F.; ..., 2022, Cosmetic composition and its use, dermocosmetic formulation

  • 備考:
  • 参照:
    PubMed
  • No.: 57
  • 文献情報:
    Gehret, P.; Ghavimi, SA Akbari; Dumas, A.; Borek, R. C.; ..., 2022, A Translational Tissue Engineering Approach to Airway Reconstruction Leveraging Decellularized Meniscus and Cartilage Progenitor Cells

  • 備考:
  • 参照:
    PubMed
  • No.: 58
  • 文献情報:
    Kim, J. Y.; Lee, H.; Jin, E. J.; Jo, Y.; Kang, B. E.; Ryu, D.; Kim, G. H., 2022, A microfluidic device to fabricate one‐step cell bead‐laden hydrogel struts for tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 59
  • 文献情報:
    Rohringer, S.; Schneider, K. H.; Eder, G.; Hager, P.; ..., 2022, Chorion-derived extracellular matrix hydrogel and fibronectin surface coatings show similar beneficial effects on endothelialization of expanded …

  • 備考:
  • 参照:
    PubMed
  • No.: 60
  • 文献情報:
    Lee, Y. C.; Richards, T. D.; Fantini, D. A.; Kaczorowski, D. J.; ..., 2022, Ascending and Descending Aortic ECM Hydrogels for Modeling Aortic Wall Biology

  • 備考:
  • 参照:
    PubMed
  • No.: 61
  • 文献情報:
    Ramakrishnan, R.; Venkiteswaran, K. K.; ..., 2022, Assembly of skin substitute by cross-linking natural biomaterials on synthetic biodegradable porous mat for critical-size full-thickness burn wound regeneration

  • 備考:
  • 参照:
    PubMed
  • No.: 62
  • 文献情報:
    Zhu, J.; Wang, Y.; Rivett, A.; Li, H.; Wu, L.; Wang, R.; ..., 2022, Deficiency of cystathionine gamma-lyase promotes aortic elastolysis and medial degeneration in aged mice

  • 備考:
  • 参照:
    PubMed
  • No.: 63
  • 文献情報:
    Todesco, M.; Imran, S. J.; Fortunato, T. M.; Sandrin, D.; ..., 2022, A new detergent for the effective decellularization of bovine and porcine pericardia

  • 備考:
  • 参照:
    PubMed
  • No.: 64
  • 文献情報:
    Mudigonda, J.; Xu, D.; Amedi, A.; Lane, B. A.; ..., 2022, A biohybrid material with extracellular matrix Core and polymeric coating as a cell honing cardiovascular tissue substitute

  • 備考:
  • 参照:
    PubMed
  • No.: 65
  • 文献情報:
    Ergun, C.; Parmaksiz, M.; Vurat, M. T.; El巽in, A. E.; ..., 2022, Decellularized liver ECM-based 3D scaffolds: compositional, physical, chemical, rheological, thermal, mechanical, and in vitro biological evaluations

  • 備考:
  • 参照:
    PubMed
  • No.: 66
  • 文献情報:
    Faggioli, M.; Moro, A.; Butt, S.; Todesco, M.; Sandrin, D.; ..., 2022, A new decellularization protocol of porcine aortic valves using tergitol to characterize the scaffold with the biocompatibility profile using human bone marrow …

  • 備考:
  • 参照:
    PubMed
  • No.: 67
  • 文献情報:
    Verhorstert, K.; Gudde, A.; Weitsz, C.; ..., 2022, Absorbable electrospun poly-4-hydroxybutyrate scaffolds as a potential solution for pelvic organ prolapse surgery

  • 備考:
  • 参照:
    PubMed
  • No.: 68
  • 文献情報:
    Vu, D. M.; Nguyen, V. T.; Nguyen, T. H.; Do, P. T. X.; Dao, H. H.; ..., 2022, Effects of extracellular vesicles secreted by TGFβ-stimulated umbilical cord mesenchymal stem cells on skin fibroblasts by promoting fibroblast migration and …

  • 備考:
  • 参照:
    PubMed
  • No.: 69
  • 文献情報:
    Huang, Z.; Zhang, Y.; Liu, R.; Li, Y.; Rafique, M.; Midgley, A. C.; ..., 2022, Cobalt loaded electrospun poly (竜-caprolactone) grafts promote antibacterial activity and vascular regeneration in a diabetic rat model

  • 備考:
  • 参照:
    PubMed
  • No.: 70
  • 文献情報:
    Kim, H.; Choi, K. H.; Sung, S. C.; Kim, Y. S., 2022, Effect of ethanol washing on porcine pulmonary artery wall decellularization using sodium dodecyl sulfate

  • 備考:
  • 参照:
    PubMed
  • No.: 71
  • 文献情報:
    Giang, N. N.; Trinh, X. T.; Han, J.; Chien, P. N.; ..., 2022, Effective decellularization of human skin tissue for regenerative medicine by supercritical carbon dioxide technique

  • 備考:
  • 参照:
    PubMed
  • No.: 72
  • 文献情報:
    Nesbitt, D. Q., 2023, Effect of Age on the Mechanical Behavior and Molecular Structure of Human Meniscus: An Experimental and Computational Analysis

  • 備考:
  • 参照:
    PubMed
  • No.: 73
  • 文献情報:
    Jaiswal, A.; Rehman, R.; Dutta, J.; Singh, S.; Ray, A.; ..., 2023, Cellular Distribution of Secreted Phospholipase A2 in Lungs of IPF Patients and Its Inhibition in Bleomycin-Induced Pulmonary Fibrosis in Mice

  • 備考:
  • 参照:
    PubMed
  • No.: 74
  • 文献情報:
    Kim, W. J.; Kim, G. H., 2023, Bioprinting 3D muscle tissue supplemented with endothelial-spheroids for neuromuscular junction model

  • 備考:
  • 参照:
    PubMed
  • No.: 75
  • 文献情報:
    Wang, D.; Charoensombut, N.; Kawabata, K.; Kimura, T.; ..., 2023, Effect of pressure conditions in uterine decellularization using hydrostatic pressure on structural protein preservation

  • 備考:
  • 参照:
    PubMed
  • No.: 76
  • 文献情報:
    Costa, E.; Thrasivoulou, C.; Becker, D. L.; ..., 2023, Cx43 regulates mechanotransduction mechanisms in human preterm amniotic membrane defects

  • 備考:
  • 参照:
    PubMed
  • No.: 77
  • 文献情報:
    Cuevas, R. A.; Wong, R.; Joolharzadeh, P.; ..., 2023, Ecto-5′-nucleotidase (Nt5e/CD73)-mediated adenosine signaling attenuates TGFβ-2 induced elastin and cellular contraction

  • 備考:
  • 参照:
    PubMed
  • No.: 78
  • 文献情報:
    Carvalho, M. J.; Pedrosa, S. S.; Mendes, A.; ..., 2023, Anti-Aging Potential of a Novel Ingredient Derived from Sugarcane Straw Extract (SSE)

  • 備考:
  • 参照:
    PubMed
  • No.: 79
  • 文献情報:
    Du, H.; Zhang, W.; Shi, Y.; Sun, W.; Liu, G.; Liu, H., 2023, Decellularized extracellular matrix tissues from human gastric cancer tissues as a three-dimensional model for cancer cell growth and drug treatments

  • 備考:
  • 参照:
    PubMed
  • No.: 80
  • 文献情報:
    Ahmed, K.; Rodboon, T.; Oo, Y.; Phan, T.; ..., 2023, Biofabrication, biochemical profiling, and in vitro applications of salivary gland decellularized matrices via magnetic bioassembly platforms

  • 備考:
  • 参照:
    PubMed
  • No.: 81
  • 文献情報:
    Zulkiflee, I.; Amirrah, I. N.; Fadilah, N. I. M.; Wee, MFMR; ..., 2023, Characterization of Dual-Layer Hybrid Biomatrix for Future Use in Cutaneous Wound Healing

  • 備考:
  • 参照:
    PubMed
  • No.: 82
  • 文献情報:
    Siquier-Dameto, G.; Boisnic, S.; Boadas-Vaello, P.; ..., 2023, Anti-Aging and Depigmentation Effect of a Hyaluronic Acid Mechanically Stabilized Complex on Human Skin Explants

  • 備考:
  • 参照:
    PubMed
  • No.: 83
  • 文献情報:
    Oganesyan, R. V.; Lellouch, A. G.; Acun, A.; ..., 2023, Acellular nipple scaffold development, characterization, and preliminary biocompatibility assessment in a swine model

  • 備考:
  • 参照:
    PubMed
  • No.: 84
  • 文献情報:
    Cheng, Q.; Zhang, L.; Zhang, J.; Zhou, X.; ..., 2023, Decellularized Scaffolds with Double‐Layer Aligned Microchannels Induce the Oriented Growth of Bladder Smooth Muscle Cells: Toward Urethral and Ureteral …

  • 備考:
  • 参照:
    PubMed
  • No.: 85
  • 文献情報:
    Jianying, M. A. O.; Wenjing, Y.; He, G. U. O.; Ruili, D.; ..., 2023, A cervical cancer tissue-derived decellularized extracellular matrix scaffold for cervical cancer tissue reconstruction in vitro

  • 備考:
  • 参照:
    PubMed
  • No.: 86
  • 文献情報:
    Charoensiddhi, S.; Methacanon, P.; Su, P.; Zhang, W., 2023, Anti-skin glycation and collagen level stimulation of brown seaweed extracts and their compositional characteristics

  • 備考:
  • 参照:
    PubMed
  • No.: 87
  • 文献情報:
    Castells-Sala, C.; P辿rez, M. L.; L坦pez-Chic坦n, P.; ..., 2023, Development of a full-thickness acellular dermal graft from human skin: Case report of first patient rotator cuff patch augmentation repair

  • 備考:
  • 参照:
    PubMed
  • No.: 88
  • 文献情報:
    Kuナ殪ト殕u, A.; Yangトアn, K.; テ奔kan, S. N.; ..., 2023, Different decellularization methods in bovine lung tissue reveals distinct biochemical composition, stiffness, and viscoelasticity in reconstituted hydrogels

  • 備考:
  • 参照:
    PubMed
  • No.: 89
  • 文献情報:
    Godefroy, W.; Faivre, L.; Sansac, C.; Thierry, B.; Allain, J. M.; ..., 2023, Development and qualification of clinical grade decellularized and cryopreserved human esophagi

  • 備考:
  • 参照:
    PubMed
  • No.: 90
  • 文献情報:
    Kim, D.; Kim, G. H., 2023, Bioprinted hASC-laden cell constructs with mechanically stable and cell alignment cue for tenogenic differentiation

  • 備考:
  • 参照:
    PubMed
  • No.: 91
  • 文献情報:
    Fern叩ndez-Carro, E.; Garcia-Barrios, A.; ..., 2023, Decellularized human dermal extracellular matrix-derived scaffolds: compositional, mechanical, and in vitro biological characterizations

  • 備考:
  • 参照:
    PubMed
  • No.: 92
  • 文献情報:
    Liu, X.; Deng, Y.; Li, F.; Zhao, D.; Yang, Y.; Huang, T.; ..., 2023, Effect of elastin degradation of patellar tendon on the quasi-static tensile mechanical properties

  • 備考:
  • 参照:
    PubMed
  • No.: 93
  • 文献情報:
    Hou, J.; Jie, J.; Wei, X.; Shen, X.; Zhao, Q.; Chai, X.; Pang, H.; ..., 2024, A Core-Shell-Type Nanosystem Promotes Diabetic Wound Healing Through Photothermal-Responsive Release of Transforming Growth Factor 硫

  • 備考:
  • 参照:
    PubMed
  • No.: 94
  • 文献情報:
    Duckworth, C.; Stutts, J.; Clatterbuck, K.; ..., 2023, Effect of ellagic acid and retinoic acid on collagen and elastin production by human dermal fibroblasts

  • 備考:
  • 参照:
    PubMed
  • No.: 95
  • 文献情報:
    Jo, S. Y.; Lee, H.; Jo, Y.; Jin, E. J.; Kim, D.; Ryu, D.; ..., 2024, Bioengineered cell-constructs using decellularized fish skin-based composite bioink for regenerating muscle tissue

  • 備考:
  • 参照:
    PubMed
  • No.: 96
  • 文献情報:
    Wang, Y.; Xue, F.; Cheng, W.; Zhao, Q.; Song, N.; ..., 2024, Design and Synthesis of Novel Ultralong-Acting Peptides as EDP-EBP Interaction Inhibitors for Pulmonary Fibrosis Treatment

  • 備考:
  • 参照:
    PubMed
  • No.: 97
  • 文献情報:
    Velthoven, MJJ van; Gudde, A. N.; ..., 2024, An improved understanding of the pathophysiology of pelvic organ prolapse: a 3d in vitro model under static and mechanical loading conditions

  • 備考:
  • 参照:
    PubMed
  • No.: 98
  • 文献情報:
    Nesbitt, D. Q.; Pu, X.; Turner, M. W.; Zavala, A. G.; ..., 2024, Age‐dependent changes in collagen crosslinks reduce the mechanical toughness of human meniscus

  • 備考:
  • 参照:
    PubMed
  • No.: 99
  • 文献情報:
    Ishizaki, Y.; Wang, J.; Kim, J.; Matsumoto, T.; Maeda, E., 2024, Contributions of collagen and elastin to elastic behaviours of tendon fascicle

  • 備考:
  • 参照:
    PubMed
  • No.: 100
  • 文献情報:
    Kheradvar, A.; Zareian, R., 2020, Methods for development of hybrid tissue engineered valve with polyurethane core

  • 備考:
  • 参照:
    PubMed
  • No.: 101
  • 文献情報:
    Torniainen, J., 2020, Near infrared spectroscopy-based evaluation of patellar tendon and knee ligaments

  • 備考:
  • 参照:
    PubMed
  • No.: 102
  • 文献情報:
    O'neill, J.; Vunjak-Novakovic, G., 2020, Regionally specific tissue-derived extracellular matrix

  • 備考:
  • 参照:
    PubMed
  • No.: 103
  • 文献情報:
    Ristaniemi, A., 2020, Structure and function of knee ligaments and patellar tendon: biomechanics, biochemistry and computational modeling

  • 備考:
  • 参照:
    PubMed
  • No.: 104
  • 文献情報:
    Maghin, E., 2020, Study of extracellular matrix in healthy and pathological condition

  • 備考:
  • 参照:
    PubMed
  • No.: 105
  • 文献情報:
    Ramakrishnan, R.; Sreelatha, H. V.; Anil, A.; ..., 2020, Human-derived scaffold components and stem cells creating immunocompatible dermal tissue ensuing regulated nonfibrotic cellular phenotypes

  • 備考:
  • 参照:
    PubMed
  • No.: 106
  • 文献情報:
    Zhang, X.; Simmons, C. A.; Santerre, J. P., 2020, Paracrine signalling from monocytes enables desirable extracellular matrix accumulation and temporally appropriate phenotype of vascular smooth muscle cell-like …

  • 備考:
  • 参照:
    PubMed
  • No.: 107
  • 文献情報:
    Meran, L.; Massie, I.; Campinoti, S.; Weston, A. E.; ..., 2020, Engineering transplantable jejunal mucosal grafts using patient-derived organoids from children with intestinal failure

  • 備考:
  • 参照:
    PubMed
  • No.: 108
  • 文献情報:
    Hwangbo, H.; Kim, W. J.; Kim, G. H., 2020, Lotus-root-like microchanneled collagen scaffold

  • 備考:
  • 参照:
    PubMed
  • No.: 109
  • 文献情報:
    Everwien, H.; Schellenberger, AA de; Haep, N.; ..., 2020, Magnetic resonance elastography quantification of the solid-to-fluid transition of liver tissue due to decellularization

  • 備考:
  • 参照:
    PubMed
  • No.: 110
  • 文献情報:
    Zamboulis, D. E.; Thorpe, C. T.; Kharaz, Y. Ashraf; Birch, H. L.; ..., 2020, Postnatal mechanical loading drives adaptation of tissues primarily through modulation of the non-collagenous matrix

  • 備考:
  • 参照:
    PubMed
  • No.: 111
  • 文献情報:
    Woods, I.; Black, A.; Molloy, E. J.; ..., 2020, Fabrication of blood‐derived elastogenic vascular grafts using electrospun fibrinogen and polycaprolactone composite scaffolds for paediatric applications

  • 備考:
  • 参照:
    PubMed
  • No.: 112
  • 文献情報:
    Curciarello, R.; Sobande, T.; Jones, S.; ..., 2020, Human neutrophil elastase proteolytic activity in ulcerative colitis favors the loss of function of therapeutic monoclonal antibodies

  • 備考:
  • 参照:
    PubMed
  • No.: 113
  • 文献情報:
    Fu, J.; Ding, X.; Stowell, C. E. T.; Wu, Y. L.; Wang, Y., 2020, Slow degrading poly (glycerol sebacate) derivatives improve vascular graft remodeling in a rat carotid artery interposition model

  • 備考:
  • 参照:
    PubMed
  • No.: 114
  • 文献情報:
    Ajit, A.; Ramakrishnan, R.; Retnabai, S. T.; ..., 2020, Generation of niche tuned antifibrotic fibroblasts and non‐viral mediated endothelial commitment using adipose stem cells for dermal graft development

  • 備考:
  • 参照:
    PubMed
  • No.: 115
  • 文献情報:
    Qin, K.; Wang, F.; Simpson, R. M. L.; Zheng, X.; Wang, H.; Hu, Y.; ..., 2020, Hyaluronan promotes the regeneration of vascular smooth muscle with potent contractile function in rapidly biodegradable vascular grafts

  • 備考:
  • 参照:
    PubMed
  • No.: 116
  • 文献情報:
    Nayakawde, N. B.; Methe, K.; Banerjee, D.; ..., 2020, In Vitro Regeneration of Decellularized Pig Esophagus Using Human Amniotic Stem Cells

  • 備考:
  • 参照:
    PubMed
  • No.: 117
  • 文献情報:
    Lee, S. J.; Lee, J. H.; Park, J.; Kim, W. D.; Park, S. A., 2020, Fabrication of 3D printing scaffold with porcine skin decellularized bio-ink for soft tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 118
  • 文献情報:
    Liu, J.; Li, B.; Jing, H.; Wu, Y.; Kong, D.; ..., 2020, Swim bladder as a novel biomaterial for cardiovascular materials with anti‐calcification properties

  • 備考:
  • 参照:
    PubMed
  • No.: 119
  • 文献情報:
    Capella-Monson鱈s, H.; Tilbury, M. A.; Wall, J. G.; ..., 2020, Porcine mesothelium matrix as a biomaterial for wound healing applications

  • 備考:
  • 参照:
    PubMed
  • No.: 120
  • 文献情報:
    Rotmans, J. I.; Rothuizen, T. C.; Moroni, L.; ..., 2021, In situ tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 121
  • 文献情報:
    Ogen‐Shtern, N.; Chumin, K.; Cohen, G.; ..., 2020, Increased pro‐collagen 1, elastin, and TGF‐β1 expression by copper ions in an ex‐vivo human skin model

  • 備考:
  • 参照:
    PubMed
  • No.: 122
  • 文献情報:
    Ayoub, S.; Howsmon, D. P.; Lee, C. H.; Sacks, M. S., 2021, On the role of predicted in vivo mitral valve interstitial cell deformation on its biosynthetic behavior

  • 備考:
  • 参照:
    PubMed
  • No.: 123
  • 文献情報:
    Hariri, R. J.; Bhatia, M., 2021, Extracellular matrix composition beads for cell culture

  • 備考:
  • 参照:
    PubMed
  • No.: 124
  • 文献情報:
    Alshaikh, A. B., 2021, Principles of scaffold generation for bioengineering of the ovary and uterus: a study focusing on decellularization

  • 備考:
  • 参照:
    PubMed
  • No.: 125
  • 文献情報:
    Gaillard, E.; Perichet, C.; Humbert, M.; ..., 2021, Extracts of plants containing polygodial, compositions comprising such extracts and cosmetic and/or dermatological uses thereof

  • 備考:
  • 参照:
    PubMed
  • No.: 126
  • 文献情報:
    Lee, H.; Kim, W. J.; Lee, J. U.; Park, K. S.; Yoo, J. J.; ..., 2021, Self-aligned myofibers in 3D bioprinted extracellular matrix-based construct accelerate skeletal muscle function restoration

  • 備考:
  • 参照:
    PubMed
  • No.: 127
  • 文献情報:
    Jeannerat, A.; Peneveyre, C.; Armand, F.; Chiappe, D.; ..., 2021, Hypoxic incubation conditions for optimized manufacture of tenocyte-based active pharmaceutical ingredients of homologous standardized transplant …

  • 備考:
  • 参照:
    PubMed
  • No.: 128
  • 文献情報:
    Murata, K.; Oyama, M.; Ogata, M.; Fujita, N.; ..., 2021, Oral administration of Jumihaidokuto inhibits UVB-induced skin damage and prostaglandin E2 production in HR-1 hairless mice

  • 備考:
  • 参照:
    PubMed
  • No.: 129
  • 文献情報:
    Neidlinger-Wilke, C.; Ekkerlein, A.; ..., 2021, Mesenchymal stem cell secretome decreases the inflammatory response in annulus fibrosus organ cultures

  • 備考:
  • 参照:
    PubMed
  • No.: 130
  • 文献情報:
    Yeo, M.; Kim, G. H., 2021, Electrohydrodynamic-direct-printed cell-laden microfibrous structure using alginate-based bioink for effective myotube formation

  • 備考:
  • 参照:
    PubMed
  • No.: 131
  • 文献情報:
    Patel, D.; Zamboulis, D. E.; Spiesz, E. M.; Birch, H. L.; ..., 2021, Structure-function specialisation of the interfascicular matrix in the human achilles tendon

  • 備考:
  • 参照:
    PubMed
  • No.: 132
  • 文献情報:
    Jana, S.; Morse, D.; Lerman, A., 2021, Leaflet tissue generation from microfibrous heart valve leaflet scaffolds with native characteristics

  • 備考:
  • 参照:
    PubMed
  • No.: 133
  • 文献情報:
    Ristaniemi, A.; Regmi, D.; Mondal, D.; ..., 2021, Structure, composition and fibril-reinforced poroviscoelastic properties of bovine knee ligaments and patellar tendon

  • 備考:
  • 参照:
    PubMed
  • No.: 134
  • 文献情報:
    Li, W.; Bai, Y.; Cao, J.; Gao, S.; Xu, P.; Feng, G.; Wang, L.; ..., 2021, Highly interconnected inverse opal extracellular matrix scaffolds enhance stem cell therapy in limb ischemia

  • 備考:
  • 参照:
    PubMed
  • No.: 135
  • 文献情報:
    Zerbinati, N.; Sommatis, S.; Maccario, C.; Capillo, M. C.; ..., 2021, Evaluation of anti-photoaging effects of a novel cosmeceutical containing a retinoids mixture using in vitro cell models

  • 備考:
  • 参照:
    PubMed
  • No.: 136
  • 文献情報:
    Minami, A.; Fujita, Y.; Goto, J.; Iuchi, A.; Fujita, K.; Mikami, Y.; ..., 2021, Enhancement of elastin expression by transdermal administration of sialidase isozyme Neu2

  • 備考:
  • 参照:
    PubMed
  • No.: 137
  • 文献情報:
    Lin, C. H.; Hsia, K.; Su, C. K.; Chen, C. C.; Yeh, C. C.; Ma, H.; Lu, J. H., 2021, Sonication-assisted method for decellularization of human umbilical artery for small-caliber vascular tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 138
  • 文献情報:
    Gonzalez, A.; Lee, M. R.; Johnson, B. A.; Booshehri, L.; ..., 2021, Safety and efficacy of a new vaginal gel, Feminilove, for the treatment of symptoms associated with vaginal dryness and vulvovaginal atrophy in women: An in vitro …

  • 備考:
  • 参照:
    PubMed
  • No.: 139
  • 文献情報:
    Parasaram, V.; Wang, X.; Krisanarungson, P.; ..., 2021, Targeted delivery of pentagalloyl glucose inhibits matrix metalloproteinase activity and preserves elastin in emphysematous lungs

  • 備考:
  • 参照:
    PubMed
  • No.: 140
  • 文献情報:
    P辿rez, M. L.; Castells-Sala, C.; L坦pez-Chic坦n, P.; ..., 2021, Fast protocol for the processing of split-thickness skin into decellularized human dermal matrix

  • 備考:
  • 参照:
    PubMed
  • No.: 141
  • 文献情報:
    Chowdhury, A.; Nosoudi, N.; Karamched, S.; ..., 2021, Polyphenol treatments increase elastin and collagen deposition by human dermal fibroblasts; Implications to improve skin health

  • 備考:
  • 参照:
    PubMed
  • No.: 142
  • 文献情報:
    Bhatia, M. B.; Lugo, C.; Ye, Q.; Edinger, J. W., 2022, Human placental collagen compositions and methods of making and using the same

  • 備考:
  • 参照:
    PubMed
  • No.: 143
  • 文献情報:
    Coppi, P. De; Elvassore, N.; Giobbe, G. G.; ..., 2022, Extracellular Matrix Gels, and Organoid Cultures Comprising the Same

  • 備考:
  • 参照:
    PubMed
  • No.: 144
  • 文献情報:
    Huang, Z.; Wang, X.; Ryzhuk, V.; Gao, W., 2022, Preparation and use of tissue matrix derived powder

  • 備考:
  • 参照:
    PubMed
  • No.: 145
  • 文献情報:
    Ellis, M. W. A., 2022, Extracellular Elastin Assembly and Vascular Hyperproliferation: Connections for Treatment and Tissue Engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 146
  • 文献情報:
    Zambaiti, E., 2022, Organoidi gastrointestinali pediatrici e fetali: modello di cultura tridimensionale in vitro

  • 備考:
  • 参照:
    PubMed
  • No.: 147
  • 文献情報:
    Davies, H. A.; Caamano-Gutierrez, E.; ..., 2022, Rapid evaporative ionization mass spectrometry (intelligent knife) for point-of-care testing in acute aortic dissection surgery

  • 備考:
  • 参照:
    PubMed
  • No.: 148
  • 文献情報:
    Anitua, E.; Mu単oz, V.; Aspe, L.; Tierno, R.; ..., 2022, In vitro and in vivo effect of platelet-rich plasma-based autologous topical serum on cutaneous wound healing

  • 備考:
  • 参照:
    PubMed
  • No.: 149
  • 文献情報:
    Adil, A.; Xu, M.; Haykal, S., 2022, Recellularization of bioengineered scaffolds for vascular composite allotransplantation

  • 備考:
  • 参照:
    PubMed
  • No.: 150
  • 文献情報:
    Xiao, W.; Chen, W.; Wang, Y.; Zhang, C.; Zhang, X.; ..., 2022, Recombinant DT硫4-inspired porous 3D vascular graft enhanced antithrombogenicity and recruited circulating CD93+/CD34+ cells for endothelialization

  • 備考:
  • 参照:
    PubMed
  • No.: 151
  • 文献情報:
    Li, M.; Zheng, C.; Wu, B.; Ding, K.; Zhang, S.; ..., 2022, Glycidyl methacrylate-crosslinked fish swim bladder as a novel cardiovascular biomaterial with improved antithrombotic and anticalcification properties

  • 備考:
  • 参照:
    PubMed
  • No.: 152
  • 文献情報:
    Wendel, H. P.; Keller, T.; Nolte, A.; Avci-Adali, M.; ..., 2022, Stabilized polyribonucleotide coding for an elastic fibrous protein

  • 備考:
  • 参照:
    PubMed
  • No.: 153
  • 文献情報:
    Hwangbo, H.; Lee, J. U.; Kim, G. H., 2022, Mechanically and biologically enhanced 3D-printed HA/PLLA/dECM biocomposites for bone tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 154
  • 文献情報:
    Girardeau-Hubert, S.; Lynch, B.; Zuttion, F.; Label, R.; ..., 2022, Impact of microstructure on cell behavior and tissue mechanics in collagen and dermal decellularized extra-cellular matrices

  • 備考:
  • 参照:
    PubMed
  • No.: 155
  • 文献情報:
    Nguyen, H. T.; Choi, Y. H.; Choi, C. W.; ..., 2022, Enhanced anti‐wrinkle activity of adlay bran fermented with Lactobacillus brevis MJM60390

  • 備考:
  • 参照:
    PubMed
  • No.: 156
  • 文献情報:
    Casarin, M.; Fortunato, T. M.; Imran, S.; Todesco, M.; ..., 2022, Porcine Small Intestinal Submucosa (SIS) as a Suitable scaffold for the creation of a tissue-engineered urinary conduit: Decellularization, biomechanical and …

  • 備考:
  • 参照:
    PubMed
  • No.: 157
  • 文献情報:
    Matsumura, G.; Isayama, N.; Sato, H., 2022, Evaluation method for cell-free in situ tissue-engineered vasculature monitoring: Proof of growth and development in a canine IVC model

  • 備考:
  • 参照:
    PubMed
  • No.: 158
  • 文献情報:
    Fletcher, A. J.; Nash, J.; Syed, M. B. J.; ..., 2022, Microcalcification and thoracic aortopathy: a window into disease severity

  • 備考:
  • 参照:
    PubMed
  • No.: 159
  • 文献情報:
    Ramakrishnan, R.; Chouhan, D.; ..., 2022, Silk fibroin-based bioengineered scaffold for enabling hemostasis and skin regeneration of critical-size full-thickness heat-induced burn wounds

  • 備考:
  • 参照:
    PubMed
  • No.: 160
  • 文献情報:
    Ramakrishnan, R.; Harikrishnan, V. S.; ..., 2022, Extracellular matrix‐based combination scaffold for guided regeneration of large‐area full‐thickness rabbit burn wounds upon a single application

  • 備考:
  • 参照:
    PubMed
  • No.: 161
  • 文献情報:
    Palmosi, T.; Tolomeo, A. M.; Cirillo, C.; Sandrin, D.; ..., 2022, Small intestinal submucosa-derived extracellular matrix as a heterotopic scaffold for cardiovascular applications

  • 備考:
  • 参照:
    PubMed
  • No.: 162
  • 文献情報:
    Fukunishi, T.; Lui, C.; Ong, C. S.; Dunn, T.; ..., 2022, Extruded poly (glycerol sebacate) and polyglycolic acid vascular graft forms a neoartery

  • 備考:
  • 参照:
    PubMed
  • No.: 163
  • 文献情報:
    Zhi, D.; Cheng, Q.; Midgley, A. C.; Zhang, Q.; Wei, T.; Li, Y.; ..., 2022, Mechanically reinforced biotubes for arterial replacement and arteriovenous grafting inspired by architectural engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 164
  • 文献情報:
    Guagliano, G.; Volpini, C.; Sardelli, L.; ..., 2022, Hep3Gel: a shape-shifting extracellular matrix-based, three-dimensional liver model adaptable to different culture systems

  • 備考:
  • 参照:
    PubMed
  • No.: 165
  • 文献情報:
    Hermans, L. H. L.; Kelle, MAJ Van; Oomen, P. J. A.; ..., 2022, Scaffold Geometry-Imposed Anisotropic Mechanical Loading Guides the Evolution of the Mechanical State of Engineered Cardiovascular Tissues in vitro

  • 備考:
  • 参照:
    PubMed
  • No.: 166
  • 文献情報:
    Gudde, A. N.; Velthoven, MJJ van; Roovers, JPWR; ..., 2022, Polyisocyanides as a substrate to trigger vaginal fibroblast functioning in an in vitro model for prolapse repair

  • 備考:
  • 参照:
    PubMed
  • No.: 167
  • 文献情報:
    Damanik, F. F. R.; Rothuizen, C. T.; Lalai, R.; ..., 2022, Long-Term Controlled Growth Factor Release Using Layer-by-Layer Assembly for the Development of In Vivo Tissue-Engineered Blood Vessels

  • 備考:
  • 参照:
    PubMed
  • No.: 168
  • 文献情報:
    Lu, X.; Han, L.; Kassab, G. S., 2022, Pulmonary visceral pleura biomaterial: Elastin-and collagen-based extracellular matrix

  • 備考:
  • 参照:
    PubMed
  • No.: 169
  • 文献情報:
    Fern叩ndez, E., 2023, Estibaliz Fern叩ndez-Decellularized human dermal extracellular matrix-derived scaffolds: compositional, mechanical, and in vitro biological characterizations

  • 備考:
  • 参照:
    PubMed
  • No.: 170
  • 文献情報:
    Breuer, C.; Best, C.; Strouse, R.; Hibino, N.; ..., 2023, Systems and methods for optimized patient specific tissue engineering vascular grafts

  • 備考:
  • 参照:
    PubMed
  • No.: 171
  • 文献情報:
    Griffiths, L. G.; Papalamprou, A., 2023, Solubilization of antigen components for removal from tissues

  • 備考:
  • 参照:
    PubMed
  • No.: 172
  • 文献情報:
    Tedeschi, A. M., 2023, Mesoangioblast promote regeneration of a stable and organised vasculature in a decellularised intestinal graft

  • 備考:
  • 参照:
    PubMed
  • No.: 173
  • 文献情報:
    Hargis, J. G.; Klitzke, K., 2023, Porcine Scaffolds and Methods of Preparation

  • 備考:
  • 参照:
    PubMed
  • No.: 174
  • 文献情報:
    Grant, R.; Davis, N. F.; Callanan, A., 2023, Methods in Cell-Stimulated Extracellular Matrix Production in Tissue Engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 175
  • 文献情報:
    Huang, S.; Sun, H.; Sun, W., 2023, Physical and chemical properties of porcine dermis matrix affected by process integration for decellularization, viral inactivation and sterilization

  • 備考:
  • 参照:
    PubMed
  • No.: 176
  • 文献情報:
    Lin, Y. H.; Wu, P. Y., 2023, Method for improving body shape and improving skin condition using noni fruit ferment

  • 備考:
  • 参照:
    PubMed
  • No.: 177
  • 文献情報:
    Hausmanns, S.; Frech, H. U.; Oesser, S.; ..., 2023, Recombinant production of a collagen peptide preparation and use thereof

  • 備考:
  • 参照:
    PubMed
  • No.: 178
  • 文献情報:
    Nejad, S. Parvin; Lecce, M.; Mirani, B.; ..., 2023, Serum-and xeno-free culture of human umbilical cord perivascular cells for pediatric heart valve tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 179
  • 文献情報:
    Dittfeld, C.; Welzel, C.; Kテカnig, U.; Jannasch, A.; ..., 2023, Hemocompatibility tuning of an innovative glutaraldehyde-free preparation strategy using riboflavin/UV crosslinking and electron irradiation of bovine pericardium for 窶ヲ

  • 備考:
  • 参照:
    PubMed
  • No.: 180
  • 文献情報:
    Wang, Z.; Spitz, R.; Vezina, C.; Hou, J.; ..., 2023, Lack of expression of miR-29a/b1 impairs bladder function in male mice

  • 備考:
  • 参照:
    PubMed
  • No.: 181
  • 文献情報:
    Lin, Y. H.; Lai, M., 2023, Method for improving skin condition with redlove apples extract

  • 備考:
  • 参照:
    PubMed
  • No.: 182
  • 文献情報:
    Tommasini, F.; Benoist, T.; Shibuya, S.; Woodall, M. N. J.; ..., 2023, Lung viral infection modelling in a bioengineered whole-organ

  • 備考:
  • 参照:
    PubMed
  • No.: 183
  • 文献情報:
    Skornia, A.; Geerling, G.; Spaniol, K.; Witt, J., 2023, Influence of storage conditions on decellularized porcine conjunctiva

  • 備考:
  • 参照:
    PubMed
  • No.: 184
  • 文献情報:
    Costa, E. M.; Oliveira, A. S.; Silva, S.; Ribeiro, A. B.; ..., 2023, Spent yeast waste streams as a sustainable source of bioactive peptides for skin applications

  • 備考:
  • 参照:
    PubMed
  • No.: 185
  • 文献情報:
    Song, N.; Xu, H.; Wu, S.; Luo, S.; Xu, J.; Zhao, Q.; ..., 2023, Synergistic activation of AMPK by AdipoR1/2 agonist and inhibitor of EDPs窶摘BP interaction recover NAFLD through enhancing mitochondrial function in mice

  • 備考:
  • 参照:
    PubMed
  • No.: 186
  • 文献情報:
    Guzman, RC de; Meer, A. S.; Mathews, A. A.; ..., 2023, Reduced fibrous capsule elastic fibers from biologic ECM-enveloped CIEDs in minipigs, supported with a novel compression mechanics model

  • 備考:
  • 参照:
    PubMed
  • No.: 187
  • 文献情報:
    Schneider, K. H.; Goldberg, B. J.; Hasturk, O.; Mu, X.; ..., 2023, Silk fibroin, gelatin, and human placenta extracellular matrix-based composite hydrogels for 3D bioprinting and soft tissue engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 188
  • 文献情報:
    Zhang, W.; Lu, W.; Sun, K.; Jiang, H., 2023, Genetically engineered chondrocytes overexpressing elastin improve cell retention and chondrogenesis in a three‐dimensional GelMA culture system

  • 備考:
  • 参照:
    PubMed
  • No.: 189
  • 文献情報:
    Arin, A.; Rahaman, M. S.; Farwa, U.; ..., 2023, Faster and protective wound healing mechanistic of para‐coumaric acid loaded liver ECM scaffold cross‐linked with acellular marine kelp

  • 備考:
  • 参照:
    PubMed
  • No.: 190
  • 文献情報:
    Shigeta, Y.; Saleh, T.; Benedetti, G.; Caciolli, L.; ..., 2023, Stomach engineering: region-specific characterization of the decellularized porcine stomach

  • 備考:
  • 参照:
    PubMed
  • No.: 191
  • 文献情報:
    Shin, E.; Kim, J. U.; Ko, J.; Koh, R. H.; Kim, J.; ..., 2023, Enhanced Anti‐Photoaging Effects of Adipose‐Derived Stem Cell (ADSC) Secretome via Liposomal and Iontophoretic Intradermal Delivery

  • 備考:
  • 参照:
    PubMed
  • No.: 192
  • 文献情報:
    Minami, A.; Suzuki, T.; Iwao, Y., 2023, Elastin production promoter and cosmetic preparation for skin

  • 備考:
  • 参照:
    PubMed
  • No.: 193
  • 文献情報:
    Velthoven, MJJ van; Gudde, A. N.; ..., 2023, Growth Factor Immobilization to Synthetic Hydrogels: Bioactive bFGF‐Functionalized Polyisocyanide Hydrogels

  • 備考:
  • 参照:
    PubMed
  • No.: 194
  • 文献情報:
    Sakai, T.; Sodemoto, N.; Inoue, A.; ..., 2023, Suitability of high‐molecular‐weight tissue‐derived elastin polypeptides and their particles as cosmetic biomaterials

  • 備考:
  • 参照:
    PubMed
  • No.: 195
  • 文献情報:
    Fernandez-Carro, E.; Remacha, A. R.; Orera, I.; ..., 2024, Human Dermal Decellularized ECM Hydrogels as Scaffolds for 3D In Vitro Skin Aging Models

  • 備考:
  • 参照:
    PubMed
  • No.: 196
  • 文献情報:
    Kim, W. J.; Kim, G. H., 2024, Engineered 3D liver-tissue model with minispheroids formed by a bioprinting process supported with in situ electrical stimulation

  • 備考:
  • 参照:
    PubMed
  • No.: 197
  • 文献情報:
    Gerecht, S.; Yarbrough, D.; Hall, F., 2024, Engineered vascular tissue models

  • 備考:
  • 参照:
    PubMed
  • No.: 198
  • 文献情報:
    Sun, X.; Xiao, T.; Qin, J.; Song, Y.; Lu, K.; Ding, R.; Sh, W.; ..., 2024, Mechanism of circRNA_SMG6 mediating lung macrophage ECM degradation via miR-570-3p in microplastics-induced emphysema

  • 備考:
  • 参照:
    PubMed
  • No.: 199
  • 文献情報:
    Higuita, M. L., 2020, Xenogeneic Small Diameter Vein Extracellular Matrix Scaffolds for Use in Vascular Diseases

  • 備考:
  • 参照:
    PubMed
  • No.: 200
  • 文献情報:
    Chung, Y. M.; Lee, S. Y.; Lin, Y. K.; Lin, Y. H.; ..., 2020, The high potential of a red-light submerged fermentation technique in the biofunctionality improvement of rambutan extracts

  • 備考:
  • 参照:
    PubMed
  • No.: 201
  • 文献情報:
    Tiemann, T. T.; Padma, A. M.; Sehic, E.; ..., 2020, Towards uterus tissue engineering: a comparative study of sheep uterus decellularisation

  • 備考:
  • 参照:
    PubMed
  • No.: 202
  • 文献情報:
    Fu, J.; Wang, M.; Vlaminck, I. De; Wang, Y., 2020, Thick pcl fibers improving host remodeling of pgs‐pcl composite grafts implanted in rat common carotid arteries

  • 備考:
  • 参照:
    PubMed
  • No.: 203
  • 文献情報:
    Hui, J.; Sharma, S.; Rajani, S.; Singh, A., 2020, The Specific Molecular Composition and Structural Arrangement of Eleutherodactylus Coqui Gular Skin Tissue Provide Its High Mechanical Compliance

  • 備考:
  • 参照:
    PubMed
  • No.: 204
  • 文献情報:
    Laker, L.; Dohmen, P. M.; Smit, F. E., 2020, The sequential effects of a multifactorial detergent based decellularization process on bovine pericardium

  • 備考:
  • 参照:
    PubMed
  • No.: 205
  • 文献情報:
    Griffin, K. J.; Simpson, K. R.; Beckers, C. M. L.; Newell, L. M.; ..., 2021, Transglutaminase 2 moderates the expansion of mouse abdominal aortic aneurysms

  • 備考:
  • 参照:
    PubMed
  • No.: 206
  • 文献情報:
    Song, M.; Tang, Z.; Liu, Y.; Xie, X.; Qi, X.; Wu, Q.; ..., 2021, Yak pericardium as an alternative biomaterial for transcatheter heart valves

  • 備考:
  • 参照:
    PubMed
  • No.: 207
  • 文献情報:
    Cathery, W.; Faulkner, A.; Jover, E.; ..., 2021, Umbilical cord pericytes provide a viable alternative to mesenchymal stem cells for neonatal vascular engineering

  • 備考:
  • 参照:
    PubMed
  • No.: 208
  • 文献情報:
    Brady, L.; Pai, S.; Iaquinto, J. M.; Wang, Y. N.; ..., 2021, The compressive, shear, biochemical, and histological characteristics of diabetic and non-diabetic plantar skin are minimally different

  • 備考:
  • 参照:
    PubMed
  • No.: 209
  • 文献情報:
    Galicka, A.; Sutkowska-Skolimowska, J., 2021, The beneficial effect of rosmarinic acid on benzophenone-3-induced alterations in human skin fibroblasts

  • 備考:
  • 参照:
    PubMed
  • No.: 210
  • 文献情報:
    Kim, S. N.; Lee, C. J.; Nam, J. H.; Choi, B.; ..., 2021, The effects of human bone marrow-derived mesenchymal stem cell conditioned media produced with fetal bovine serum or human platelet lysate on skin …

  • 備考:
  • 参照:
    PubMed
  • No.: 211
  • 文献情報:
    Badylak, S. F.; Fercana, G. R.; Gleason, T. G.; ..., 2022, Vascular extracellular matrix hydrogel

  • 備考:
  • 参照:
    PubMed
  • No.: 212
  • 文献情報:
    Badylak, S. F.; Phillippi, J. A.; Gleason, T. G.; ..., 2022, Vascular Extracellular Matrix Hydrogel

  • 備考:
  • 参照:
    PubMed
  • No.: 213
  • 文献情報:
    Saunders, S., 2022, Towards the Systematic Evaluation of Variable Modes of Mechanical Conditioning on the Compositional, Microstructural and Mechanical Properties of Engineered …

  • 備考:
  • 参照:
    PubMed
  • No.: 214
  • 文献情報:
    Panpho, P.; Yang, Y.; Davies, H. A.; ..., 2022, Time-dependent mechanical behaviour of the aortic chronic dissection flap

  • 備考:
  • 参照:
    PubMed
  • No.: 215
  • 文献情報:
    Xie, X.; Wu, Q.; Liu, Y.; Chen, C.; Chen, Z.; Xie, C.; ..., 2022, Vascular endothelial growth factor attenuates neointimal hyperplasia of decellularized small-diameter vascular grafts by modulating the local inflammatory …

  • 備考:
  • 参照:
    PubMed
  • No.: 216
  • 文献情報:
    Yoon, J.; Yoon, D.; Lee, H.; Lee, J. U.; Jo, S. Y.; Kym, D.; ..., 2022, Wound healing ability of acellular fish skin and bovine collagen grafts for split-thickness donor sites in burn patients: Characterization of acellular grafts and clinical …

  • 備考:
  • 参照:
    PubMed
  • No.: 217
  • 文献情報:
    Calle, E.; Niklason, L. E.; Petersen, T.; Gui, L., 2023, Tissue engineering of lung

  • 備考:
  • 参照:
    PubMed
  • No.: 218
  • 文献情報:
    Calle, E.; Niklason, L. E.; Petersen, T.; ..., 2023, Tissue engineering of lung

  • 備考:
  • 参照:
    PubMed
  • No.: 219
  • 文献情報:
    Ahn, J.; Sen, T.; Lee, D.; Kim, H.; Lee, J. Y.; ..., 2023, Uterus‐Derived Decellularized Extracellular Matrix‐Mediated Endometrial Regeneration and Fertility Enhancement

  • 備考:
  • 参照:
    PubMed
  • No.: 220
  • 文献情報:
    Dua, H. S.; Freitas, R.; Mohammed, I.; Ting, D. S. J.; ..., 2023, The pre-Descemet's layer (Dua's layer, also known as the Dua-Fine layer and the pre-posterior limiting lamina layer): Discovery, characterisation, clinical and …

  • 備考:
  • 参照:
    PubMed
  • No.: 221
  • 文献情報:
    Lee, H.; Chun, W.; Kim, G. H., 2023, Three-dimensional artificial skin construct bioprinted with a marine-based biocomposite

  • 備考:
  • 参照:
    PubMed
  • No.: 222
  • 文献情報:
    Brown, M.; Zhu, S.; Taylor, L.; Tabrizian, M.; ..., 2023, Unraveling the Relevance of Tissue‐Specific Decellularized Extracellular Matrix Hydrogels for Vocal Fold Regenerative Biomaterials: A Comprehensive Proteomic …

  • 備考:
  • 参照:
    PubMed
  • No.: 223
  • 文献情報:
    Tondato, S.; Moro, A.; Butt, S.; Todesco, M.; Sandrin, D.; ..., 2023, Tergitol Based Decellularization Protocol Improves the Prerequisites for Pulmonary Xenografts: Characterization and Biocompatibility Assessment. Polymers …

  • 備考:
  • 参照:
    PubMed
  • No.: 224
  • 文献情報:
    Liu, J.; Feng, Z.; Liu, P.; Fang, L.; Wang, X.; Lao, H.; ..., 2023, Transcriptome Analysis of Human Vascular Smooth Muscle Cells Cultured on a Polyglycolic Acid Mesh Scaffold

  • 備考:
  • 参照:
    PubMed
  • No.: 225
  • 文献情報:
    Tondato, S.; Moro, A.; Butt, S.; Todesco, M.; Sandrin, D.; ..., 2023, Tergitol Based Decellularization Protocol Improves the Prerequisites for Pulmonary Xenografts: Characterization and Biocompatibility Assessment

  • 備考:
  • 参照:
    PubMed
  • No.: 226
  • 文献情報:
    Maetzold, E. C.; Santillan, D. A.; Kenne, K. A.; ..., 2023, Urinary biomarkers and overactive bladder symptoms before and after prolapse surgery

  • 備考:
  • 参照:
    PubMed
  • No.: 227
  • 文献情報:
    Zhang, W.; Lu, W.; Yu, Q.; Liu, X.; Jiang, H., 2023, Upregulated desmin/integrin 硫1/MAPK axis promotes elastic cartilage regeneration with increased ECM mechanical strength

  • 備考:
  • 参照:
    PubMed
  • No.: 228
  • 文献情報:
    Lee, C. R.; Lee, Y. J.; Kwon, B. Y.; Lee, S. J.; Ryu, Y. H.; ..., 2023, Vessel-derived decellularized extracellular matrices (VdECM): novel bio-engineered materials for the Wound Healing

  • 備考:
  • 参照:
    PubMed
  • No.: 229
  • 文献情報:
    Capella-Monson鱈s, H.; Cramer, M.; Turner, N.; ..., 2023, The composition and mechanical properties of porcine placental ecm from three different breeds

  • 備考:
  • 参照:
    PubMed
  • No.: 230
  • 文献情報:
    Do, N. T.; Lee, S. Y.; Lee, Y. S.; Lee, T. G.; Son, J. G.; Kim, S. H., 2023, Time-sequential fibroblast-to-myofibroblast transition in elastin-variable 3D hydrogel environments mediated by calcium signaling

  • 備考:
  • 参照:
    PubMed
  • No.: 231
  • 文献情報:
    Do, N. T.; Lee, S. Y.; Lee, Y. S.; Shin, C. H.; Kim, D.; ..., 2023, Time-sequential fibroblast-to-myofibroblast transition in elastin-variable 3D hydrogel environments by collagen networks

  • 備考:
  • 参照:
    PubMed