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用于模拟细胞外基质的硫醇-烯水凝胶的制备 |
苏晨文1, 张婷玥1, 郭丽伟1, 李乐1, 杨苹2, 刘艳秋1( ) |
1.西南交通大学生命科学与工程学院 成都 610031 2.西南交通大学材料科学与工程学院 成都 610031 |
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Preparation of Thiol-ene Hydrogels for Extracellular Matrix Simulation |
SU Chenwen1, ZHANG Tingyue1, GUO Liwei1, LI Le1, YANG Ping2, LIU Yanqiu1( ) |
1.School of Life Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China 2.School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China |
引用本文:
苏晨文, 张婷玥, 郭丽伟, 李乐, 杨苹, 刘艳秋. 用于模拟细胞外基质的硫醇-烯水凝胶的制备[J]. 材料研究学报, 2021, 35(12): 903-910.
Chenwen SU,
Tingyue ZHANG,
Liwei GUO,
Le LI,
Ping YANG,
Yanqiu LIU.
Preparation of Thiol-ene Hydrogels for Extracellular Matrix Simulation[J]. Chinese Journal of Materials Research, 2021, 35(12): 903-910.
1 |
Naahidi S, Jafari M, Logan M, et al. Biocompatibility of hydrogel-based scaffolds for tissue engineering applications [J]. Biotechnol. Adv., 2017, 35: 530
|
2 |
Ding L R, Li J W, Wu C R, et al. A self-assembled RNA-triple helix hydrogel drug delivery system targeting triple-negative breast cancer [J]. J. Mater. Chem., 2020, 8B: 3527
|
3 |
Zhang A D, Liu Y, Qin D, et al. Research status of self-healing hydrogel for wound management: A review [J]. Int. J. Biol. Macromol., 2020, 164: 2108
|
4 |
Sackett S D, Tremmel D M, Ma F F, et al. Extracellular matrix scaffold and hydrogel derived from decellularized and delipidized human pancreas [J]. Sci. Rep., 2018, 8: 10452
|
5 |
Giobbe G G, Crowley C, Luni C, et al. Extracellular matrix hydrogel derived from decellularized tissues enables endodermal organoid culture [J]. Nat. Commun., 2019, 10: 5658
|
6 |
Unal A Z, West J L. Synthetic ECM: Bioactive synthetic hydrogels for 3D tissue engineering [J]. Bioconjug. Chem., 2020, 31: 2253
|
7 |
Viji Babu P K, Rianna C, Mirastschijski U, et al. Nano-mechanical mapping of interdependent cell and ECM mechanics by AFM force spectroscopy [J]. Sci. Rep., 2019, 9: 12317
|
8 |
Buxboim A, Ivanovska I L, Discher D E. Matrix elasticity, cytoskeletal forces and physics of the nucleus: how deeply do cells 'feel' outside and in? [J]. J. Cell. Sci., 2010, 123: 297
|
9 |
Duval K, Grover H, Han L H, et al. Modeling physiological events in 2D vs. 3D cell culture [J]. Physiology, 2017, 32: 266
|
10 |
Padhi A, Nain A S. ECM in differentiation: A review of matrix structure, composition and mechanical properties [J]. Ann. Biomed. Eng., 2020, 48: 1071
|
11 |
Xia T T, Liu W Q, Yang L. A review of gradient stiffness hydrogels used in tissue engineering and regenerative medicine [J]. J. Biomed. Mater. Res., 2017, 105A: 1799
|
12 |
Ding X C, Wang Y D. Weak bond-based injectable and stimuli responsive hydrogels for biomedical applications [J]. J. Mater. Chem., 2017, 5B: 887
|
13 |
Vats K, Marsh G, Harding K, et al. Nanoscale physicochemical properties of chain- and step-growth polymerized PEG hydrogels affect cell-material interactions [J]. J. Biomed. Mater. Res., 2017, 105A: 1112
|
14 |
Xu Z H, Bratlie K M. Click chemistry and material selection for in situ fabrication of hydrogels in tissue engineering applications [J]. ACS Biomater. Sci. Eng., 2018, 4: 2276
|
15 |
Devalliere J, Chen Y B, Dooley K, et al. Improving functional re-endothelialization of acellular liver scaffold using REDV cell-binding domain [J]. Acta Biomater., 2018, 78: 151
|
16 |
Jivan F, Yegappan R, Pearce H, et al. Sequential thiol–ene and tetrazine click reactions for the polymerization and functionalization of hydrogel microparticles [J]. Biomacromolecules, 2016, 17: 3516
|
17 |
Masood N, Ahmed R, Tariq M, et al. Silver nanoparticle impregnated chitosan-PEG hydrogel enhances wound healing in diabetes induced rabbits [J]. Int. J. Pharm., 2019, 559: 23
|
18 |
Liu Y Y, Cai Z X, Sheng L, et al. Structure-property of crosslinked chitosan/silica composite films modified by genipin and glutaraldehyde under alkaline conditions [J]. Carbohydr. Polym., 2019, 215: 348
|
19 |
Ding Y H, Floren M, Tan W. High-throughput screening of vascular endothelium-destructive or protective microenvironments: Cooperative actions of extracellular matrix composition, stiffness, and structure [J]. Adv. Healthc. Mater., 2017, 6: 1601426
|
20 |
Wang Y M, Wang J, Yuan Z Y, et al. Chitosan cross-linked poly(acrylic acid) hydrogels: Drug release control and mechanism [J]. Colloids Surf., 2017, 152B: 252
|
21 |
Shih H, Liu H Y, Lin C C. Improving gelation efficiency and cytocompatibility of visible light polymerized thiol-norbornene hydrogels via addition of soluble tyrosine [J]. Biomater. Sci., 2017, 5: 589
|
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