Li Linqing, Mahara Atsushi, Tong Zhixiang, Levenson Eric A, McGann Christopher L, Jia Xinqiao, Yamaoka Tetsuji, Kiick Kristi L
Department of Materials Science and Engineering, University of Delaware, Newark, DE, 19716, USA.
Department of Biomedical Engineering, National Cerebral and Cardiovascular Center Research Institute, Fujishiro-dai Suita, Osaka, 565-8565, Japan.
Adv Healthc Mater. 2016 Jan 21;5(2):266-75. doi: 10.1002/adhm.201500411. Epub 2015 Dec 3.
The outstanding elasticity, excellent resilience at high-frequency, and hydrophilic capacity of natural resilin have motivated investigations of recombinant resilin-based biomaterials as a new class of bio-elastomers in the engineering of mechanically active tissues. Accordingly, here the comprehensive characterization of modular resilin-like polypeptide (RLP) hydrogels is presented and their suitability as a novel biomaterial for in vivo applications is introduced. Oscillatory rheology confirmed that a full suite of the RLPs can be rapidly cross-linked upon addition of the tris(hydroxymethyl phosphine) cross-linker, achieving similar in situ shear storage moduli (20 k ± 3.5 Pa) across various material compositions. Uniaxial stress relaxation tensile testing of hydrated RLP hydrogels under cyclic loading and unloading showed negligible stress reduction and hysteresis, superior reversible extensibility, and high resilience with Young's moduli of 30 ± 7.4 kPa. RLP hydrogels containing MMP-sensitive domains are susceptible to enzymatic degradation by matrix metalloproteinase-1 (MMP-1). Cell culture studies revealed that RLP-based hydrogels supported the attachment and spreading (2D) of human mesenchymal stem cells and did not activate cultured macrophages. Subcutaneous transplantation of RLP hydrogels in a rat model, which to our knowledge is the first such reported in vivo analysis of RLP-based hydrogels, illustrated that these materials do not elicit a significant inflammatory response, suggesting their potential as materials for tissue engineering applications with targets of mechanically demanding tissues such as vocal fold and cardiovascular tissues.
天然弹性蛋白出色的弹性、高频下优异的回弹性以及亲水性,促使人们对基于重组弹性蛋白的生物材料进行研究,将其作为一类新型生物弹性体用于机械活性组织工程。因此,本文对模块化类弹性蛋白多肽(RLP)水凝胶进行了全面表征,并介绍了其作为新型生物材料用于体内应用的适用性。振荡流变学证实,加入三(羟甲基膦)交联剂后,所有RLP均可快速交联,在各种材料组成中实现相似的原位剪切储能模量(20 k±3.5 Pa)。水合RLP水凝胶在循环加载和卸载下的单轴应力松弛拉伸测试显示,应力降低和滞后现象可忽略不计,具有优异的可逆延展性和高回弹性,杨氏模量为30±7.4 kPa。含有基质金属蛋白酶(MMP)敏感结构域的RLP水凝胶易被基质金属蛋白酶-1(MMP-1)酶解。细胞培养研究表明,基于RLP的水凝胶支持人间充质干细胞的附着和铺展(二维),且不会激活培养的巨噬细胞。在大鼠模型中对RLP水凝胶进行皮下移植(据我们所知,这是首次对基于RLP的水凝胶进行此类体内分析),结果表明这些材料不会引发明显的炎症反应,这表明它们有潜力作为组织工程应用材料,用于声带和心血管组织等对机械性能要求较高的组织。