Kutty Jaishankar K, Webb Ken
Department of Bioengineering, MicroEnvironmental Engineering Laboratory, Clemson University, 501 Rhodes Research Center, Clemson, SC 29634, USA.
J Biomater Sci Polym Ed. 2009;20(5-6):737-56. doi: 10.1163/156856209X426763.
Vocal fold injury commonly leads to reduced vocal quality due to scarring-induced alterations in matrix composition and tissue biomechanics. The long-term hypothesis motivating our work is that rapid restoration of phonation and the associated dynamic mechanical environment will reduce scarring and promote regenerative healing. Toward this end, the objective of this study was to develop mechanomimetic, degradable hydrogels approximating the viscoelastic properties of the vocal ligament and mucosa that may be photopolymerized in situ to restore structural integrity to vocal fold tissues. The tensile and rheological properties of hydrogels (targeting the vocal ligament and mucosa, respectively) were varied as a function of macromer concentration. PEG diacrylate-based hydrogels exhibited linear stress-strain response and elastic modulus consistent with the properties of the vocal ligament at low strains (0-15%), but did not replicate the non-linear behavior observed in native tissue at higher strains. Methacrylated hyaluronic acid hydrogels displayed dynamic viscosity consistent with native vocal mucosa, while elastic shear moduli values were several-fold higher. Cell culture studies indicated that both hydrogels supported spreading, proliferation and collagen/proteoglycan matrix deposition by encapsulated fibroblasts throughout the 3D network.
声带损伤通常会因瘢痕形成导致基质成分和组织生物力学改变,进而致使嗓音质量下降。推动我们开展此项工作的长期假设是,快速恢复发声及相关的动态力学环境将减少瘢痕形成并促进再生愈合。为此,本研究的目的是开发模拟声带和黏膜黏弹性特性的机械仿生、可降解水凝胶,这种水凝胶可原位光聚合,以恢复声带组织的结构完整性。水凝胶(分别针对声带和黏膜)的拉伸和流变特性随大分子单体浓度而变化。聚乙二醇二丙烯酸酯基水凝胶在低应变(0 - 15%)时表现出与声带特性一致的线性应力 - 应变响应和弹性模量,但在较高应变时未重现天然组织中观察到的非线性行为。甲基丙烯酸化透明质酸水凝胶表现出与天然声带黏膜一致的动态粘度,而弹性剪切模量值则高出几倍。细胞培养研究表明,两种水凝胶均支持包封的成纤维细胞在整个三维网络中铺展、增殖以及胶原/蛋白聚糖基质沉积。