Walters B D, Stegemann J P
Department of Biomedical Engineering, University of Michigan, 1101 Beal Avenue, Ann Arbor, MI 48109, USA.
Department of Biomedical Engineering, University of Michigan, 1101 Beal Avenue, Ann Arbor, MI 48109, USA.
Acta Biomater. 2014 Apr;10(4):1488-501. doi: 10.1016/j.actbio.2013.08.038. Epub 2013 Sep 6.
Collagen type I is a widely used natural biomaterial that has found utility in a variety of biological and medical applications. Its well-characterized structure and role as an extracellular matrix protein make it a highly relevant material for controlling cell function and mimicking tissue properties. Collagen type I is abundant in a number of tissues, and can be isolated as a purified protein. This review focuses on hydrogel biomaterials made by reconstituting collagen type I from a solubilized form, with an emphasis on in vitro studies in which collagen structure can be controlled. The hierarchical structure of collagen from the nanoscale to the macroscale is described, with an emphasis on how structure is related to function across scales. Methods of reconstituting collagen into hydrogel materials are presented, including molding of macroscopic constructs, creation of microscale modules and electrospinning of nanoscale fibers. The modification of collagen biomaterials to achieve the desired structures and functions is also addressed, with particular emphasis on mechanical control of collagen structure, creation of collagen composite materials and crosslinking of collagenous matrices. Biomaterials scientists have made remarkable progress in rationally designing collagen-based biomaterials and in applying them both to the study of biology and for therapeutic benefit. This broad review illustrates recent examples of techniques used to control collagen structure and thereby to direct its biological and mechanical functions.
I型胶原蛋白是一种广泛应用的天然生物材料,已在多种生物学和医学应用中发挥作用。其特征明确的结构以及作为细胞外基质蛋白的作用,使其成为控制细胞功能和模拟组织特性的高度相关材料。I型胶原蛋白在许多组织中含量丰富,并且可以作为纯化蛋白分离出来。本综述重点关注通过将溶解形式的I型胶原蛋白重构而制成的水凝胶生物材料,重点是可以控制胶原蛋白结构的体外研究。描述了从纳米级到宏观级的胶原蛋白层次结构,重点是结构如何在不同尺度上与功能相关。介绍了将胶原蛋白重构为水凝胶材料的方法,包括宏观构建体的成型、微观模块的创建以及纳米级纤维的静电纺丝。还讨论了对胶原蛋白生物材料进行改性以实现所需结构和功能的方法,特别强调了对胶原蛋白结构的机械控制、胶原蛋白复合材料的创建以及胶原基质的交联。生物材料科学家在合理设计基于胶原蛋白的生物材料并将其应用于生物学研究和治疗益处方面取得了显著进展。这篇广泛的综述阐述了用于控制胶原蛋白结构从而指导其生物学和机械功能的技术的近期实例。