Department of Medical Devices, National Institute of Pharmaceutical Education and Research, Opposite Air Force Station, Palaj, Gandhinagar, Gujarat 382355, India.
ACS Biomater Sci Eng. 2020 Feb 10;6(2):779-797. doi: 10.1021/acsbiomaterials.9b01225. Epub 2020 Jan 14.
Aligned tissue architecture is a basic proviso for several organs and tissues like intervertebral discs, tendons, ligaments, muscles, and neurons, which comprises type-I collagen as an eminent extracellular matrix (ECM) protein. Exploiting type-I collagen for the biofabrication of aligned constructs via different approaches is becoming apparent, as it comprises a major fraction of connective tissue, exhibits abundance in ECM, and displays poor antigenicity and immunogenicity, along-with the ease of remodelling adaptability. Collagen hydrogels or composite scaffolds with uniaxial fibril alignment or unidirectional pore architecture having different sizes and densities are being fabricated using electrical, mechanical, and freeze-drying processes which are applicable for tissue engineering and regenerative purposes. This review focuses on several multifarious approaches employed to fabricate anisotropic structures of type-I collagen which influences fibril alignment, pore architecture, stiffness anisotropy, and enhanced mechanical strength and mimics the tissue native microenvironment ushering cell niches to proliferate and differentiate into tissue specific lineages.
组织架构的有序排列是椎间盘、肌腱、韧带、肌肉和神经元等多种器官和组织的基本前提,其中包括作为主要细胞外基质 (ECM) 蛋白的 I 型胶原。通过不同方法利用 I 型胶原来生物制造有序结构变得越来越明显,因为它构成了结缔组织的主要部分,在 ECM 中含量丰富,并且具有低抗原性和免疫原性,以及易于重塑适应性。使用电、机械和冷冻干燥工艺制造具有各向异性纤维排列或各向异性孔结构的胶原水凝胶或复合支架,其大小和密度不同,适用于组织工程和再生目的。本综述重点介绍了几种用于制造影响纤维排列、孔结构、各向异性刚度和增强机械强度的 I 型胶原各向异性结构的方法,并模拟了组织天然微环境,为细胞龛增殖和分化为组织特异性谱系创造了条件。