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模仿天然胶原蛋白的层次结构:迈向开发用于组织再生的理想支架材料

Mimicking the Hierarchical Organization of Natural Collagen: Toward the Development of Ideal Scaffolding Material for Tissue Regeneration.

作者信息

Salvatore Luca, Gallo Nunzia, Natali Maria Lucia, Terzi Alberta, Sannino Alessandro, Madaghiele Marta

机构信息

Department of Engineering for Innovation, University of Salento, Lecce, Italy.

Institute of Crystallography, National Research Council, Bari, Italy.

出版信息

Front Bioeng Biotechnol. 2021 Apr 27;9:644595. doi: 10.3389/fbioe.2021.644595. eCollection 2021.

Abstract

Biological materials found in living organisms, many of which are proteins, feature a complex hierarchical organization. Type I collagen, a fibrous structural protein ubiquitous in the mammalian body, provides a striking example of such a hierarchical material, with peculiar architectural features ranging from the amino acid sequence at the nanoscale (primary structure) up to the assembly of fibrils (quaternary structure) and fibers, with lengths of the order of microns. Collagen plays a dominant role in maintaining the biological and structural integrity of various tissues and organs, such as bone, skin, tendons, blood vessels, and cartilage. Thus, "artificial" collagen-based fibrous assemblies, endowed with appropriate structural properties, represent ideal substrates for the development of devices for tissue engineering applications. In recent years, with the ultimate goal of developing three-dimensional scaffolds with optimal bioactivity able to promote both regeneration and functional recovery of a damaged tissue, numerous studies focused on the capability to finely modulate the scaffold architecture at the microscale and the nanoscale in order to closely mimic the hierarchical features of the extracellular matrix and, in particular, the natural patterning of collagen. All of these studies clearly show that the accurate characterization of the collagen structure at the submolecular and supramolecular levels is pivotal to the understanding of the relationships between the nanostructural/microstructural properties of the fabricated scaffold and its macroscopic performance. Several studies also demonstrate that the selected processing, including any crosslinking and/or sterilization treatments, can strongly affect the architecture of collagen at various length scales. The aim of this review is to highlight the most recent findings on the development of collagen-based scaffolds with optimized properties for tissue engineering. The optimization of the scaffolds is particularly related to the modulation of the collagen architecture, which, in turn, impacts on the achieved bioactivity.

摘要

存在于生物体中的生物材料,其中许多是蛋白质,具有复杂的层次结构。I型胶原蛋白是一种在哺乳动物体内普遍存在的纤维结构蛋白,它为这种层次材料提供了一个显著的例子,具有从纳米尺度的氨基酸序列(一级结构)到原纤维(四级结构)和纤维的组装等独特的结构特征,纤维长度在微米量级。胶原蛋白在维持各种组织和器官(如骨骼、皮肤、肌腱、血管和软骨)的生物学和结构完整性方面起着主导作用。因此,具有适当结构特性的“人工”基于胶原蛋白的纤维组件,是用于组织工程应用的装置开发的理想基质。近年来,为了开发具有最佳生物活性、能够促进受损组织再生和功能恢复的三维支架这一最终目标,众多研究聚焦于在微观和纳米尺度上精细调节支架结构的能力,以便紧密模拟细胞外基质的层次特征,特别是胶原蛋白的自然图案化。所有这些研究清楚地表明,在亚分子和超分子水平上准确表征胶原蛋白结构对于理解所制备支架的纳米结构/微观结构性质与其宏观性能之间的关系至关重要。多项研究还表明,所选的加工过程,包括任何交联和/或灭菌处理,会在不同长度尺度上强烈影响胶原蛋白的结构。本综述的目的是突出关于开发具有优化性能用于组织工程的基于胶原蛋白的支架的最新研究结果。支架的优化特别涉及胶原蛋白结构的调节,而这反过来又会影响所实现的生物活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a7d/8112590/b37efab5ac3b/fbioe-09-644595-g001.jpg

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