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Advances in biomimetic regeneration of elastic matrix structures

机译:弹性基质结构仿生再生研究进展

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Elastin is a vital component of the extracellular matrix, providing soft connective tissues with the property of elastic recoil following deformation and regulating the cellular response via biomechanical transduction to maintain tissue homeostasis. The limited ability of most adult cells to synthesize elastin precursors and assemble them into mature crosslinked structures has hindered the development of functional tissue-engineered constructs that exhibit the structure and biomechanics of normal native elastic tissues in the body. In diseased tissues, the chronic overexpression of proteolytic enzymes can cause significant matrix degradation, to further limit the accumulation and quality (e.g., fiber formation) of newly deposited elastic matrix. This review provides an overview of the role and importance of elastin and elastic matrix in soft tissues, the challenges to elastic matrix generation in vitro and to regenerative elastic matrix repair in vivo, current biomolecular strategies to enhance elastin deposition and matrix assembly, and the need to concurrently inhibit proteolytic matrix disruption for improving the quantity and quality of elastogenesis. The review further presents biomaterial-based options using scaffolds and nanocarriers for spatio-temporal control over the presentation and release of these biomolecules, to enable biomimetic assembly of clinically relevant native elastic matrix-like superstructures. Finally, this review provides an overview of recent advances and prospects for the application of these strategies to regenerating tissue-type specific elastic matrix structures and superstructures.
机译:弹性蛋白是细胞外基质的重要组成部分,为变形的结缔组织提供变形后具有弹性后坐力的特性,并通过生物力学转导调节细胞反应以维持组织的动态平衡。大多数成年细胞合成弹性蛋白前体并将它们组装成成熟的交联结构的能力有限,这阻碍了功能组织工程化构建体的发展,这些构建体表现出体内正常天然弹性组织的结构和生物力学。在患病的组织中,蛋白水解酶的长期过度表达可引起显着的基质降解,从而进一步限制了新沉积的弹性基质的积累和质量(例如,纤维形成)。这篇综述概述了弹性蛋白和弹性基质在软组织中的作用和重要性,体外弹性基质产生和体内再生弹性基质修复的挑战,当前增强弹性蛋白沉积和基质组装的生物分子策略以及需要同时抑制蛋白水解基质破坏,以提高弹性发生的数量和质量。审查进一步提出了基于生物材料的选择,使用支架和纳米载体对这些生物分子的表达和释放进行时空控制,以实现临床相关的天然弹性基质样超结构的仿生组装。最后,本综述概述了这些策略在再生组织型特定弹性基质结构和上部结构中的应用的最新进展和前景。

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