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棘皮动物韧带的生物化学和力学状态之间的相关性:一种可变化学胶原结构。

Correlations between the biochemistry and mechanical states of a sea-urchin ligament: a mutable collagenous structure.

机构信息

INEB-Instituto de Engenharia Biomédica, Universidade do Porto, Rua do Campo Alegre 823, 4150-180, Porto, Portugal.

出版信息

Biointerphases. 2012 Dec;7(1-4):38. doi: 10.1007/s13758-012-0038-6. Epub 2012 Jun 15.

Abstract

Mutable collagenous tissues (MCTs) of echinoderms can be regarded as intelligent and dynamic biomaterials, due to their ability to reversibly change their mechanical properties in a short physiological time span. This mutability phenomenon is nervously mediated and involves secreted factors of the specialized 'juxtaligamental' cells, which, when released into the extracellular matrix (ECM), change the cohesive forces between collagen fibrils. MCTs exist in nature in several forms, including some associated with echinoderm autotomy mechanisms. Since the molecular mechanism of mutability is still incompletely understood, the aim of this work was to provide a detailed biochemical analysis of a typical mutable collagenous structure and to identify possible correlations between its biochemistry and mechanical states. A better understanding of the mutability phenomena is likely to provide a unique opportunity to develop new concepts that can be applied in the design of dynamic biomaterial for tissue regeneration, leading to new strategies in regenerative medicine. The MCT model used was the compass depressor ligament (CDL) of a sea urchin (Paracentrotus lividus), which was analyzed in different mechanical states, mimicking the mutability phenomenon. Spectroscopic techniques, namely Fourier transform infrared (FT-IR) and confocal Raman microscopy, were used to identify the specific molecular components that contribute to the CDL biochemical microenvironment and to investigate the possibility that remodelling/synthesis of new ECM components occurs during the mutability phenomenon by analogy with events during pregnancy in the uterine cervix of mammals (which also consists mainly of mechanically adaptable connective tissues). The results demonstrate that CDL ECM includes collagen with biochemical similarities to mammalian type I collagen, as well as sulphated glycosaminoglycans (GAGs). CDL mutability seems to involve a molecular rearrangement of the ECM, without synthesis of new ECM components. Although there were no significant biochemical differences between CDLs in the various mechanical states were observed. However, subtle adjustments in tissue hydration seemed to occur, particularly during stiffening.

摘要

棘皮动物的可变性胶原组织(MCT)可以被视为智能和动态生物材料,因为它们能够在短的生理时间内可逆地改变其机械性能。这种可变性现象是由神经介导的,涉及专门的“毗邻”细胞分泌的因子,当这些因子释放到细胞外基质(ECM)中时,会改变胶原纤维之间的粘合力。MCT 在自然界中存在多种形式,包括一些与棘皮动物自切机制相关的形式。由于可变性的分子机制仍不完全清楚,本工作的目的是对典型的可变性胶原结构进行详细的生化分析,并确定其生物化学和机械状态之间可能存在的相关性。更好地了解可变性现象可能为开发可应用于组织再生的动态生物材料的新概念提供独特的机会,从而为再生医学带来新的策略。所使用的 MCT 模型是一种海胆(Paracentrotus lividus)的罗盘压韧带(CDL),它在不同的机械状态下进行了分析,模拟了可变性现象。使用光谱技术,即傅里叶变换红外(FT-IR)和共焦拉曼显微镜,来鉴定对 CDL 生化微环境有贡献的特定分子成分,并研究在可变性现象期间是否有可能重塑/合成新的 ECM 成分,这与哺乳动物子宫颈在怀孕期间的事件类似(其也主要由机械适应性结缔组织组成)。结果表明,CDL ECM 包括与哺乳动物 I 型胶原具有生化相似性的胶原,以及硫酸化糖胺聚糖(GAG)。CDL 的可变性似乎涉及 ECM 的分子重排,而不涉及新 ECM 成分的合成。尽管在不同机械状态下的 CDL 之间没有观察到明显的生化差异。然而,组织水合似乎发生了微妙的调整,特别是在变硬过程中。

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