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纳米尺度胶原结构-功能失调破坏力学稳态并介导肺纤维化。

Nanoscale dysregulation of collagen structure-function disrupts mechano-homeostasis and mediates pulmonary fibrosis.

机构信息

NIHR Southampton Biomedical Research Centre, Clinical and Experimental Sciences, Faculty of Medicine, University of Southampton, Southampton, United Kingdom.

Institute for Lightweight Design and Structural Biomechanics, TU Wien, Getreidemarkt, Austria.

出版信息

Elife. 2018 Jul 3;7:e36354. doi: 10.7554/eLife.36354.

Abstract

Matrix stiffening with downstream activation of mechanosensitive pathways is strongly implicated in progressive fibrosis; however, pathologic changes in extracellular matrix (ECM) that initiate mechano-homeostasis dysregulation are not defined in human disease. By integrated multiscale biomechanical and biological analyses of idiopathic pulmonary fibrosis lung tissue, we identify that increased tissue stiffness is a function of dysregulated post-translational collagen cross-linking rather than any collagen concentration increase whilst at the nanometre-scale collagen fibrils are structurally and functionally abnormal with increased stiffness, reduced swelling ratio, and reduced diameter. In ex vivo and animal models of lung fibrosis, dual inhibition of lysyl oxidase-like (LOXL) 2 and LOXL3 was sufficient to normalise collagen fibrillogenesis, reduce tissue stiffness, and improve lung function in vivo. Thus, in human fibrosis, altered collagen architecture is a key determinant of abnormal ECM structure-function, and inhibition of pyridinoline cross-linking can maintain mechano-homeostasis to limit the self-sustaining effects of ECM on progressive fibrosis.

摘要

基质僵硬与下游机械敏感途径的激活强烈提示与进行性纤维化有关;然而,在人类疾病中,启动机械稳态失调的细胞外基质 (ECM) 病理变化尚未确定。通过对特发性肺纤维化肺组织进行综合多尺度生物力学和生物学分析,我们发现组织僵硬的增加是由于翻译后胶原交联失调的功能,而不是任何胶原浓度的增加,而在纳米尺度上胶原纤维表现出结构和功能异常,表现为僵硬增加、肿胀比降低和直径减小。在肺纤维化的离体和动物模型中,赖氨酰氧化酶样 (LOXL) 2 和 LOXL3 的双重抑制足以使胶原原纤维形成正常化,降低组织僵硬度,并改善体内肺功能。因此,在人类纤维化中,胶原结构的改变是 ECM 结构-功能异常的关键决定因素,抑制吡啶酚交联可以维持机械稳态,限制 ECM 对进行性纤维化的自我维持效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a419/6029847/359d23980d30/elife-36354-fig1.jpg

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