Multiscale modelling of the extracellular matrix

Q1 Medicine
Hua Wong , Jean-Marc Crowet , Manuel Dauchez , Sylvie Ricard-Blum , Stéphanie Baud , Nicolas Belloy
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引用次数: 3

Abstract

The extracellular matrix is a complex three-dimensional network of molecules that provides cells with a complex microenvironment. The major constituents of the extracellular matrix such as collagen, elastin and associated proteins form supramolecular assemblies contributing to its physicochemical properties and organization. The structure of proteins and their supramolecular assemblies such as fibrils have been studied at the atomic level (e.g., by X-ray crystallography, Nuclear Magnetic Resonance and cryo-Electron Microscopy) or at the microscopic scale. However, many protein complexes are too large to be studied at the atomic level and too small to be studied by microscopy. Most extracellular matrix components fall into this intermediate scale, so-called the mesoscopic scale, preventing their detailed characterization. Simulation and modelling are some of the few powerful and promising approaches that can deepen our understanding of mesoscale systems. We have developed a set of modelling tools to study the self-organization of the extracellular matrix and large motion of macromolecules at the mesoscale level by taking advantage of the dynamics of articulated rigid bodies as a mean to study a larger range of motions at the cost of atomic resolution.

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细胞外基质的多尺度建模
细胞外基质是一个复杂的三维分子网络,为细胞提供了一个复杂的微环境。细胞外基质的主要成分,如胶原蛋白、弹性蛋白和相关蛋白,形成了有助于其物理化学性质和组织的超分子组合。蛋白质的结构及其超分子组合,如原纤维,已经在原子水平上(例如,通过x射线晶体学,核磁共振和冷冻电子显微镜)或在微观尺度上进行了研究。然而,许多蛋白质复合物太大,无法在原子水平上进行研究,又太小,无法通过显微镜进行研究。大多数细胞外基质成分属于这种中间尺度,即所谓的介观尺度,因此无法对其进行详细的表征。模拟和建模是少数几个强大而有前途的方法,可以加深我们对中尺度系统的理解。我们开发了一套建模工具来研究细胞外基质的自组织和大分子在中尺度水平上的大运动,利用铰接刚体的动力学作为研究更大范围运动的手段,以原子分辨率为代价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Matrix Biology Plus
Matrix Biology Plus Medicine-Histology
CiteScore
9.00
自引率
0.00%
发文量
25
审稿时长
105 days
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