Matritecture: Mapping the extracellular matrix architecture during health and disease

Q1 Medicine
Raphael Reuten , Alejandro E. Mayorca-Guiliani , Janine Terra Erler
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引用次数: 3

Abstract

All cells in multicellular organisms are housed in the extracellular matrix (ECM), an acellular edifice built up by more than a thousand proteins and glycans. Cells engage in a reciprocal relationship with the ECM; they build, inhabit, maintain, and remodel the ECM, while, in turn, the ECM regulates their behavior. The homeostatic balance of cell-ECM interactions can be lost, due to ageing, irritants or diseases, which results in aberrant cell behavior. The ECM can suppress or promote disease progression, depending on the information relayed to cells. Instructions come in the form of biochemical (e.g., composition), biophysical (e.g., stiffness), and topographical (e.g., structure) cues. While advances have been made in many areas, we only have a very limited grasp of ECM topography. A detailed atlas deciphering the spatiotemporal arrangement of all ECM proteins is lacking. We feel that such an extracellular matrix architecture (matritecture) atlas should be a priority goal for ECM research. In this commentary, we will discuss the need to resolve the spatiotemporal matritecture to identify potential disease triggers and therapeutic targets and present strategies to address this goal. Such a detailed matritecture atlas will not only identify disease-specific ECM structures but may also guide future strategies to restructure disease-related ECM patterns reverting to a normal pattern.

基质:绘制健康和疾病期间的细胞外基质结构
多细胞生物中的所有细胞都被安置在细胞外基质(ECM)中,这是一种由一千多种蛋白质和聚糖组成的非细胞结构。细胞与ECM相互作用;它们建造、居住、维护和改造ECM,而ECM反过来又调节它们的行为。由于衰老、刺激或疾病,细胞- ecm相互作用的稳态平衡可能会丢失,从而导致异常的细胞行为。ECM可以抑制或促进疾病进展,这取决于传递给细胞的信息。指令以生物化学(如成分)、生物物理(如硬度)和地形(如结构)线索的形式出现。虽然在许多领域取得了进展,但我们对ECM地形的掌握非常有限。一个详细的图谱破译所有ECM蛋白的时空安排是缺乏的。我们认为这种细胞外基质结构(基质)图谱应该是ECM研究的优先目标。在这篇评论中,我们将讨论解决时空结构的必要性,以确定潜在的疾病诱因和治疗靶点,并提出解决这一目标的策略。这种详细的结构图谱不仅可以识别疾病特异性的ECM结构,还可以指导未来的策略,以重组与疾病相关的ECM模式,使其恢复到正常模式。
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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