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CS 蛋白聚糖硫酸化模体的生物多样性:在信息传递、控制细胞行为和组织形态发生中起作用的化学信使识别模块。

Biodiversity of CS-proteoglycan sulphation motifs: chemical messenger recognition modules with roles in information transfer, control of cellular behaviour and tissue morphogenesis.

机构信息

Bioimaging Research Hub, Cardiff School of Biosciences, Cardiff University, Cardiff CF10 3AX, Wales, U.K.

Graduate School of Life Science, Hokkaido University, Sapporo, Japan.

出版信息

Biochem J. 2018 Feb 9;475(3):587-620. doi: 10.1042/BCJ20170820.

Abstract

Chondroitin sulphate (CS) glycosaminoglycan chains on cell and extracellular matrix proteoglycans (PGs) can no longer be regarded as merely hydrodynamic space fillers. Overwhelming evidence over recent years indicates that sulphation motif sequences within the CS chain structure are a source of significant biological information to cells and their surrounding environment. CS sulphation motifs have been shown to interact with a wide variety of bioactive molecules, e.g. cytokines, growth factors, chemokines, morphogenetic proteins, enzymes and enzyme inhibitors, as well as structural components within the extracellular milieu. They are therefore capable of modulating a panoply of signalling pathways, thus controlling diverse cellular behaviours including proliferation, differentiation, migration and matrix synthesis. Consequently, through these motifs, CS PGs play significant roles in the maintenance of tissue homeostasis, morphogenesis, development, growth and disease. Here, we review (i) the biodiversity of CS PGs and their sulphation motif sequences and (ii) the current understanding of the signalling roles they play in regulating cellular behaviour during tissue development, growth, disease and repair.

摘要

硫酸软骨素(CS)糖胺聚糖链在细胞和细胞外基质蛋白聚糖(PGs)上不再仅仅被视为流体动力空间填充物。近年来,大量证据表明,CS 链结构中的硫酸化模体序列是细胞及其周围环境的重要生物信息来源。CS 硫酸化模体已被证明与多种生物活性分子相互作用,例如细胞因子、生长因子、趋化因子、形态发生蛋白、酶和酶抑制剂以及细胞外环境中的结构成分。因此,它们能够调节多种信号通路,从而控制包括增殖、分化、迁移和基质合成在内的各种细胞行为。因此,通过这些模体,CS PG 在维持组织内稳态、形态发生、发育、生长和疾病方面发挥着重要作用。在这里,我们回顾了(i)CS PG 及其硫酸化模体序列的生物多样性,以及(ii)它们在调节组织发育、生长、疾病和修复过程中细胞行为方面的信号作用的现有认识。

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