Heparanase as active player in endothelial glycocalyx remodeling

Q1 Medicine Matrix Biology Plus Pub Date : 2022-02-01 DOI:10.1016/j.mbplus.2021.100097
Valentina Masola , Nicola Greco , Giovanni Gambaro , Marco Franchi , Maurizio Onisto
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引用次数: 7

Abstract

The surface of all animal cells is coated with a layer of carbohydrates linked in various ways to the outer side of the plasma membrane. These carbohydrates are mainly bound to proteins in the form of glycoproteins and proteoglycans and together with the glycolipids constitute the so-called glycocalyx. In particular, the endothelial glycocalyx that covers the luminal layer of the endothelium is composed of glycosaminoglycans (heparan sulphate -HS and hyaluronic acid -HA), proteoglycans (syndecans and glypicans) and adsorbed plasma proteins. Thanks to its ability to absorb water, this structure contributes to making the surface of the vessels slippery but at the same time acts by modulating the mechano-transduction of the vessels, the vascular permeability and the adhesion of leukocytes in thus regulating several physiological and pathological events. Among the various enzymes involved in the degradation of the glycocalyx, heparanase (HPSE) has been shown to be particularly involved. This enzyme is responsible for the cutting of heparan sulfate (HS) chains at the level of the proteoglycans of the endothelial glycocalyx whose dysfunction appears to have a role in organ fibrosis, sepsis and viral infection.

In this mini-review, we describe the mechanisms by which HPSE contributes to glycocalyx remodeling and then examine the role of glycocalyx degradation in the development of pathological conditions and pharmacological strategies to preserve glycocalyx during disease pathogenesis.

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肝素酶在内皮糖萼重构中的积极作用
所有动物细胞的表面都包裹着一层碳水化合物,碳水化合物以各种方式与质膜的外侧相连。这些碳水化合物主要以糖蛋白和蛋白聚糖的形式与蛋白质结合,并与糖脂一起构成所谓的糖萼。特别是覆盖内皮腔层的内皮糖萼由糖胺聚糖(硫酸肝素-HS和透明质酸-HA)、蛋白聚糖(syndecans和glypicans)和吸附的血浆蛋白组成。由于其吸收水分的能力,这种结构有助于使血管表面光滑,但同时通过调节血管的机械转导、血管通透性和白细胞的粘附来调节一些生理和病理事件。在参与糖萼降解的各种酶中,肝素酶(HPSE)已被证明是特别参与的。这种酶负责在内皮糖萼蛋白聚糖水平上切割硫酸肝素(HS)链,其功能障碍似乎在器官纤维化、脓毒症和病毒感染中起作用。在这篇综述中,我们描述了HPSE促进糖萼重塑的机制,然后研究了糖萼降解在病理条件发展中的作用以及在疾病发病过程中保护糖萼的药理策略。
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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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