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肝缺血/再灌注损伤中糖萼降解的机制及生理相关性。

The mechanisms and physiological relevance of glycocalyx degradation in hepatic ischemia/reperfusion injury.

作者信息

van Golen Rowan F, Reiniers Megan J, Vrisekoop Nienke, Zuurbier Coert J, Olthof Pim B, van Rheenen Jacco, van Gulik Thomas M, Parsons Barry J, Heger Michal

机构信息

1 Department of Surgery, Surgical Laboratory, Academic Medical Center, University of Amsterdam , Amsterdam, The Netherlands .

出版信息

Antioxid Redox Signal. 2014 Sep 1;21(7):1098-118. doi: 10.1089/ars.2013.5751. Epub 2014 Feb 19.

Abstract

SIGNIFICANCE

Hepatic ischemia/reperfusion (I/R) injury is an inevitable side effect of major liver surgery that can culminate in liver failure. The bulk of I/R-induced liver injury results from an overproduction of reactive oxygen and nitrogen species (ROS/RNS), which inflict both parenchymal and microcirculatory damage. A structure that is particularly prone to oxidative attack and modification is the glycocalyx (GCX), a meshwork of proteoglycans and glycosaminoglycans (GAGs) that covers the lumenal endothelial surface and safeguards microvascular homeostasis. ROS/RNS-mediated degradation of the GCX may exacerbate I/R injury by, for example, inducing vasoconstriction, facilitating leukocyte adherence, and directly activating innate immune cells.

RECENT ADVANCES

Preliminary experiments revealed that hepatic sinusoids contain a functional GCX that is damaged during murine hepatic I/R and major liver surgery in patients. There are three ROS that mediate GCX degradation: hydroxyl radicals, carbonate radical anions, and hypochlorous acid (HOCl). HOCl converts GAGs in the GCX to GAG chloramides that become site-specific targets for oxidizing and reducing species and are more efficiently fragmented than the parent molecules. In addition to ROS/RNS, the GAG-degrading enzyme heparanase acts at the endothelial surface to shed the GCX.

CRITICAL ISSUES

The GCX seems to be degraded during major liver surgery, but the underlying cause remains ill-defined.

FUTURE DIRECTIONS

The relative contribution of the different ROS and RNS intermediates to GCX degradation in vivo, the immunogenic potential of the shed GCX fragments, and the role of heparanase in liver I/R injury all warrant further investigation.

摘要

意义

肝缺血/再灌注(I/R)损伤是大肝手术不可避免的副作用,最终可能导致肝衰竭。I/R诱导的肝损伤主要源于活性氧和氮物种(ROS/RNS)的过度产生,这会对实质和微循环造成损害。一种特别容易受到氧化攻击和修饰的结构是糖萼(GCX),它是由蛋白聚糖和糖胺聚糖(GAGs)组成的网络,覆盖管腔内内皮表面并维持微血管稳态。ROS/RNS介导的GCX降解可能会加剧I/R损伤,例如通过诱导血管收缩、促进白细胞黏附以及直接激活先天免疫细胞。

最新进展

初步实验表明,肝血窦含有功能性GCX,在小鼠肝I/R和患者的大肝手术期间会受到损伤。有三种ROS介导GCX降解:羟基自由基、碳酸根阴离子和次氯酸(HOCl)。HOCl将GCX中的GAGs转化为GAG氯酰胺,后者成为氧化和还原物种的位点特异性靶标,并且比母体分子更有效地断裂。除了ROS/RNS外,GAG降解酶乙酰肝素酶在内皮表面起作用以脱落GCX。

关键问题

在大肝手术期间GCX似乎会降解,但其根本原因仍不明确。

未来方向

不同ROS和RNS中间体在体内对GCX降解的相对贡献、脱落的GCX片段的免疫原性潜力以及乙酰肝素酶在肝I/R损伤中的作用都值得进一步研究。

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