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中性粒细胞跨内皮迁移热点:机制与意义。

Neutrophil transendothelial migration hotspots - mechanisms and implications.

机构信息

Molecular Cell Biology Lab, Dept. Plasma proteins, Molecular and Cellular Homeostasis, Sanquin Research and Landsteiner Laboratory, University of Amsterdam, Amsterdam 1066CX, The Netherlands.

Leeuwenhoek Centre for Advanced Microscopy (LCAM), Molecular Cytology section at Swammerdam Institute for Life Sciences (SILS) at University of Amsterdam, Amsterdam 1066CX, The Netherlands.

出版信息

J Cell Sci. 2021 Apr 1;134(7):jcs255653. doi: 10.1242/jcs.255653.

Abstract

During inflammation, leukocytes circulating in the blood stream exit the vasculature in a process called leukocyte transendothelial migration (TEM). The current paradigm of this process comprises several well-established steps, including rolling, adhesion, crawling, diapedesis and sub-endothelial crawling. Nowadays, the role of the endothelium in transmigration is increasingly appreciated. It has been established that leukocyte exit sites on the endothelium and in the pericyte layer are in fact not random but instead may be specifically recognized by migrating leukocytes. Here, we review the concept of transmigration hotspots, specific sites in the endothelial and pericyte layer where most transmigration events take place. Chemokine cues, adhesion molecules and membrane protrusions as well as physical factors, such as endothelial junction stability, substrate stiffness, the presence of pericytes and basement membrane composition, may all contribute to local hotspot formation to facilitate leukocytes exiting the vasculature. In this Review, we discuss the biological relevance of such hotspots and put forward multiple mechanisms and factors that determine a functional TEM hotspot.

摘要

在炎症过程中,循环血液中的白细胞通过称为白细胞跨内皮迁移(TEM)的过程离开血管。目前,该过程的范例包括几个已确立的步骤,包括滚动、粘附、爬行、穿内皮迁移和亚内皮爬行。如今,内皮在迁移中的作用越来越受到重视。已经确定,内皮和周细胞层上的白细胞穿出部位实际上不是随机的,而是可能被迁移的白细胞特异性识别。在这里,我们回顾了迁移热点的概念,即在内皮和周细胞层中大多数迁移事件发生的特定部位。趋化因子线索、粘附分子和膜突起以及物理因素,如内皮连接稳定性、基底膜组成,可能有助于局部热点形成,从而促进白细胞离开血管。在这篇综述中,我们讨论了这种热点的生物学相关性,并提出了多个决定功能性 TEM 热点的机制和因素。

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