Eppur si muove: the dynamic brain pericyte.

IF 6.2 1区 医学 Q1 NEUROSCIENCES
Imola Wilhelm, Fanni Győri, Tamás Dudás, Valentina Nagy, Tejal Shreeya, Mónika Krecsmarik, Attila E Farkas, Csilla Fazakas, István A Krizbai
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引用次数: 0

Abstract

Background: Brain pericytes, the mural cells of cerebral microvessels, were long regarded as controversial, mainly due to their morphological and functional heterogeneity, plasticity, and variable expression of alpha-smooth muscle actin (α-SMA). However, they have recently emerged as a focal point in neuroscience research owing to their critical roles in regulating the blood-brain barrier (BBB), neuroinflammation, cerebral blood flow (CBF), and angiogenesis. In particular, the regulation of CBF and angiogenesis involves highly dynamic processes such as contraction and migration. By converting chemical energy into mechanical work, motor proteins, like myosin-through their interactions with intracellular filaments, primarily actin-play a crucial role in these processes.

Main body: In this review, we describe the contractile elements of pericytes, highlighting the relevance of α-SMA and myosin II isoforms containing the Myh11 and Myh9 heavy chains. In addition, we discuss recent advances in understanding how distinct pericyte subtypes contribute to mechanical force generation during the regulation of vessel diameter, pericyte migration, and the dynamic remodelling of their cellular processes. Furthermore, we highlight how ensheathing pericytes, which envelop the initial branches of the capillary bed and express high levels of α-SMA, initiate robust vasorelaxation during neurovascular coupling. In contrast, α-SMA-low capillary pericytes regulate basal vascular tone but also actively sense and respond to local glucose levels and neuronal activity. While ensheathing pericytes play a central role in sustained vasoconstriction following ischaemia, capillary pericytes are primarily responsible for secondary vasoconstrictive events during stroke.

Conclusions: Taken together, pericytes are dynamic cells capable of exerting diverse forms of mechanical force, playing essential roles in both physiological and pathological conditions. Eppur si muove-and yet it moves.

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脑周细胞运动:动态的脑周细胞。
背景:脑周细胞是大脑微血管的壁细胞,由于其形态和功能的异质性、可塑性以及α-平滑肌肌动蛋白(α-SMA)的表达变化,长期以来一直被认为是有争议的。然而,由于它们在调节血脑屏障(BBB)、神经炎症、脑血流(CBF)和血管生成方面的关键作用,它们最近成为神经科学研究的焦点。特别是,CBF和血管生成的调节涉及高度动态的过程,如收缩和迁移。通过将化学能转化为机械能,运动蛋白,如肌凝蛋白,通过与细胞内细丝的相互作用,主要是肌动蛋白,在这些过程中起着至关重要的作用。在这篇综述中,我们描述了周细胞的收缩元件,强调了α-SMA和含有Myh11和Myh9重链的肌球蛋白II亚型的相关性。此外,我们还讨论了最近的进展,以了解不同的周细胞亚型在血管直径调节、周细胞迁移和细胞过程的动态重塑过程中如何促进机械力的产生。此外,我们强调了包裹毛细血管床初始分支并表达高水平α-SMA的鞘周细胞如何在神经血管耦合过程中启动强大的血管松弛。相比之下,α- sma低的毛细血管周细胞调节基底血管张力,但也积极感知和响应局部葡萄糖水平和神经元活动。虽然鞘周细胞在缺血后持续血管收缩中起核心作用,但毛细血管周细胞主要负责卒中期间继发性血管收缩事件。综上所述,周细胞是一种动态细胞,能够施加多种形式的机械力,在生理和病理条件下都起着重要作用。艾普尔在移动——但它在移动。
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来源期刊
Fluids and Barriers of the CNS
Fluids and Barriers of the CNS Neuroscience-Developmental Neuroscience
CiteScore
10.70
自引率
8.20%
发文量
94
审稿时长
14 weeks
期刊介绍: "Fluids and Barriers of the CNS" is a scholarly open access journal that specializes in the intricate world of the central nervous system's fluids and barriers, which are pivotal for the health and well-being of the human body. This journal is a peer-reviewed platform that welcomes research manuscripts exploring the full spectrum of CNS fluids and barriers, with a particular focus on their roles in both health and disease. At the heart of this journal's interest is the cerebrospinal fluid (CSF), a vital fluid that circulates within the brain and spinal cord, playing a multifaceted role in the normal functioning of the brain and in various neurological conditions. The journal delves into the composition, circulation, and absorption of CSF, as well as its relationship with the parenchymal interstitial fluid and the neurovascular unit at the blood-brain barrier (BBB).
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