医学
神经科学
神经保护
小胶质细胞
冲程(发动机)
背景(考古学)
免疫系统
血脑屏障
机制(生物学)
细胞内
炎症
神经炎症
组织纤溶酶原激活剂
缺血
神经学
神经血管束
脑缺血
生物信息学
中枢神经系统
缺血性中风
神经发生
治疗方法
星形胶质增生
小RNA
溶栓
巨噬细胞极化
串扰
缝隙连接
刺激(心理学)
作者
Zhe Shen,Wei Wang,Dongdong Shi
标识
DOI:10.2174/011570159x478707260827045800
摘要
Stroke is one of the leading causes of death and disability globally, with ischemic stroke comprising approximately 87% of all cases. Although reperfusion therapies such as tissue-type Plasminogen Activator (tPA) are currently available, their clinical utility is severely limited by narrow therapeutic time windows and the risk of hemorrhagic transformation. Recent advances have revealed that ischemic stroke is not merely a localized vascular occlusion but a systemic pathological event governed by the Neurovascular Unit (NVU), including neurons, glial cells (astrocytes and microglia), vascular cells (endothelial cells and pericytes), and peripheral immune cells. Therefore, understanding the alterations in these diverse cell types and their underlying mechanisms holds significant importance for developing effective treatments for stroke. This review integrates current knowledge on the complex intercellular communication mechanisms within the NVU and at its periphery. We discuss how the functional polarization of astrocytes (neurotoxic A1 vs. neuroprotective A2) and microglia (M1/M2 phenotypes) dictate neuronal fate and neuroinflammatory responses. Additionally, we describe NVU-mediated regulation of cerebral blood flow and BBB permeability, as well as the interplay between peripheral and central immune responses in the context of stroke. Furthermore, we highlight novel communication modalities, specifically exosomes, which shuttle miRNAs and proteins to modulate distal inflammation, and Tunneling Nanotubes (TNTs), which facilitate the direct intercellular transfer of vital organelles, such as mitochondria. These dynamic interactions represent critical nodes for therapeutic intervention. Taken together, targeting the interactions of intercellular communication represents a promising frontier for achieving comprehensive functional recovery after ischemic stroke.
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