Functions and mechanisms of microglia/macrophages in neuroinflammation and neurogenesis after stroke

小胶质细胞 神经发生 神经炎症 神经科学 神经保护 人口 促炎细胞因子 生物 巨噬细胞 脑损伤 免疫系统 医学 炎症 细胞生物学 免疫学 体外 环境卫生 生物化学
作者
Xiao‐Yi Xiong,Liang Liu,Qingwu Yang
出处
期刊:Progress in Neurobiology [Elsevier BV]
卷期号:142: 23-44 被引量:580
标识
DOI:10.1016/j.pneurobio.2016.05.001
摘要

Microglia/macrophages are the major immune cells involved in the defence against brain damage. Their morphology and functional changes are correlated with the release of danger signals induced by stroke. These cells are normally responsible for clearing away dead neural cells and restoring neuronal functions. However, when excessively activated by the damage-associated molecular patterns following stroke, they can produce a large number of proinflammatory cytokines that can disrupt neural cells and the blood-brain barrier and influence neurogenesis. These effects indicate the important roles of microglia/macrophages in the pathophysiological processes of stroke. However, the modifiable and adaptable nature of microglia/macrophages may also be beneficial for brain repair and not just result in damage. These distinct roles may be attributed to the different microglia/macrophage phenotypes because the M1 population is mainly destructive, while the M2 population is neuroprotective. Additionally, different gene expression signature changes in microglia/macrophages have been found in diverse inflammatory milieus. These biofunctional features enable dual roles for microglia/macrophages in brain damage and repair. Currently, it is thought that the proper inflammatory milieu may provide a suitable microenvironment for neurogenesis; however, detailed mechanisms underlying the inflammatory responses that initiate or inhibit neurogenesis remain unknown. This review summarizes recent progress concerning the mechanisms involved in brain damage, repair and regeneration related to microglia/macrophage activation and phenotype transition after stroke. We also argue that future translational studies should be targeting multiple key regulating molecules to improve brain repair, which should be accompanied by the concept of a “therapeutic time window” for sequential therapies.
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