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首页> 外文期刊>Cell death & disease. >Astrocytic miR-324-5p is essential for synaptic formation by suppressing the secretion of CCL5 from astrocytes
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Astrocytic miR-324-5p is essential for synaptic formation by suppressing the secretion of CCL5 from astrocytes

机译:星形胶质细胞miR-324-5p通过抑制星形胶质细胞分泌CCL5对突触形成至关重要

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摘要

There is accumulating evidence that astrocytes play an important role in synaptic formation, plasticity, and pruning. Dicer and the fine-tuning of microRNA (miRNA) network are important for maintaining the normal functions of central nervous system and dysregulation of miRNAs is implicated in neurological disorders. However, little is known about the role of Dicer and miRNAs of astrocytes in the homeostasis of synapse as well as its plasticity. By selectively deleting Dicer in postnatal astrocytes, Dicer-deficient mice exhibited reactive astrogliosis and deficits in dendritic spine formation. Astrocyte-conditioned medium (ACM) collected from Dicer-null astrocytes caused synapse degeneration in cultured primary neurons. The expression of chemokine ligand 5 (CCL5) elevated in Dicer-deleted astrocytes which led to the significant augmentation of secreted CCL5 in ACM. In neurons treated with Dicer KO-ACM, CCL5 supplementation inhibited MAPK/CREB signaling pathway and exacerbated the synaptic formation deficiency, while CCL5 knockdown partially rescued the synapse degeneration. Moreover, we validated CCL5 as miR-324-5p targeted gene. ACM collected from miR-324-5p antagomir-transfected astrocytes mimicked the effect of CCL5 treatment on inhibiting synapse formation and MAPK/CREB signaling in Dicer KO-ACM-cocultured neurons. Furthermore, decreased miR-324-5p expression and elevated CCL5 expression were observed in the brain of aging mice. Our work reveals the non-cell-autonomous roles of astroglial miRNAs in regulation of astrocytic secretory milieu and neuronal synaptogenesis, implicating the loss or misregulation of astroglial miRNA network may contribute to neuroinflammation, neurodegeneration, and aging.
机译:越来越多的证据表明,星形胶质细胞在突触形成,可塑性和修剪中起重要作用。切丁机和microRNA(miRNA)网络的微调对于维持中枢神经系统的正常功能很重要,miRNA的失调与神经系统疾病有关。然而,关于星形胶质细胞的Dicer和miRNA在突触的稳态及其可塑性中的作用还知之甚少。通过选择性地删除产后星形胶质细胞中的Dicer,Dicer缺陷型小鼠表现出反应性星形胶质增生和树突棘形成缺陷。从零切丁的星形胶质细胞收集的星形胶质细胞条件培养基(ACM)在培养的原代神经元中引起突触变性。在切丁酶缺失的星形胶质细胞中趋化因子配体5(CCL5)的表达升高,这导致ACM中分泌CCL5的显着增加。在用Dicer KO-ACM治疗的神经元中,补充CCL5抑制MAPK / CREB信号通路并加剧突触形成缺陷,而CCL5敲低可部分挽救突触变性。此外,我们验证了CCL5作为miR-324-5p靶向基因。从miR-324-5p antagomir转染的星形胶质细胞收集的ACM模仿了CCL5处理对Dicer KO-ACM共培养的神经元中突触形成和MAPK / CREB信号传导的抑制作用。此外,在衰老小鼠的大脑中观察到miR-324-5p表达降低和CCL5表达升高。我们的工作揭示了星形胶质miRNA在调节星形胶质细胞分泌环境和神经突触中的非细胞自主作用,暗示星形胶质miRNA网络的丢失或失调可能导致神经炎症,神经变性和衰老。

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