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磷脂酰丝氨酸的局部外化介导小胶质细胞的发育性突触修剪。

Local externalization of phosphatidylserine mediates developmental synaptic pruning by microglia.

机构信息

F.M. Kirby Center for Neurobiology, Boston Children's Hospital, Boston, MA, USA.

Stanley Center for Psychiatric Research, The Broad Institute of MIT and Harvard, Cambridge, MA, USA.

出版信息

EMBO J. 2020 Aug 17;39(16):e105380. doi: 10.15252/embj.2020105380. Epub 2020 Jul 13.

Abstract

Neuronal circuit assembly requires the fine balance between synapse formation and elimination. Microglia, through the elimination of supernumerary synapses, have an established role in this process. While the microglial receptor TREM2 and the soluble complement proteins C1q and C3 are recognized as key players, the neuronal molecular components that specify synapses to be eliminated are still undefined. Here, we show that exposed phosphatidylserine (PS) represents a neuronal "eat-me" signal involved in microglial-mediated pruning. In hippocampal neuron and microglia co-cultures, synapse elimination can be partially prevented by blocking accessibility of exposed PS using Annexin V or through microglial loss of TREM2. In vivo, PS exposure at both hippocampal and retinogeniculate synapses and engulfment of PS-labeled material by microglia occurs during established developmental periods of microglial-mediated synapse elimination. Mice deficient in C1q, which fail to properly refine retinogeniculate connections, have elevated presynaptic PS exposure and reduced PS engulfment by microglia. These data provide mechanistic insight into microglial-mediated synapse pruning and identify a novel role of developmentally regulated neuronal PS exposure that is common among developing brain structures.

摘要

神经元回路的装配需要精确地平衡突触的形成和消除。小胶质细胞通过消除多余的突触,在这个过程中起着既定的作用。虽然小胶质细胞的 TREM2 受体和可溶性补体蛋白 C1q 和 C3 被认为是关键因素,但指定要消除的突触的神经元分子成分仍未定义。在这里,我们表明暴露的磷脂酰丝氨酸 (PS) 代表神经元的“吃我”信号,参与小胶质细胞介导的修剪。在海马神经元和小胶质细胞共培养物中,通过使用 Annexin V 阻断暴露 PS 的可及性或通过小胶质细胞 TREM2 的缺失,可部分防止突触消除。在体内,PS 在海马和视放射突触处的暴露以及 PS 标记物质被小胶质细胞吞噬,发生在小胶质细胞介导的突触消除的既定发育时期。C1q 缺陷的小鼠未能正确地细化视放射连接,表现出较高的突触前 PS 暴露和小胶质细胞吞噬 PS 的减少。这些数据为小胶质细胞介导的突触修剪提供了机制上的见解,并确定了一种在发育中的脑结构中普遍存在的、受发育调控的神经元 PS 暴露的新作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44af/7429741/3b4cdcfca8f0/EMBJ-39-e105380-g002.jpg

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