生物
突触修剪
海马体
海马结构
神经发生
神经退行性变
肌醇
神经科学
突触
细胞生物学
免疫学
小胶质细胞
生物化学
内科学
受体
炎症
疾病
医学
作者
Alessandro Matera,Anne‐Claire Compagnion,Chiara Pedicone,Janssen M. Kotah,Andranik Ivanov,Katia Monsorno,Gwenaël Labouèbe,Loredana Leggio,Marta Pereira‐Iglesias,Dieter Beule,Virginie Mansuy‐Aubert,Timothy L. Williams,Nunzio Iraci,Amanda Sierra,Samuele Marro,Alison Goate,Bart J. L. Eggen,William G. Kerr,Rosa Chiara Paolicelli
出处
期刊:Immunity
[Cell Press]
日期:2024-12-09
卷期号:58 (1): 197-217.e13
被引量:18
标识
DOI:10.1016/j.immuni.2024.11.003
摘要
The gene inositol polyphosphate-5-phosphatase D (INPP5D), which encodes the lipid phosphatase SH2-containing inositol polyphosphate 5-phosphatase 1 (SHIP1), is associated with the risk of Alzheimer's disease (AD). How it influences microglial function and brain physiology is unclear. Here, we showed that SHIP1 was enriched in early stages of healthy brain development. By combining in vivo loss-of-function approaches and proteomics, we discovered that mice conditionally lacking microglial SHIP1 displayed increased complement and synapse loss in the early postnatal brain. SHIP1-deficient microglia showed altered transcriptional signatures and abnormal synaptic pruning that was dependent on the complement system. Mice exhibited cognitive defects in adulthood only when microglial SHIP1 was depleted early postnatally but not at later stages. Induced pluripotent stem cell (iPSC)-derived microglia lacking SHIP1 also showed increased engulfment of synaptic structures. These findings suggest that SHIP1 is essential for proper microglia-mediated synapse remodeling in the healthy developing brain. Disrupting this process has lasting behavioral effects and may be linked to vulnerability to neurodegeneration.
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