小胶质脂质磷酸酶SHIP1限制补体介导的突触修剪在健康发育的海马

IF 25.5 1区 医学 Q1 IMMUNOLOGY Immunity Pub Date : 2024-12-09 DOI:10.1016/j.immuni.2024.11.003
Alessandro Matera, Anne-Claire Compagnion, Chiara Pedicone, M. Kotah Janssen, Andranik Ivanov, Katia Monsorno, Gwenaël Labouèbe, Loredana Leggio, Marta Pereira, Dieter Beule, Virginie Mansuy-Aubert, Tim L. Williams, Nunzio Iraci, Amanda Sierra, Samuele G. Marro, Alison M. Goate, Bart J.L. Eggen, William G. Kerr, Rosa C. Paolicelli
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摘要

肌醇多磷酸-5-磷酸酶D (INPP5D)基因编码脂质磷酸酶sh2 -含肌醇多磷酸-5-磷酸酶1 (SHIP1),与阿尔茨海默病(AD)的风险相关。它如何影响小胶质细胞功能和脑生理学尚不清楚。在这里,我们发现SHIP1在健康大脑发育的早期阶段富集。通过结合体内功能丧失方法和蛋白质组学,我们发现条件性缺乏小胶质SHIP1的小鼠在出生后早期大脑中表现出补体和突触丢失增加。ship1缺失的小胶质细胞表现出依赖于补体系统的转录特征改变和突触修剪异常。小鼠在成年期只有当小胶质细胞SHIP1在出生后早期被耗尽时才表现出认知缺陷,而在后期则没有。诱导多能干细胞(iPSC)衍生的缺乏SHIP1的小胶质细胞也显示突触结构的吞噬增加。这些发现表明SHIP1在健康发育的大脑中对适当的小胶质细胞介导的突触重塑至关重要。破坏这一过程会产生持久的行为影响,并可能与神经退化的脆弱性有关。
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Microglial lipid phosphatase SHIP1 limits complement-mediated synaptic pruning in the healthy developing hippocampus
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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来源期刊
Immunity
Immunity 医学-免疫学
CiteScore
49.40
自引率
2.20%
发文量
205
审稿时长
6 months
期刊介绍: Immunity is a publication that focuses on publishing significant advancements in research related to immunology. We encourage the submission of studies that offer groundbreaking immunological discoveries, whether at the molecular, cellular, or whole organism level. Topics of interest encompass a wide range, such as cancer, infectious diseases, neuroimmunology, autoimmune diseases, allergies, mucosal immunity, metabolic diseases, and homeostasis.
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