小胶质细胞
脂滴
细胞生物学
脂质代谢
生物能学
酵母多糖
下调和上调
吞噬作用
线粒体
糖酵解
基因剔除小鼠
化学
生物
CD36
神经退行性变
新陈代谢
生物化学
免疫系统
呼吸
先天免疫系统
脂毒性
炎症
自噬
转录组
脂质氧化
线粒体生物发生
作者
Isaiah O Stephens,Lance A Johnson,Isaiah O Stephens,Lance A Johnson
出处
期刊:Cells
[Multidisciplinary Digital Publishing Institute]
日期:2025-11-13
卷期号:14 (22): 1783-1783
标识
DOI:10.3390/cells14221783
摘要
Lipid droplets (LDs) are emerging as key regulators of metabolism and inflammation, with their buildup in microglia linked to aging and neurodegeneration. Perilipin-2 (Plin2) is a ubiquitously expressed LD-associated protein that stabilizes lipid stores; in peripheral tissues, its upregulation promotes lipid retention, inflammation, and metabolic dysfunction. Yet, its role in microglia remains unclear. Using CRISPR-engineered Plin2 knockout (KO) BV2 microglia, we examined how Plin2 contributes to lipid accumulation, bioenergetics, and immune function. Compared to wild-type (WT) cells, Plin2 KO microglia showed markedly reduced LD burden under basal and oleic acid-loaded conditions. Functionally, this was linked to enhanced phagocytosis of zymosan particles, even after lipid loading, indicating improved clearance capacity. Transcriptomics revealed genotype-specific responses to amyloid-β (Aβ), especially in mitochondrial metabolism pathways. Seahorse assays confirmed a distinct bioenergetic profile in KO cells, with reduced basal respiration and glycolysis but preserved mitochondrial capacity, increased spare reserve, and a blunted glycolytic response to Aβ. Together, these findings establish Plin2 as a regulator of microglial lipid storage and metabolic state, with its loss reducing lipid buildup, enhancing phagocytosis, and altering Aβ-induced metabolic reprogramming. Targeting Plin2 may represent a strategy to reprogram microglial metabolism and function in aging and neurodegeneration.
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