髓鞘
细胞生物学
溶酶体
吞噬作用
实验性自身免疫性脑脊髓炎
小胶质细胞
神经退行性变
神经炎症
TFEB
多发性硬化
化学
神经免疫学
生物
脱髓鞘病
单核吞噬细胞系统
内质网相关蛋白降解
巨噬细胞
免疫学
自噬
溶酶体贮存病
中枢神经系统
磷酸化
生物发生
神经胶质
脑脊髓炎
调节器
神经科学
作者
Xiaodi Zhang,Ziqing Xu,Yingxue Zhang,Tong Zheng,Xiaolei Ren,Ying Xiao,Hao Chen,Na Han,C L Li,Xuetian Yue,Zhuanchang Wu,Xiaohong Liang,Ma Cl,Pin Wang,Gao L
出处
期刊:Brain
[Oxford University Press]
日期:2026-05-08
标识
DOI:10.1093/brain/awag170
摘要
Multiple sclerosis (MS) is a chronic autoimmune disorder characterized by the immune-mediated demyelination and neurodegeneration of the central nervous system. Phagocyte mediated myelin debris clearance is required for remyelination. TIM-3 is highly expressed on mononuclear macrophages and promotes the phagocytosis of apoptotic cells. Here, we report that TIM-3 enhances the clearance of myelin debris in experimental autoimmune encephalomyelitis (EAE), a model of MS. Tim-3 knockout (KO) exacerbated EAE severity, neuroinflammation, and demyelination by regulating mononuclear macrophages. TIM-3 promoted the phagocytosis and degradation of myelin debris by macrophages. Mechanistically, Tim-3 deficiency impaired lysosomal biogenesis and function, leading to lysosomal membrane permeabilization and disrupted lysosomal acidification, which further exacerbated neuroinflammation and demyelination. Notably, TIM-3 blocked the interaction of mTOR-TFEB to inhibit TFEB phosphorylation and facilitate its nuclear translocation, followed by increased expression of lysosomal genes critical for myelin degradation. Importantly, the IgV domain is necessary in TIM-3-mediated lysosomal regulation and myelin degradation. These findings highlight TIM-3 as a key regulator of lysosomal homeostasis and the clearance of myelin debris, suggesting that the IgV domain has promise as a therapeutic agent for treating demyelinating diseases such as MS.
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