mTORC1 驱动结节性硬化症中细胞自主的星形胶质细胞反应性
mTORC1 drives cell-autonomous astrocyte reactivity in tuberous sclerosis
结节性硬化症(一种遗传性神经发育病)患者脑中会长出皮质结节,常伴严重癫痫。此前不清楚结节里的胶质细胞异常是病因还是癫痫的结果。研究者用人类脑类器官(实验室培养的微型脑组织)追踪突变前体细胞的命运,并结合患者手术切除的结节组织,发现 TSC2 基因缺失会让神经前体细胞自主地变成体积增大、促炎的反应性星形胶质细胞,这些细胞谷氨酸转运体减少、炎症因子分泌增多。结果提示胶质细胞功能障碍是结节性硬化症的驱动因素,反应性星形胶质细胞或可成为治疗靶点。
为什么推荐给您:用人类脑类器官证明胶质细胞是TSC病因而非结果,属重要机制突破。
不需要生物学背景,多打比方
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摘要Abstract
Tuberous sclerosis complex (TSC) is a genetic neurodevelopmental disorder characterized by focal brain malformations called cortical tubers, which are associated with severe, intractable epilepsy1. Tubers are thought to result from somatic second-hit mutations that disrupt the TSC1 or TSC2 genes in neural progenitor cells, driving hyperactive mTORC1 signalling2. Glial abnormalities are commonly observed in tubers3; however, whether glia actively cause disease or merely result from chronic seizure activity has remained unclear. To address this question, we used human brain organoid models to track the developmental fate of mutated progenitor cells in the absence of seizures. Here we show, using single-cell transcriptomics and cyclic immunostaining across human brain organoids and resected tuber tissue from patients, that loss of TSC2 biases neural progenitors to differentiate into enlarged, pro-inflammatory reactive astrocytes in a cell autonomous manner. These mutant astrocytes show downregulated glutamate transporter expression, increased inflammatory cytokine secretion and elevated expression of neurodegenerative disease risk genes such as APOE and CLU. Our findings demonstrate that reactive astrocytes emerge as a primary consequence of TSC2 loss. These results implicate glial dysfunction as a driver of TSC pathogenesis and highlight reactive astrocytes as potential therapeutic targets for TSC-related neuropathology.