生物
神经退行性变
细胞生物学
病态的
胆固醇
限制
人脑
细胞
核糖核酸
转化(遗传学)
神经科学
发病机制
星形胶质细胞
细胞培养
神经胶质
内生
病理
电池类型
HEK 293细胞
人类健康
脑组织
免疫学
作者
Louise A. Mesentier-Louro,Camille Goldman,Sebastian Gaese,Alice Buonfiglioli,Dimitrios Kyriakis,Ashley Harlock,Alain Ndayisaba,Emily R. Sartori,Abigail Uchitelev,John F. Fullard,Evelyn Hennigan,Donghoon Lee,Braxton R. Schuldt,Rikki B. Rooklin,Jonathan Barra,Jose Javier Bravo‐Cordero,Panos Roussos,Vikram Khurana,Joel Blanchard
标识
DOI:10.1016/j.stem.2026.08.001
摘要
The pathological hallmarks of neurodegeneration are the aberrant post-translational modification and aggregation of proteins. Genetic factors, like APOE4 , increase the prevalence and severity of tau, amyloid, and α-synuclein pathologies. However, the human brain is largely inaccessible during this process, limiting mechanistic understanding. Here, we developed an iPSC-based 3D model that integrates neurons, glia, myelin, and cerebrovascular cells into a human brain-like tissue (“miBrain”). Single-nucleus RNA sequencing of miBrains confirmed the presence of diverse cell populations and revealed transcriptional responses to α-synuclein pathology. Like the human brain, pathogenic α-synuclein is increased in APOE4/4 miBrains. Combinatorial experiments revealed that endolysosomal dysfunction caused by cholesterol accumulation in APOE4/4 astrocytes impairs the degradation of soluble α-synuclein leading to a pathogenic transformation that seeds α-synuclein inclusions in neurons. Collectively, this study establishes a robust model for investigating protein inclusions in human iPSC-derived brain tissue and highlights the role of astrocytes and cholesterol in APOE4 -mediated pathologies.
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