多细胞生物
神经科学
诱导多能干细胞
生物
串扰
少突胶质细胞
电池类型
神经干细胞
细胞命运测定
类有机物
转录组
细胞分化
细胞
人脑
干细胞
疾病
星形胶质细胞
神经元
祖细胞
计算生物学
祖细胞
细胞生物学
小胶质细胞
神经退行性变
模式生物
发病机制
细胞模型
神经胶质
细胞培养
神经发生
哺乳动物大脑
作者
Alice E. Stanton,Adele Bubnys,Emre Agbas,Benjamin T. James,Dong Shin Park,Alan Jiang,Rebecca L. Pinals,Liwang Liu,Nhat Truong,Anjanet Loon,Colin Staab,Oyku Cerit,Hsin-Lan Wen,David Mankus,Margaret E. Bisher,Abigail K. R. Lytton‐Jean,Manolis Kellis,Joel Blanchard,Róbert Langer,Li‐Huei Tsai
标识
DOI:10.1073/pnas.2511596122
摘要
Patient-specific, human-based cellular models integrating a biomimetic blood–brain barrier, immune, and myelinated neuron components are critically needed to enable accelerated, translationally relevant discovery of neurological disease mechanisms and interventions. To construct a human cell-based model that includes these features and all six major brain cell types needed to mimic disease and dissect pathological mechanisms, we have constructed, characterized, and utilized a multicellular integrated brain (miBrain) immuno-glial-neurovascular model by engineering a brain-inspired 3D hydrogel and identifying conditions to coculture these six brain cell types, all differentiated from patient induced pluripotent stem cells. miBrains recapitulate in vivo – like hallmarks inclusive of neuronal activity, functional connectivity, barrier function, myelin-producing oligodendrocyte engagement with neurons, multicellular interactions, and transcriptomic profiles. We implemented the model to study Alzheimer’s Disease pathologies associated with APOE4 genetic risk. APOE4 miBrains differentially exhibit amyloid aggregation, tau phosphorylation, and astrocytic glial fibrillary acidic protein. Unlike the coemergent fate specification of glia and neurons in other organoid approaches, miBrains integrate independently differentiated cell types, a feature we harnessed to identify that APOE4 in astrocytes promotes neuronal tau pathogenesis and dysregulation through crosstalk with microglia.
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