循环(图论)
电子线路
模型系统
神经系统
计算机科学
神经科学
控制理论(社会学)
生物系统
工程类
生物
数学
人工智能
电气工程
控制(管理)
组合数学
作者
Yuki Miura,Ji‐il Kim,Ovidiu F. Jurjuţ,Kevin W. Kelley,Xiao Yang,Xiaoyu Chen,Mayuri Vijay Thete,Omer Revah,Bianxiao Cui,Marius Pachitariu,Sergiu P. Pașca
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2024-10-14
被引量:19
标识
DOI:10.1101/2024.10.13.617729
摘要
Abstract Neural circuits connecting the cerebral cortex, the basal ganglia and the thalamus are fundamental networks for sensorimotor processing and their dysfunction has been consistently implicated in neuropsychiatric disorders 1-9 . These recursive, loop circuits have been investigated in animal models and by clinical neuroimaging, however, direct functional access to developing human neurons forming these networks has been limited. Here, we use human pluripotent stem cells to reconstruct an in vitro cortico-striatal-thalamic-cortical circuit by creating a four-part loop assembloid. More specifically, we generate regionalized neural organoids that resemble the key elements of the cortico-striatal-thalamic-cortical circuit, and functionally integrate them into loop assembloids using custom 3D-printed biocompatible wells. Volumetric and mesoscale calcium imaging, as well as extracellular recordings from individual parts of these assembloids reveal the emergence of synchronized patterns of neuronal activity. In addition, a multi–step rabies retrograde tracing approach demonstrate the formation of neuronal connectivity across the network in loop assembloids. Lastly, we apply this system to study heterozygous loss of ASH1L gene associated with autism spectrum disorder and Tourette syndrome and discover aberrant synchronized activity in disease model assembloids. Taken together, this human multi-cellular platform will facilitate functional investigations of the cortico-striatal-thalamic-cortical circuit in the context of early human development and in disease conditions.
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