Rational Design and Acoustic Assembly of Human Cerebral Cortex‐Like Microtissues from hiPSC‐Derived Neural Progenitors and Neurons

Author:

Wang Jibo1,Qiao Haowen1,Wang Zhenyan1,Zhao Wen1,Chen Tao1,Li Bin1,Zhu Lili1,Chen Sihan1,Gu Longjun1,Wu Ying2,Zhang Zhentao3,Bi Linlin4,Chen Pu15ORCID

Affiliation:

1. Tissue Engineering and Organ Manufacturing (TEOM) Lab Department of Biomedical Engineering Wuhan University TaiKang Medical School (School of Basic Medical Sciences) Wuhan 430071 China

2. State Key Laboratory of Virology Wuhan University Wuhan Hubei 430072 China

3. Department of Neurology Renmin Hospital of Wuhan University Wuhan 430060 China

4. Department of Pathology Wuhan University TaiKang Medical School (School of Basic Medical Sciences) Wuhan 430071 China

5. TaiKang Center for Life and Medical Sciences Wuhan University Wuhan 430071 China

Abstract

AbstractDevelopment of biologically relevant and clinically relevant human cerebral cortex models is demanded by mechanistic studies of human cerebral cortex‐associated neurological diseases and discovery of preclinical neurological drug candidates. Here, rational design of human–sourced brain‐like cortical tissue models is demonstrated by reverse engineering and bionic design. To implement this design, the acoustic assembly technique is employed to assemble hiPSC‐derived neural progenitors and neurons separately in a label‐free and contact‐free manner followed by subsequent neural differentiation and culture. The generated microtissues encapsulate the neuronal microanatomy of human cerebral‐cortex tissue that contains six‐layered neuronal architecture, a 400‐µm interlayer distance, synaptic connections between interlayers, and neuroelectrophysiological transmission. Furthermore, these microtissues are infected with herpes simplex virus type I (HSV‐1) virus, and the HSV‐induced pathogenesis associated with Alzheimer's disease is determined, including neuron loss and the expression of Aβ. Overall, a high‐fidelity human‐relevant in vitro histotypic model is provided for the cerebral cortex, which will facilitate wide applications in probing the mechanisms of neurodegenerative diseases and screening the candidates for neuroprotective agents.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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