Integration of Functional Human Auditory Neural Circuits Based on a 3D Carbon Nanotube System

Author:

Lou Yiyun12,Ma Jiaoyao12,Hu Yangnan34,Yao Xiaoying5,Liu Yaoqian12,Wu Mingxuan12,Jia Gaogan12,Chen Yan1267,Chai Renjie34,Xia Mingyu1267,Li Wenyan1267ORCID

Affiliation:

1. ENT Institute and Otorhinolaryngology Department of Eye & ENT Hospital State Key Laboratory of Medical Neurobiology and MOE Frontiers Center for Brain Science Fudan University Shanghai 200031 China

2. Institutes of Biomedical Sciences Fudan University Shanghai 200032 China

3. State Key Laboratory of Digital Medical Engineering Department of Otolaryngology Head and Neck Surgery Zhongda Hospital School of Life Sciences and Technology Advanced Institute for Life and Health Jiangsu Province High‐Tech Key Laboratory for Bio‐Medical Research Southeast University Nanjing 210096 China

4. Co‐Innovation Center of Neuroregeneration Nantong University Nantong 226001 China

5. Obstetrics and Gynecology Hospital Fudan University Shanghai 200011 China

6. NHC Key Laboratory of Hearing Medicine Fudan University Shanghai 200031 China

7. The Institutes of Brain Science and the Collaborative Innovation Center for Brain Science Fudan University Shanghai 200032 China

Abstract

AbstractThe physiological interactions between the peripheral and central auditory systems are crucial for auditory information transmission and perception, while reliable models for auditory neural circuits are currently lacking. To address this issue, mouse and human neural pathways are generated by utilizing a carbon nanotube nanofiber system. The super‐aligned pattern of the scaffold renders the axons of the bipolar and multipolar neurons extending in a parallel direction. In addition, the electrical conductivity of the scaffold maintains the electrophysiological activity of the primary mouse auditory neurons. The mouse and human primary neurons from peripheral and central auditory units in the system are then co‐cultured and showed that the two kinds of neurons form synaptic connections. Moreover, neural progenitor cells of the cochlea and auditory cortex are derived from human embryos to generate region‐specific organoids and these organoids are assembled in the nanofiber‐combined 3D system. Using optogenetic stimulation, calcium imaging, and electrophysiological recording, it is revealed that functional synaptic connections are formed between peripheral neurons and central neurons, as evidenced by calcium spiking and postsynaptic currents. The auditory circuit model will enable the study of the auditory neural pathway and advance the search for treatment strategies for disorders of neuronal connectivity in sensorineural hearing loss.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Shanghai Municipal Health Commission

Publisher

Wiley

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