Fibrous Viscoelastic Extracellular Matrix Assists Precise Neuronal Connectivity

Author:

Xie Ruipei12,Yu Xiaoyu13,Cao Ting14,Yang Chen13,Zhang Yiyu12,Wang Xiaochen14,Liu Yi‐Jun5,Duan Shumin56,Ye Fangfu124,Fan Qihui1ORCID

Affiliation:

1. Beijing National Laboratory for Condensed Matter Physics Institute of Physics Chinese Academy of Sciences Beijing 100190 China

2. School of Physical Sciences University of Chinese Academy of Sciences 100049 Beijing China

3. School of Mechanical Engineering & Automation Beihang University Beijing 100191 China

4. Oujiang Laboratory (Zhejiang Lab for Regenerative Medicine, Vision and Brain Health), Wenzhou Institute University of Chinese Academy of Sciences Wenzhou Zhejiang 325000 China

5. Department of Neurobiology, NHC and CAMS Key Laboratory of Medical Neurobiology, School of Brain Science and Brian Medicine, and the MOE Frontier Science Center for Brain Research and Brain‐Machine Integration Zhejiang University School of Medicine Hangzhou 310058 China

6. Mental Health Center Zhejiang University School of Medicine Hangzhou Zhejiang 310058 China

Abstract

AbstractSynapse formation in complex neuronal network is a pivotal process for normal functioning of nervous system. Although intense research has been conducted, how neurons and axons are guided toward the target remains largely unclear. In traditional opinions, axons are directed through chemotaxis, while recently mechanotaxis has been brought up as a potential complementary mechanism, as it can provide delicately controlled signals in addition to the random diffusive chemical cues. To further explore the path‐finding mechanism, a quasi‐3D in vitro model for neuronal cells is constructed by integrating hydrogel collagen I as extracellular matrix (ECM), and primary mouse cortical neurons and PC12 cells are tested. It is strikingly found out that axons and neuronal cells can be precisely guided toward target neurites via ECM. By developing a label‐free traction force microscopy technique, the force networks among neurons are presented, validating that the fibrous matrix‐transmitted paratensile signals can assist the axon pathfinding. This precise axon guidance is related to the activation of mechanosensitive ion channels, calcium signaling, and probably the following F‐actin assembly. This mechanism can potentially assist developing clinical applications and designing biomaterials in near future.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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