Disordered Graphene/Quartz Fabric as Biocompatible and Conductive Scaffold Promising for Regulated Growth and Differentiation of Nerve Cells

Author:

Gong Qian12,Hong Jing23,Ren Ming12,Shen Zongjie1,Zhu Siqi1,Hao Ying23,Zhu Zhanchi23,Li Li1,Kang Lixing12ORCID,Di Jiangtao12,Cheng Guosheng23,Li Qingwen12

Affiliation:

1. Key Laboratory of Multifunctional Nanomaterials and Smart Systems Division of Advanced Materials Suzhou Institute of Nano-Tech and Nano-Bionics Chinese Academy of Sciences Suzhou 215123 China

2. School of Nano-Tech and Nano-Bionics University of Science and Technology of China Hefei 230026 China

3. CAS Key Laboratory of Nano-Bio Interface Suzhou Institute of Nano-tech and Nano-bionics Chinese Academy of Sciences Suzhou 215123 China

Abstract

Nowadays, the use of topographical features and electrical conductivity of scaffolds at the cell‐substrate interface for effectively regulating cell growth and differentiation have gained increasing attention due to great demands for tissue engineering. Herein, a facile approach to the growth of highly disordered graphene nanosheets (HDGNs) is demonstrated on a cheap and weaving quartz‐braided structure as a functionalized scaffold for the differentiation of nerve cells. The patterned aligned structure can effectively integrate the advantages of a conductive graphene‐functional interface (favorable for cell attachment and growth), topologically woven surface structure, providing a flexible and multifunctional regulatory platform for nerve cell growth. Compared with monocrystal polycrystalline graphene, amorphous graphene has high biocompatibility due to sufficient active sites, and has high conductivity to the composite nonconductive substrate, which can realize electrical stimulation (ES) of cell differentiation. Herein, the HDGN/quartz fabric with high biocompatibility (the cell viability is 98%), and great electrical conductivity, is proved. Then, the applied ES coupled with HDGN/quartz fabric significantly enhances selective neuronal differentiation into neurons (the differentiation growth rate is 131%). Collectively, herein, a new material basis is provided for electric induction of cell growth and differentiation, providing more possibilities for the development of intelligent biological applications.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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