4.7 Article

The influence of reduced graphene oxide on stem cells: a perspective in peripheral nerve regeneration

期刊

REGENERATIVE BIOMATERIALS
卷 8, 期 4, 页码 -

出版社

OXFORD UNIV PRESS
DOI: 10.1093/rb/rbab032

关键词

reduced graphene oxide; nerve regeneration; tissue engineering; biomaterials; stem cell

资金

  1. Shanghai Sailing Program [20YF1436000]
  2. National Natural Science Foundation of China [82002290, 81830076]
  3. Municipal Hospital Newly-developing Cutting-edge Technologies Joint Research Program of Shanghai Shenkang Hospital Development Center [SHDC12018130]
  4. Special Fund for Research on People's Livelihood (Medical Treatment and Public Health) of Shanghai Pudong Science, Technology and Economic Commission Scientific and Technological Development Fund [PKJ2018-Y52]
  5. Shanghai Pudong Health Commission Special Program for Clinical Research in the Health Industry [PW2018E-01]
  6. Base for Interdisciplinary Innovative Talent Training, Shanghai Jiao Tong University
  7. Youth Science and Technology Innovation Studio of Shanghai Jiao Tong University School of Medicine

向作者/读者索取更多资源

Graphene and its derivatives have extraordinary electrochemical and mechanical properties, leading to extensive research in tissue engineering and regenerative medicine. Reduced graphene oxide (rGO) shares structural and functional similarities with graphene, influencing neurogenic differentiation of stem cells.
Graphene and its derivatives are fascinating materials for their extraordinary electrochemical and mechanical properties. In recent decades, many researchers explored their applications in tissue engineering and regenerative medicine. Reduced graphene oxide (rGO) possesses remarkable structural and functional resemblance to graphene, although some residual oxygen-containing groups and defects exist in the structure. Such structure holds great potential since the remnant-oxygenated groups can further be functionalized or modified. Moreover, oxygen-containing groups can improve the dispersion of rGO in organic or aqueous media. Therefore, it is preferable to utilize rGO in the production of composite materials. The rGO composite scaffolds provide favorable extracellular microenvironment and affect the cellular behavior of cultured cells in the peripheral nerve regeneration. On the one hand, rGO impacts on Schwann cells and neurons which are major components of peripheral nerves. On the other hand, rGO-incorporated composite scaffolds promote the neurogenic differentiation of several stem cells, including embryonic stem cells, mesenchymal stem cells, adipose-derived stem cells and neural stem cells. This review will briefly introduce the production and major properties of rGO, and its potential in modulating the cellular behaviors of specific stem cells. Finally, we present its emerging roles in the production of composite scaffolds for nerve tissue engineering.

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