Graphene-Based Materials for Stem Cell Applications

Tae Hyung Kim, Taek Lee, Waleed A. El-Said, Jeong Woo Choi

Research output: Contribution to journalArticlepeer-review

73 Scopus citations

Abstract

Although graphene and its derivatives have been proven to be suitable for several biomedical applications such as for cancer therapy and biosensing, the use of graphene for stem cell research is a relatively new area that has only recently started to be investigated. For stem cell applications, graphene has been utilized by itself or in combination with other types of materials such as nanoparticles, nanofibers, and polymer scaffolds to take advantage of the several unique properties of graphene, such as the flexibility in size, shape, hydrophilicity, as well as its excellent biocompatibility. In this review, we will highlight a number of previous studies that have investigated the potential of graphene or its derivatives for stem cell applications, with a particular focus on guiding stem cell differentiation into specific lineages (e.g., osteogenesis, neurogenesis, and oligodendrogenesis), promoting stem cell growth, stem cell delivery/transplantation, and effective monitoring of their differentiation. We hope that this review promotes and accelerates the use of graphene-based materials for regenerative therapies, especially for stem cell-based approaches to cure various incurable diseases/disorders such as neurological diseases (e.g., Alzheimer's disease and Parkinson's disease), stroke, spinal cord injuries, bone/cartilage defects, and cardiovascular diseases.

Original languageEnglish
Pages (from-to)8674-8690
Number of pages17
JournalMaterials
Volume8
Issue number12
DOIs
StatePublished - 2015
Externally publishedYes

Keywords

  • biomedical applications
  • detection
  • differentiation
  • Graphene
  • graphene hybrid materials
  • graphene oxide
  • graphene scaffolds
  • stem cell engineering
  • stem cells
  • transplantation

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