Cellular and subcellular interactions of graphene-based materials with cancerous and non-cancerous cells

Shadi Rahimi1, Yanyan Chen1, Mohsen Zareian2

  • 1Department of Biology and Biological Engineering, Chalmers University of Technology, Göteborg 41296, Sweden.

Insights

Graphene-based nanomaterials show potential for cancer therapy by interacting with cells. Optimizing graphene oxide size and surface chemistry is key for effective drug delivery and biocompatibility in cancer treatment.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Materials Science

Background:

  • Cancer remains a leading global cause of death despite treatment advances.
  • Nanocarriers offer targeted drug delivery, with graphene-based materials showing promise due to high drug loading and biocompatibility.

Purpose of the Study:

  • To review interactions of graphene-based materials with normal and cancerous cells.
  • To explore applications of graphene in cancer therapy, including drug delivery and metastasis treatment.
  • To correlate nanomaterial properties with cellular interactions for optimized bio-applications.

Main Methods:

  • Literature review of studies on graphene-based materials and cell interactions.
  • Analysis of molecular, cellular, and subcellular interactions with normal mammalian cells.
  • Examination of interactions with cancerous cells for therapeutic potential.

Main Results:

  • Graphene-based materials interact with various cellular components in normal cells (e.g., membranes, organelles).
  • These materials show potential for cancer therapy, including targeted drug delivery and differentiation of cancer stem cells.
  • Key parameters like size and surface chemistry significantly influence cellular uptake and biocompatibility.

Conclusions:

  • Graphene-based nanomaterials, particularly graphene oxide, offer promising avenues for cancer therapy.
  • Understanding and engineering graphene oxide's size and surface properties are crucial for enhancing its efficacy and safety in therapeutic applications.
  • Further research correlating material characteristics with cellular interactions will guide the design of advanced nanocarriers for cancer treatment.

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