4.8 Article

Vacuolization in Cytoplasm and Cell Membrane Permeability Enhancement Triggered by Micrometer-Sized Graphene Oxide

Journal

ACS NANO
Volume 9, Issue 8, Pages 7913-7924

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.5b01685

Keywords

micrometer-sized graphene oxide; mGO; aquaporins; AQPs; cell membrane

Funding

  1. national 973 Program of China [2014CB260411, 2015CB931801]
  2. National Science foundation of China [11374205]
  3. State Key Laboratory of Bioreactor Engineering [2060204]
  4. 111 Project [807023]
  5. Shanghai Committee of Science and Technology [11DZ2260600, 12 nm0503500]
  6. national 863 Program of China [2012AA022603]

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A deep understanding of the interaction of a graphene oxide (GO) sheet with cells at the molecular level may expedite its biomedical application and predict its new functions and adverse effects. Herein we inspect the interaction between micrometer-sized GO (mGO), commonly used in biomedical research, and cells at the molecular level through a variety of techniques. A major finding is that, instead of direct cellular penetration, the mGO sheets can stimulate the cellular response by interacting with the membrane protein and the membrane. Specifically, it is illustrated that even within a short exposure time the mGO sheets can induce the formation of vacuoles in the cytosolic compartment and enhance the cell permeability. The vacuolization is only observed in the cells that strongly express aquaporin (AQP1), indicating the specific interaction of the mGO with AQP1. Moreover, inhibition of the AQP1 activity prevents the formation of vacuoles, revealing that the interaction of the mGO with AQP1 occurs most probably at the vestibule of AQP1 at the extracellular side. Additionally, though the cell permeability was enhanced, it only improves the penetration of small molecules, not for macromolecules such as proteins. These findings are potentially valuable in cancer therapy because AQPs are strongly expressed in tumor cells of different origins, particularly aggressive tumors, and it will also be beneficial for drug transport across barrier membranes.

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