Photothermal therapy using graphene quantum dots

Author:

Dar Mohammad Suhaan12ORCID,Tabish Tanveer A.3ORCID,Thorat Nanasaheb D.4ORCID,Swati G.1ORCID,Sahu Niroj Kumar1

Affiliation:

1. Centre for Nanotechnology Research, Vellore Institute of Technology 1 , Vellore 632014, India

2. School of Bio-Sciences and Technology, Vellore Institute of Technology 2 , Vellore 632014, India

3. Division of Cardiovascular Medicine, Radcliffe Department of Medicine, University of Oxford 3 , Oxford OX3 7BN, United Kingdom

4. Nuffield Department of Women's and Reproductive Health, Medical Science Division, John Radcliffe Hospital, University of Oxford, Oxford 4 OX3 9DU, United Kingdom

Abstract

The rapid development of powerful anti-oncology medicines have been possible because of advances in nanomedicine. Photothermal therapy (PTT) is a type of treatment wherein nanomaterials absorb the laser energy and convert it into localized heat, thereby causing apoptosis and tumor eradication. PTT is more precise, less hazardous, and easy-to-control in comparison to other interventions such as chemotherapy, photodynamic therapy, and radiation therapy. Over the past decade, various nanomaterials for PTT applications have been reviewed; however, a comprehensive study of graphene quantum dots (GQDs) has been scantly reported. GQDs have received huge attention in healthcare technologies owing to their various excellent properties, such as high water solubility, chemical stability, good biocompatibility, and low toxicity. Motivated by the fascinating scientific discoveries and promising contributions of GQDs to the field of biomedicine, we present a comprehensive overview of recent progress in GQDs for PTT. This review summarizes the properties and synthesis strategies of GQDs including top-down and bottom-up approaches followed by their applications in PTT (alone and in combination with other treatment modalities such as chemotherapy, photodynamic therapy, immunotherapy, and radiotherapy). Furthermore, we also focus on the systematic study of in vitro and in vivo toxicities of GQDs triggered by PTT. Moreover, an overview of PTT along with the synergetic application used with GQDs for tumor eradication are discussed in detail. Finally, directions, possibilities, and limitations are described to encourage more research, which will lead to new treatments and better health care and bring people closer to the peak of human well-being.

Funder

Irish Research Council

Publisher

AIP Publishing

Subject

Biomedical Engineering,Biomaterials,Biophysics,Bioengineering

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