4.7 Review

Optogenetic technologies in translational cancer research

Journal

BIOTECHNOLOGY ADVANCES
Volume 60, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.biotechadv.2022.108005

Keywords

Immunotherapy; Optobodies; CRISPR; Viral vector; Oncolytics; Tumor; CAR-T

Funding

  1. US National Institutes of Health [GM122567]
  2. Cancer Foundation Finland [61-5956]
  3. Sechenov First Moscow State Medical University
  4. Sirius University of Science and Technology [GTH-RND-2011, GTH-RND-2112]

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Optogenetics, a technique that enables precise control of gene and cell activity using light, offers new possibilities for cancer treatment. By activating immune response, inhibiting tumor growth, and modulating cell signaling using specific wavelengths of light, optogenetics has the potential to revolutionize cancer therapy.
Gene and cell therapies are widely recognized as future cancer therapeutics but poor controllability limits their clinical applications. Optogenetics, the use of light-controlled proteins to precisely spatiotemporally regulate the activity of genes and cells, opens up new possibilities for cancer treatment. Light of specific wavelength can activate the immune response, oncolytic activity and modulate cell signaling in tumor cells non-invasively, in dosed manner, with tissue confined action and without side effects of conventional therapies. Here, we review optogenetic approaches in cancer research, their clinical potential and challenges of incorporating optogenetics in cancer therapy. We critically discuss beneficial combinations of optogenetic technologies with therapeutic nanobodies, T-cell activation and CAR-T cell approaches, genome editors and oncolytic viruses. We consider viral vectors and nanoparticles for delivering optogenetic payloads and activating light to tumors. Finally, we highlight herein the prospects for integrating optogenetics into immunotherapy as a novel, fast, reversible and safe approach to cancer treatment.

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