Redox-modulation of regulated cell death: implications for synergistic anticancer therapies

Pooja Singh1, Shreya Sridhar1, Dwarithaa Balasubramanian1

  • 1Department of Human Genetics, Faculty of Biomedical Sciences Technology and Research, Sri Ramachandra Institute of Higher Education and Research (Deemed to Be University), Porur, Chennai, 600116, India.

Insights

Reactive oxygen and nitrogen species (RONS) are key in cancer therapy, driving regulated cell death (RCD). Targeting RONS enhances tumor selectivity and efficacy, offering a viable strategy for improved cancer treatment outcomes.

Area of Science:

  • Redox Biology
  • Cancer Therapy
  • Molecular Mechanisms of Cell Death

Background:

  • Cancer cells exhibit high oxidative stress for proliferation, creating a vulnerability.
  • Reactive oxygen and nitrogen species (RONS) are central regulators of regulated cell death (RCD).

Purpose of the Study:

  • To review and consolidate mechanistic evidence linking redox modulation to anticancer therapeutic efficacy.
  • To examine how various cancer therapies utilize RONS to induce cell death.

Main Methods:

  • Literature review of standard and emerging anticancer modalities.
  • Analysis of molecular mechanisms inducing mitochondrial ROS accumulation and RCD pathways.
  • Examination of RONS-based treatments, including radiotherapy, proton therapy, FLASH therapy, chemotherapy, cold atmospheric plasma, photodynamic therapy, and nanoplatforms.

Main Results:

  • Diverse cancer therapies achieve tumor selectivity by elevating mitochondrial ROS beyond cytotoxic thresholds.
  • Strategic combination of therapies enhances tumor-specific oxidative stress, maximizing efficacy and minimizing healthy tissue damage.
  • RONS-modulating strategies address challenges like chemoradiation resistance, metabolic rewiring, and cancer stem cell persistence.

Conclusions:

  • RONS-centered therapeutic design is a viable strategy to improve contemporary cancer treatment efficacy.
  • Combining redox biology with advanced therapeutic engineering offers a path to enhance outcomes.
  • Biosafety and regulatory frameworks are critical for clinical translation of RONS-based treatments.

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