Analysis of reactive oxygen species–induced cellular damage in cervical cancer

Abstract

Reactive oxygen species (ROS) are highly reactive oxygen-based molecules comprising hydrogen peroxide, hydroxyl radicals, superoxide anion, and singlet oxygen. These species are produced intracellularly and play an important role in cellular signaling and metabolism. Their high reactivity damages intracellular macromolecules such as lipids and DNA. In cancer biology, ROS display a dual role: they promote cancer cell proliferation at low to moderate levels, whereas excessive accumulation overwhelms antioxidant defenses, causing oxidative stress and apoptosis. This has resulted in therapeutic strategies that selectively increase ROS in cancer cells to induce apoptosis. Vitamin D has demonstrated anti-cancer properties, with one proposed mechanism involving ROS-mediated apoptosis. This article outlines a workflow to investigate ROS-induced cellular damage by vitamin D3 in HeLa cervical cancer cells. The study begins with quantification of ROS levels and assessment of mitochondrial membrane potential in HeLa cultures. Transmission electron microscopy is used to examine mitochondrial ultrastructure. Lipid peroxidation quantifies downstream ROS-mediated membrane and cellular injury. Antioxidant enzyme activities, including superoxide dismutase and catalase, measure cellular anti-oxidative defence capacity. Lastly, the role of ROS inhibition of AKT signaling, leading to reduced cell survival and apoptosis, is quantified by immunoblotting.

Description

DATA AVAILABILITY STATEMENT: The data, tools, and materials (or theirsources) that support these protocol are avail-able from the corresponding author upon rea-sonable request.

Keywords

Antioxidant defense, Cellular stress response, Oxidative stress, Reactive oxygen species (ROS), Vitamin D-induced apoptosis

Sustainable Development Goals

SDG-03: Good health and well-being

Citation

Chan, H. C. C., Bhoora, S., Zhou, E., Marais, S. & Punchoo, R. (2026). Analysis of reactive oxygen species–induced cellular damage in cervical cancer. Current Protocols, 6, e70328: 1-30. doi: 10.1002/cpz1.70328.