Generation of Hydrogen Peroxide in Cancer Cells: Advancing Therapeutic Approaches for Cancer Treatment
Taufeeque Ali1, Daniel Li1, Thilini Nimasha Fernando Ponnamperumage1
1Department of Chemistry and Biochemistry and the Milwaukee Institute for Drug Discovery, University of Wisconsin-Milwaukee, 3210 N. Cramer Street, Milwaukee, WI 53211, USA.
Abstract:
Cancer cells show altered antioxidant defense systems, dysregulated redox signaling, and increased generation of reactive oxygen species (ROS). Targeting cancer cells through ROS-mediated mechanisms has emerged as a significant therapeutic strategy due to its implications in cancer progression, survival, and resistance. Extensive research has focused on selective generation of H2O2 in cancer cells for selective cancer cell killing by employing various strategies such as metal-based prodrugs, photodynamic therapy, enzyme-based systems, nano-particle mediated approaches, chemical modulators, and combination therapies. Many of these H2O2-amplifying approaches have demonstrated promising anticancer effects and selectivity in preclinical investigations. They selectively induce cytotoxicity in cancer cells while sparing normal cells, sensitize resistant cells, and modulate the tumor microenvironment. However, challenges remain in achieving selectivity, addressing tumor heterogeneity, ensuring efficient delivery, and managing safety and toxicity. To address those issues, H2O2-generating agents have been combined with other treatments leading to optimized combination therapies. This review focuses on various chemical agents/approaches that kill cancer cells via H2O2-mediated mechanisms. Different categories of compounds that selectively generate H2O2 in cancer cells are summarized, their underlying mechanisms and function are elucidated, preclinical and clinical studies as well as recent advancements are discussed, and their prospects as targeted therapeutic agents and their therapeutic utility in combination with other treatments are explored. By understanding the potential of these compounds, researchers can pave the way for the development of effective and personalized cancer treatments.
Insights
Targeting cancer cells with hydrogen peroxide (H₂O₂) generating agents offers a promising therapeutic strategy. These agents selectively kill cancer cells by amplifying ROS, improving treatment efficacy and personalization.
Area of Science:
- Oncology
- Biochemistry
- Therapeutics
Background:
- Cancer cells exhibit altered antioxidant defenses and increased reactive oxygen species (ROS) generation.
- Targeting cancer cells via ROS-mediated mechanisms is a key therapeutic strategy for cancer progression and resistance.
Purpose of the Study:
- To review chemical agents and approaches that selectively generate hydrogen peroxide (H₂O₂) in cancer cells.
- To elucidate the mechanisms, functions, and therapeutic potential of H₂O₂-generating agents in cancer treatment.
Main Methods:
- Summarizing various categories of H₂O₂-generating compounds.
- Reviewing underlying mechanisms, preclinical and clinical studies, and recent advancements.
- Exploring therapeutic utility in combination therapies.
Main Results:
- H₂O₂-amplifying approaches show promising anticancer effects and selectivity in preclinical studies.
- These strategies selectively induce cytotoxicity, sensitize resistant cells, and modulate the tumor microenvironment.
- Combination therapies optimize H₂O₂-generating agents for enhanced efficacy.
Conclusions:
- H₂O₂-generating agents offer a targeted approach to cancer cell killing.
- Further research into these compounds can lead to effective and personalized cancer treatments.
- Addressing challenges in selectivity, delivery, and toxicity is crucial for clinical translation.
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