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MicroRNA Targeting Nicotinamide Adenine Dinucleotide Phosphate Oxidases in Cancer
Prem Prakash Kushwaha1, Sanjay Gupta2,3,4,5,6, Atul Kumar Singh1
1Department of Biochemistry, School of Basic and Applied Sciences, Central University of Punjab, Bathinda, India.
Abstract:
Reactive oxygen species (ROS) production occurs primarily in the mitochondria as a by-product of cellular metabolism. ROS are also produced by nicotinamide adenine dinucleotide phosphate (NADPH) oxidases in response to growth factors and cytokines by normal physiological signaling pathways. NADPH oxidase, a member of NADPH oxidase (NOX) family, utilizes molecular oxygen (O2) to generate ROS such as hydrogen peroxide and superoxide. Imbalance between ROS production and its elimination is known to be the major cause of various human diseases. NOX family proteins are exclusively involved in ROS production, which makes them attractive target(s) for the treatment of ROS-mediated diseases including cancer. Molecules such as Keap1/nuclear factor erythroid 2-related factor 2 (Nrf2), N-methyl-d-aspartic acid (NMDA) receptors, nuclear factor-kappaB, KRAS, kallistatin, gene associated with retinoic-interferon-induced mortality-19, and deregulated metabolic pathways are involved in ROS production in association with NADPH oxidase. Therapeutic strategies targeting NADPH oxidases in ROS-driven cancers are not very effective due to its complex regulatory circuit. Tumor suppressor microRNAs (miRNAs) viz. miR-34a, miR-137, miR-99a, and miR-21a-3p targeting NADPH oxidases are predominantly downregulated in ROS-driven cancers. miRNAs also regulate other cellular machineries such as Keap1/Nrf2 pathway and NMDA receptors involved in ROS production and consequently drug resistance. Here, we discuss the structure, function, and metabolic role of NADPH oxidase, NOX family protein-protein interaction, their association with other pathways, and NADPH oxidase alteration by miRNAs. Moreover, we also discuss and summarize studies on NADPH oxidase associated with various malignancies and their therapeutic implications. Targeting NADPH oxidases through miRNAs appears to be a promising strategy for the treatment of ROS-driven cancer.
Insights
Reactive oxygen species (ROS) are linked to diseases. Targeting NADPH oxidases with microRNAs (miRNAs) offers a promising therapeutic strategy for ROS-driven cancers, overcoming complex regulatory challenges.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Reactive oxygen species (ROS) are by-products of cellular metabolism and signaling pathways.
- NADPH oxidases (NOX family) generate ROS, and their imbalance contributes to human diseases, particularly cancer.
- NOX proteins are key ROS producers, making them potential therapeutic targets in ROS-mediated diseases.
Purpose of the Study:
- To review the structure, function, and metabolic role of NADPH oxidase (NOX) family proteins.
- To explore the association of NOX proteins with other signaling pathways involved in ROS production.
- To discuss the therapeutic implications of targeting NOX proteins in ROS-driven cancers, particularly through microRNA regulation.
Main Methods:
- Literature review and synthesis of existing research on NADPH oxidases, ROS production, and cancer.
- Analysis of molecular mechanisms involving NOX proteins, associated pathways (Keap1/Nrf2, NMDA receptors, etc.), and microRNA regulation.
- Summary of studies investigating NOX-associated malignancies and therapeutic strategies.
Main Results:
- NADPH oxidases are central to ROS production and are implicated in various cancers.
- Complex regulatory circuits of NOX proteins present challenges for direct therapeutic targeting.
- Tumor suppressor microRNAs (miRNAs) targeting NOX proteins are often downregulated in ROS-driven cancers, impacting drug resistance.
Conclusions:
- Targeting NADPH oxidases via miRNAs is a promising therapeutic strategy for ROS-driven cancers.
- MicroRNAs offer a novel approach to modulate NOX activity and overcome drug resistance in cancer treatment.
- Further research into miRNA-based therapies holds potential for effective cancer treatment.
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