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Redox-signalling and Redox Biomarkers in Cardiovascular Health and Disease
Yasmin Sultana1, Damanpreet Kaur Lang2, Thomson Santosh Alex1
1Department of Pharmaceutics, School of Pharmaceutical Education and Research, Jamia Hamdard, New Delhi, India.
Abstract:
Overproduction of reactive nitrogen and oxygen species (RNS and ROS) has been linked to the pathogenesis of diabetes, hypertension, hyperlipidemia, stroke, angina, and other cardiovascular diseases. These species are produced in part by the mitochondrial respiratory chain, NADPH oxidase, and xanthine oxidase. RNS and ROS both contribute to oxidative stress, which is necessary for the development of cardiovascular disorders. In addition to ROS species like hydroxyl ion, hydrogen peroxide, and superoxide anion, RNS species like nitric oxide, peroxynitrous acid, peroxynitrite, and nitrogen dioxide radicals have also been linked to a number of cardiovascular conditions. They promote endothelial dysfunction, vascular inflammation, lipid peroxidation, and oxidative damage, all of which contribute to the development of cardiovascular pathologies. It's crucial to understand the mechanisms that result in the production of RNS and ROS in order to identify potential therapeutic targets. Redox biomarkers serve as indicators of oxidative stress, making them crucial tools for diagnosing and predicting cardiovascular states. The advancements in proteomics, metabolomics, genomics, and transcriptomics have made the identification and detection of these small molecules possible. The following redox biomarkers are notable examples: 3-nitrotyrosine, 4-hydroxy-2-nonenal, 8- iso-prostaglandin F2, 8-hydroxy-2-deoxyguanosine, malondialdehyde, Diacron reactive oxygen metabolites, total thiol, and specific microRNAs (e.g. miRNA199, miRNA21, miRNA1254, miRNA1306-5p, miRNA26b-5p, and miRNA660-5p) are examples. Although redox biomarkers have great potential, their clinical applicability faces challenges. Redox biomarkers frequently have a short half-life and exist in small quantities in the blood, making them challenging to identify and measure. The interpretation of biomarker data may also be influenced by confounding factors and the complex interplay of various oxidative stress pathways. Therefore, in-depth validation studies and the development of sensitive and precise detection methods are needed to address these problems. In the search for redox biomarkers, cutting-edge techniques like mass spectrometry, immunoassays, and molecular diagnostics are applied. New platforms and technologies have made it possible to accurately detect and monitor redox biomarkers, which facilitates their use in clinical settings. Our expanding knowledge of RNS and ROS involvement in cardiovascular disorders has made it possible to develop redox biomarkers as diagnostic and prognostic tools. Overcoming the challenges associated with their utility and utilizing advanced detection techniques, which will improve their clinical applicability, will ultimately benefit the management and treatment of cardiovascular conditions.
Insights
Reactive nitrogen and oxygen species (RNS and ROS) contribute to cardiovascular diseases. Redox biomarkers help diagnose and predict these conditions, but challenges remain in their clinical application.
Area of Science:
- Cardiovascular Research
- Biomarker Discovery
- Oxidative Stress Mechanisms
Background:
- Overproduction of reactive nitrogen and oxygen species (RNS and ROS) is implicated in the pathogenesis of cardiovascular diseases like diabetes, hypertension, and stroke.
- RNS and ROS contribute to oxidative stress, promoting endothelial dysfunction, vascular inflammation, and lipid peroxidation, key factors in cardiovascular pathologies.
- Understanding RNS and ROS production mechanisms is vital for identifying therapeutic targets in cardiovascular disorders.
Purpose of the Study:
- To highlight the role of redox biomarkers in diagnosing and predicting cardiovascular states.
- To discuss advancements in identifying and detecting small molecules associated with oxidative stress.
- To address the challenges and future directions for the clinical application of redox biomarkers.
Main Methods:
- Review of current literature on RNS/ROS production and their link to cardiovascular diseases.
- Identification of key redox biomarkers, including specific molecules and microRNAs.
- Discussion of advanced detection techniques such as mass spectrometry, immunoassays, and molecular diagnostics.
Main Results:
- Several redox biomarkers (e.g., 3-nitrotyrosine, 4-hydroxy-2-nonenal, specific microRNAs) are identified as indicators of oxidative stress in cardiovascular conditions.
- Proteomics, metabolomics, genomics, and transcriptomics facilitate the detection of these small molecules.
- Advanced techniques enable accurate detection and monitoring of redox biomarkers for clinical use.
Conclusions:
- Redox biomarkers are crucial tools for diagnosing and predicting cardiovascular conditions, with ongoing advancements improving their detection.
- Challenges such as short half-life and low concentrations of biomarkers necessitate further validation and sensitive detection methods.
- Overcoming these challenges and utilizing advanced techniques will enhance the clinical applicability of redox biomarkers for improved cardiovascular disease management.
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