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Production and Detection of Reactive Oxygen Species ROS in Cancers
Published on: November 21, 2011
Molecular mechanisms of ROS production and oxidative stress in diabetes
Philip Newsholme1, Vinicius Fernandes Cruzat1,2, Kevin Noel Keane1
1School of Biomedical Sciences, Curtin Health Innovation Research Institute, Curtin University, Kent St., Bentley, Perth, Western Australia 6102, Australia.
Abstract:
Oxidative stress and chronic inflammation are known to be associated with the development of metabolic diseases, including diabetes. Oxidative stress, an imbalance between oxidative and antioxidative systems of cells and tissues, is a result of over production of oxidative-free radicals and associated reactive oxygen species (ROS). One outcome of excessive levels of ROS is the modification of the structure and function of cellular proteins and lipids, leading to cellular dysfunction including impaired energy metabolism, altered cell signalling and cell cycle control, impaired cell transport mechanisms and overall dysfunctional biological activity, immune activation and inflammation. Nutritional stress, such as that caused by excess high-fat and/or carbohydrate diets, promotes oxidative stress as evident by increased lipid peroxidation products, protein carbonylation and decreased antioxidant status. In obesity, chronic oxidative stress and associated inflammation are the underlying factors that lead to the development of pathologies such as insulin resistance, dysregulated pathways of metabolism, diabetes and cardiovascular disease through impaired signalling and metabolism resulting in dysfunction to insulin secretion, insulin action and immune responses. However, exercise may counter excessive levels of oxidative stress and thus improve metabolic and inflammatory outcomes. In the present article, we review the cellular and molecular origins and significance of ROS production, the molecular targets and responses describing how oxidative stress affects cell function including mechanisms of insulin secretion and action, from the point of view of possible application of novel diabetic therapies based on redox regulation.
Insights
Oxidative stress and inflammation contribute to metabolic diseases like diabetes. Exercise may counteract these effects, offering potential for new redox-based diabetes therapies.
Area of Science:
- Cellular Biology
- Metabolic Disease Research
- Oxidative Stress Studies
Background:
- Oxidative stress, an imbalance in cellular redox systems, leads to reactive oxygen species (ROS) overproduction.
- Excess ROS damages cellular components, impairing metabolism, signaling, and immune function.
- Nutritional stress from high-fat/carbohydrate diets exacerbates oxidative stress and inflammation.
Purpose of the Study:
- To review the origins and significance of ROS production in cellular dysfunction.
- To explore how oxidative stress impacts cell function, including insulin secretion and action.
- To discuss potential novel diabetic therapies based on redox regulation.
Main Methods:
- Literature review of cellular and molecular mechanisms of oxidative stress.
- Analysis of ROS production, targets, and cellular responses.
- Examination of the role of oxidative stress in metabolic diseases.
Main Results:
- Obesity-associated oxidative stress and inflammation are key drivers of insulin resistance, metabolic dysfunction, and cardiovascular disease.
- Impaired cellular signaling and metabolism result from oxidative stress, affecting insulin secretion and action.
- Exercise demonstrates potential to mitigate excessive oxidative stress and improve metabolic and inflammatory profiles.
Conclusions:
- Oxidative stress and inflammation are central to metabolic disease pathogenesis.
- Understanding ROS-mediated cellular dysfunction is crucial for developing targeted therapies.
- Redox regulation presents a promising avenue for novel therapeutic strategies in diabetes management.
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