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.

The Biochemical Journal
|December 13, 2016
PubMed

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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