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Updated: Jul 5, 2026

Study of In Vivo Glucose Metabolism in High-fat Diet-fed Mice Using Oral Glucose Tolerance Test (OGTT) and Insulin Tolerance Test (ITT)
Published on: January 7, 2018
Modulating an oxidative-inflammatory cascade: potential new treatment strategy for improving glucose metabolism,
1REL & Associates, LLC, Downingtown, PA 19335-4803, USA. rel@relscience.com
Abstract:
Type 2 diabetes is a result of derangement of homeostatic systems of metabolic control and immune defense. Increases in visceral fat and organ adipose, environmental factors and genetic predisposition create imbalances of these homeostatic mechanisms, ultimately leading to a condition in which the oxidative environment cannot be held in check. A significant imbalance between the production of reactive oxygen species and antioxidant defenses, a condition called to oxidative stress, ensues, leading to alterations in stress-signalling pathways and potentially end-organ damage. Oxidative stress and metabolic inflammation upregulate the expression pro-inflammatory cytokines, including tissue necrosis factor alpha, monocyte chemoattractant protein-1 and interleukin-6, as well as activating stress-sensitive kinases, such as c-Jun N-terminal kinase (JNK), phosphokinase C isoforms, mitogen-activated protein kinase and inhibitor of kappa B kinase. The JNK pathway (specifically JNK-1) appears to be a regulator that triggers the oxidative-inflammation cascade that, if left unchecked, can become chronic and cause abnormal glucose metabolism. This can lead to insulin resistance and dysfunction of the vasculature and pancreatic beta-cell. The series of events set in motion by the interaction between metabolic inflammation and oxidative stress constitutes an 'oxidative-inflammatory cascade', a delicate balance driven by mediators of the immune and metabolic systems, maintained through a positive feedback loop. Modulating an oxidative-inflammation cascade may improve glucose metabolism, insulin resistance and vascular function, thereby slowing the development and progression to cardiovascular diseases and type 2 diabetes.
Insights
Type 2 diabetes arises from metabolic and immune system imbalances, leading to oxidative stress. Targeting the oxidative-inflammation cascade may improve glucose metabolism and reduce cardiovascular disease risk.
Area of Science:
- Metabolic disorders
- Immunology
- Oxidative stress research
Background:
- Type 2 diabetes results from dysregulated metabolic control and immune defense systems.
- Increased visceral fat and genetic factors contribute to imbalances, causing oxidative stress.
- Oxidative stress and inflammation disrupt signaling pathways, potentially damaging organs.
Purpose of the Study:
- To elucidate the role of the oxidative-inflammation cascade in type 2 diabetes pathogenesis.
- To explore the connection between oxidative stress, inflammation, and metabolic dysfunction.
- To identify potential therapeutic targets for type 2 diabetes and related cardiovascular diseases.
Main Methods:
- The study reviews the interplay between metabolic inflammation and oxidative stress.
- It examines the upregulation of pro-inflammatory cytokines and stress-sensitive kinases.
- Focuses on the c-Jun N-terminal kinase (JNK) pathway's role in the cascade.
Main Results:
- Oxidative stress and inflammation activate pathways like JNK, driving an 'oxidative-inflammatory cascade'.
- This cascade contributes to abnormal glucose metabolism, insulin resistance, and vascular dysfunction.
- The process involves a positive feedback loop between immune and metabolic mediators.
Conclusions:
- The oxidative-inflammation cascade is a key factor in type 2 diabetes development.
- Modulating this cascade offers a potential strategy to improve glucose metabolism and insulin resistance.
- Interventions targeting this cascade may slow the progression of cardiovascular diseases in diabetic patients.
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