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Examining the clinical relevance of metformin as an antioxidant intervention
Angelika Buczyńska1, Iwona Sidorkiewicz2, Adam Jacek Krętowski1,3
1Clinical Research Centre, Medical University of Bialystok, Bialystok, Poland.
Abstract:
In physiological concentrations, reactive oxygen species play a vital role in regulating cell signaling and gene expression. Nevertheless, oxidative stress is implicated in the pathogenesis of numerous diseases and can inflict damage on diverse cell types and tissues. Thus, understanding the factors that mitigate the deleterious effects of oxidative stress is imperative for identifying new therapeutic targets. In light of the absence of direct treatment recommendations for reducing oxidative stress, there is a continuing need for fundamental research that utilizes innovative therapeutic approaches. Metformin, known for its multifaceted beneficial properties, is acknowledged for its ability to counteract the adverse effects of increased oxidative stress at both molecular and cellular levels. In this review, we delve into recent insights regarding metformin's antioxidant attributes, aiming to expand its clinical applicability. Our review proposes that metformin holds promise as a potential adjunctive therapy for various diseases, given its modulation of oxidative stress characteristics and regulation of diverse metabolic pathways. These pathways include lipid metabolism, hormone synthesis, and immunological responses, all of which may experience dysregulation in disease states, contributing to increased oxidative stress. Furthermore, our review introduces potential novel metformin-based interventions that may merit consideration in future research. Nevertheless, the necessity for clinical trials involving this drug remains imperative, as they are essential for establishing therapeutic dosages and addressing challenges associated with dose-dependent effects.
Insights
Metformin demonstrates significant antioxidant properties, counteracting oxidative stress at molecular and cellular levels. This review explores its potential as an adjunctive therapy for various diseases by modulating metabolic pathways.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Reactive oxygen species (ROS) are crucial for cell signaling but excessive levels cause oxidative stress, implicated in numerous diseases.
- Understanding factors that mitigate oxidative stress is vital for identifying new therapeutic targets.
- Current treatments lack direct recommendations for reducing oxidative stress, necessitating innovative research.
Purpose of the Study:
- To review recent insights into metformin's antioxidant attributes.
- To explore metformin's potential as an adjunctive therapy for diseases linked to oxidative stress.
- To identify novel metformin-based interventions for future research.
Main Methods:
- Literature review of existing studies on metformin and oxidative stress.
- Analysis of metformin's effects on molecular and cellular levels.
- Exploration of metformin's impact on metabolic pathways relevant to oxidative stress.
Main Results:
- Metformin effectively counteracts adverse effects of increased oxidative stress.
- Metformin modulates lipid metabolism, hormone synthesis, and immunological responses.
- Metformin shows promise in regulating diverse metabolic pathways contributing to oxidative stress.
Conclusions:
- Metformin possesses significant antioxidant properties, offering potential as an adjunctive therapy.
- Further clinical trials are essential to establish therapeutic dosages and address dose-dependent effects.
- Novel metformin-based interventions warrant consideration for future research.
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