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Oxidative stress-modulated TRPM ion channels in cell dysfunction and pathological conditions in humans
Felipe Simon1, Diego Varela, Claudio Cabello-Verrugio
1Departamento de Ciencias Biológicas, Facultad de Ciencias Biológicas and Facultad de Medicina, Universidad Andres Bello, Avenida Republica 239, 8370146, Santiago, Chile. fsimon@unab.cl
Abstract:
The transient receptor potential melastatin (TRPM) protein family is an extensive group of ion channels expressed in several types of mammalian cells. Many studies have shown that these channels are crucial for performing several physiological functions. Additionally, a large body of evidence indicates that these channels are also involved in numerous human diseases, known as channelopathies. A characteristic event frequently observed during pathological states is the raising in intracellular oxidative agents over reducing molecules, shifting the redox balance and inducing oxidative stress. In particular, three members of the TRPM subfamily, TRPM2, TRPM4 and TRPM7, share the remarkable feature that their activities are modulated by oxidative stress. Because of the increase in oxidative stress, these TRPM channels function aberrantly, promoting the onset and development of diseases. Increases, absences, or modifications in the function of these redox-modulated TRPM channels are associated with cell dysfunction and human pathologies. Therefore, the effect of oxidative stress on ion channels becomes an essential part of the pathogenic mechanism. Thus, oxidative stress-modulated ion channels are more susceptible to generating pathological states than oxidant-independent channels. This review examines the most relevant findings regarding the participation of the oxidative stress-modulated TRPM ion channels, TRPM2, TRPM4, and TRPM7, in human diseases. In addition, the potential roles of these channels as therapeutic tools and targets for drug design are discussed.
Insights
Oxidative stress disrupts the function of specific Transient Receptor Potential Melastatin (TRPM) ion channels (TRPM2, TRPM4, TRPM7), contributing to human diseases. Targeting these redox-modulated channels offers therapeutic potential.
Area of Science:
- Ion channel biology
- Oxidative stress research
- Human pathology
Background:
- Transient Receptor Potential Melastatin (TRPM) channels are vital for physiological functions in mammals.
- Dysfunctional TRPM channels are implicated in various human diseases (channelopathies).
- Oxidative stress, an imbalance of redox agents, is a common feature of pathological states.
Purpose of the Study:
- To review the role of oxidative stress-modulated TRPM channels (TRPM2, TRPM4, TRPM7) in human diseases.
- To explore the therapeutic potential of targeting these channels for drug design.
Main Methods:
- Literature review of studies on TRPM channels, oxidative stress, and human diseases.
- Analysis of the mechanisms linking aberrant TRPM channel function to pathology.
Main Results:
- TRPM2, TRPM4, and TRPM7 activities are significantly modulated by oxidative stress.
- Aberrant function of these redox-sensitive TRPM channels promotes disease onset and progression.
- Oxidative stress-modulated channels are more prone to causing pathological states.
Conclusions:
- TRPM2, TRPM4, and TRPM7 channels are key players in oxidative stress-related pathologies.
- These channels represent promising therapeutic targets for treating channelopathies and other diseases.
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