TRPM2: bridging calcium and ROS signaling pathways-implications for human diseases
Maria Maliougina1, Yassine El Hiani1
1Department of Physiology and Biophysics, Dalhousie University Faculty of Medicine, Halifax, NS, Canada.
Abstract:
TRPM2 is a versatile and essential signaling molecule that plays diverse roles in Ca2+ homeostasis and oxidative stress signaling, with implications in various diseases. Research evidence has shown that TRPM2 is a promising therapeutic target. However, the decision of whether to activate or inhibit TRPM2 function depends on the context and specific disease. A deeper understanding of the molecular mechanisms governing TRPM2 activation and regulation could pave the way for the development of innovative therapeutics targeting TRPM2 to treat a broad range of diseases. In this review, we examine the structural and biophysical details of TRPM2, its involvement in neurological and cardiovascular diseases, and its role in inflammation and immune system function. In addition, we provide a comprehensive overview of the current knowledge of TRPM2 signaling pathways in cancer, including its functions in bioenergetics, oxidant defense, autophagy, and response to anticancer drugs.
Insights
Transient Receptor Potential Melastatin 2 (TRPM2) is crucial for calcium (Ca2+) balance and oxidative stress, showing therapeutic potential. Understanding TRPM2 mechanisms is key to developing targeted treatments for diverse diseases.
Area of Science:
- Molecular biology
- Biophysics
- Pathophysiology
Background:
- TRPM2 is a critical ion channel involved in Ca2+ homeostasis and oxidative stress signaling.
- Dysregulation of TRPM2 is implicated in various diseases, highlighting its potential as a therapeutic target.
Purpose of the Study:
- To provide a comprehensive review of TRPM2's structural, biophysical, and signaling mechanisms.
- To explore the role of TRPM2 in neurological, cardiovascular, inflammatory, and immune system functions.
- To summarize TRPM2's involvement in cancer, including its impact on bioenergetics, oxidant defense, autophagy, and drug response.
Main Methods:
- Literature review of structural and biophysical studies on TRPM2.
- Analysis of research on TRPM2's role in various disease models.
- Synthesis of current knowledge on TRPM2 signaling pathways in cancer.
Main Results:
- TRPM2 exhibits diverse roles in cellular signaling, particularly in Ca2+ flux and response to oxidative stress.
- Context-dependent activation or inhibition of TRPM2 is necessary for therapeutic strategies.
- TRPM2 is implicated in neurodegeneration, cardiovascular dysfunction, inflammation, and immune responses.
- TRPM2 influences key cancer processes such as energy metabolism, antioxidant defense, and autophagy.
Conclusions:
- TRPM2 is a versatile therapeutic target, but its specific role requires careful consideration of the disease context.
- Further understanding of TRPM2's molecular regulation is essential for developing novel TRPM2-targeted therapies.
- TRPM2 modulation holds promise for treating a wide spectrum of diseases, including cancer.
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