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Published on: February 13, 2019
Metabolic alterations derived from absence of Two-Pore Channel 1 at cardiac level
Vanessa Garcia-Rua1, Sandra Feijoo-Bandin, Maria Garcia-Vence
1Cellular and Molecular Cardiology Research Unit and Department of Cardiology, Institute of Biomedical Research and University Clinical Hospital, 15706, Santiago de Compostela, Spain.
Abstract:
Two-pore channels (TPCs or TPCNs) are novel voltage-gated ion channels that have been postulated to act as Ca2+ and/or Na+ channels expressed exclusively in acidic organelles such as endosomes and lysosomes. TPCNs participate in the regulation of diverse biological processes and recently have been proposed to be involved in the pathophysiology of metabolic disorders such as obesity, fatty liver disease and type 2 diabetes mellitus. Due to the importance of these pathologies in the development of cardiovascular diseases, we aimed to study the possible role of two-pore channel 1 (TPCN1) in the regulation of cardiac metabolism. To explore the cardiac function of TPCN1, we developed proteomic approaches as 2-DE-MALDI-MS and LC-MALDI-MS in the cardiac left ventricle of TPCN1 KO and WT mice, and found alterations in several proteins implicated in glucose and fatty acid metabolism in TPCN1 KO vs. WT mice. The results confirmed the altered expression of HFABP, a key fatty acid transport protein, and of enolase and PGK1, the key enzymes in the glycolytic process. Finally, in vitro experiments performed in neonatal rat cardiomyocytes, in which TPCN1 was silenced using siRNAs, confirmed that the downregulation of TPCN1 gene expression increased 2-deoxy-D-[3H]-glucose uptake and GLUT4 mobilization into cell peripherals in cardiac cells. Our results are the first to suggest a potential role for TPCNs in cardiac metabolism regulation.
Insights
Two-pore channels (TPCN1) regulate cardiac metabolism by influencing glucose and fatty acid pathways. Downregulating TPCN1 enhances glucose uptake in heart cells, suggesting a role in cardiovascular health.
Area of Science:
- Molecular Biology
- Cardiovascular Physiology
- Metabolic Disorders
Background:
- Two-pore channels (TPCs) are ion channels in acidic organelles, implicated in metabolic disorders like obesity and diabetes.
- Metabolic dysfunction is a key factor in cardiovascular disease development.
Purpose of the Study:
- To investigate the role of two-pore channel 1 (TPCN1) in regulating cardiac metabolism.
- To explore the impact of TPCN1 on glucose and fatty acid metabolism in the heart.
Main Methods:
- Proteomic analysis (2-DE-MALDI-MS, LC-MALDI-MS) of cardiac left ventricle from TPCN1 knockout (KO) and wild-type (WT) mice.
- In vitro experiments using neonatal rat cardiomyocytes with TPCN1 gene silencing via siRNAs.
Main Results:
- TPCN1 KO mice showed altered expression of proteins involved in glucose and fatty acid metabolism, including HFABP, enolase, and PGK1.
- Silencing TPCN1 in cardiomyocytes increased 2-deoxy-D-[3H]-glucose uptake.
- Downregulation of TPCN1 promoted GLUT4 mobilization to the cell periphery in cardiac cells.
Conclusions:
- TPCN1 plays a role in regulating cardiac metabolism.
- These findings suggest TPCNs may be involved in managing cardiac metabolic pathways and cardiovascular health.
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