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Updated: Feb 18, 2026

Murine Short Axis Ventricular Heart Slices for Electrophysiological Studies
Published on: June 4, 2017
Transient receptor potential melastatin 4 cation channel in pediatric heart block
1Department of Cardiology, Xuzhou Children's Hospital, Xuzhou, Jiangsu, P.R. China. anxinjian001@163.com.
Insights
Mutations in the TRPM4 gene cause progressive cardiac conduction disease (PCCD) and heart block. Understanding TRPM4 channel function is key to treating these inherited heart conditions.
Area of Science:
- Cardiovascular Genetics
- Molecular Cardiology
- Ion Channel Physiology
Background:
- Progressive cardiac conduction disease (PCCD) is an inherited pediatric heart disorder affecting the His-Purkinje system.
- Mutations in the TRPM4 gene are a known cause of familial PCCD and heart block.
- TRPM4 channels regulate cardiac membrane potential through Ca2+-activated non-selective cation currents.
Purpose of the Study:
- To investigate the role of TRPM4 gene mutations in familial PCCD.
- To elucidate the functional consequences of TRPM4 mutations on cardiac conduction.
- To explore therapeutic strategies for TRPM4-associated heart block.
Main Methods:
- Analysis of TRPM4 gene mutations in patients with familial PCCD.
- Functional characterization of TRPM4 channels with patient-specific mutations.
- Electrophysiological studies to assess channel activity and cardiac conduction.
Main Results:
- Mutations affecting TRPM4 function, including those reducing deSUMOylation, lead to increased channel activity.
- Altered TRPM4 channel function disrupts normal cardiac electrical propagation, causing conduction delays and heart block.
- Both gain-of-function and loss-of-function TRPM4 mutations are implicated in cardiac block.
Conclusions:
- TRPM4 channel dysfunction is a significant contributor to inherited cardiac conduction disorders.
- Understanding TRPM4's role provides insights into the mechanisms of heart block.
- Pacemaker implantation remains the primary treatment for severe TRPM4-related cardiac block.
Objective:
Progressive cardiac conduction disease (PCCD) is a common pediatric heart conduction disorder. It is an autosomal inheritance of rare mutations, which leads to familial cases of PCCD. In these cases, the His-Purkinje system's conductive capacity is progressively deranged, involving either right or left bundle branch block. Also, QRS complexes display widening is an important characteristic that culminates in complete AV block, syncope, and sudden death. Mutations in TRPM4 gene that encodes for transient receptor potential melastatin 4 have recently been reported to cause familial cases of PCCD and heart block. TRPM4 conducts a Ca2+-activated non-selective monovalent cationic current leading to a negative plasma membrane potential. TRPM4 channels let Na+ ion influx, causing membrane depolarization, whereas, at positive membrane potentials, TRPM4 channels repolarize the membrane by facilitating K+ ion efflux from the cell. TRPM4 protein contains many regulatory motifs that confer voltage dependence, ATP/ADP sensitivity, and Ca2+ responsiveness. Mutational studies revealed the significance of the two-calmodulin binding sites at the N-terminus of for Ca2+ dependent activation of this channel. Mutations that reduce deSUMOylation increase the steady-state levels of active TRPM4 channels on the membrane without alteration of its sensitivity to Ca2+ or ATP or its voltage dependence of activation. Increased TRPM4 function interferes with cardiac conduction and eventually contributes to heart block. Both gain and loss of function mutations of TRPM4 are implicated in the cardiac block. Currently, the major therapeutic management of cardiac block due to TRPM4 mutations is implantation of a pacemaker to reinstate normal current propagation through AV node.
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