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Updated: Sep 24, 2025

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Partial and complete loss of myosin binding protein H-like cause cardiac conduction defects
David Y Barefield1, Sean Yamakawa2, Ibrahim Tahtah2
1Center for Genetic Medicine, Feinberg School of Medicine, Northwestern University, Chicago, IL, United States of America; Department of Cell and Molecular Physiology, Loyola University Chicago, Maywood, IL, United States of America.
Insights
Loss of myosin binding protein H-like (MyBP-HL) causes heart rhythm problems. MyBP-HL is found in the heart
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cardiac Electrophysiology
Background:
- MYBPHL gene mutations are linked to human heart conditions like dilated cardiomyopathy and arrhythmias.
- Previous studies indicated Mybphl expression in mouse atria and ventricles, but its precise localization and function were unclear.
- Understanding MyBP-HL's role is crucial given its association with cardiac conduction system disease.
Purpose of the Study:
- To determine the anatomical localization of MyBP-HL in the mouse heart.
- To investigate the functional consequences of MyBP-HL loss on cardiac conduction.
- To elucidate the molecular mechanisms underlying MyBP-HL-associated arrhythmias.
Main Methods:
- Immunofluorescence microscopy to visualize MyBP-HL localization in adult mouse ventricles.
- Lightsheet microscopy to examine MyBP-HL distribution in perinatal mouse hearts.
- Surface telemetry and intracardiac pacing to assess cardiac electrophysiology in Mybphl-null mice.
- Calcium transient analysis and super-resolution microscopy of atrial cardiomyocytes.
Main Results:
- MyBP-HL was found in ventricular cardiomyocytes near the atrioventricular node and in Purkinje fibers.
- Mybphl heterozygosity led to reduced MyBP-HL-positive cells and disrupted association with the ventricular conduction system.
- Mybphl-null mice exhibited atrioventricular block, atrial bigeminy, atrial tachycardia, and shorter atrial refractory periods.
- Atrial cardiomyocytes from Mybphl-null mice showed increased calcium release heterogeneity and ryanodine receptor disorganization.
Conclusions:
- MyBP-HL is a key component of the cardiac conduction system, particularly in the atria and ventricular conduction pathways.
- Loss of MyBP-HL disrupts cardiac electrical activity, leading to significant arrhythmias.
- Abnormal calcium handling and conduction system disorganization in MyBP-HL deficient hearts explain observed arrhythmias and dysfunction.
Abstract:
A premature truncation of MYBPHL in humans and a loss of Mybphl in mice is associated with dilated cardiomyopathy, atrial and ventricular arrhythmias, and atrial enlargement. MYBPHL encodes myosin binding protein H-like (MyBP-HL). Prior work in mice indirectly identified Mybphl expression in the atria and in small puncta throughout the ventricle. Because of its genetic association with human and mouse cardiac conduction system disease, we evaluated the anatomical localization of MyBP-HL and the consequences of loss of MyBP-HL on conduction system function. Immunofluorescence microscopy of normal adult mouse ventricles identified MyBP-HL-positive ventricular cardiomyocytes that co-localized with the ventricular conduction system marker contactin-2 near the atrioventricular node and in a subset of Purkinje fibers. Mybphl heterozygous ventricles had a marked reduction of MyBP-HL-positive cells compared to controls. Lightsheet microscopy of normal perinatal day 5 mouse hearts showed enrichment of MyBP-HL-positive cells within and immediately adjacent to the contactin-2-positive ventricular conduction system, but this association was not apparent in Mybphl heterozygous hearts. Surface telemetry of Mybphl-null mice revealed atrioventricular block and atrial bigeminy, while intracardiac pacing revealed a shorter atrial relative refractory period and atrial tachycardia. Calcium transient analysis of isolated Mybphl-null atrial cardiomyocytes demonstrated an increased heterogeneity of calcium release and faster rates of calcium release compared to wild type controls. Super-resolution microscopy of Mybphl heterozygous and homozygous null atrial cardiomyocytes showed ryanodine receptor disorganization compared to wild type controls. Abnormal calcium release, shorter atrial refractory period, and atrial dilation seen in Mybphl null, but not wild type control hearts, agree with the observed atrial arrhythmias, bigeminy, and atrial tachycardia, whereas the proximity of MyBP-HL-positive cells with the ventricular conduction system provides insight into how a predominantly atrial expressed gene contributes to ventricular arrhythmias and ventricular dysfunction.
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Cardiomyopathy III: Hypertrophic Cardiomyopathy
Cardiomyopathy I: Introduction and Classification
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