Knockdown of embryonic myosin heavy chain reveals an essential role in the morphology and function of the developing heart

Author:

Rutland Catrin Sian12,Polo-Parada Luis3,Ehler Elisabeth4,Alibhai Aziza1,Thorpe Aaran1,Suren Suganthi5,Emes Richard D.2,Patel Bhakti1,Loughna Siobhan1

Affiliation:

1. School of Biomedical Sciences, University of Nottingham, Queens Medical Centre, Derby Road, Nottingham, NG7 2UH, UK.

2. School of Veterinary Medicine and Science, University of Nottingham, Sutton Bonington Campus, Sutton Bonington, Leicestershire, LE12 5RD, UK.

3. Department of Medical Pharmacology and Physiology, School of Medicine, University of Missouri, Dalton Cardiovascular Research Center, 134 Research Park, Columbia MO. 65211, USA.

4. Randall Division of Cell and Molecular Biophysics and The Cardiovascular Division, New Hunt's House, King's College London, Guy's Campus, London, SE1 1UL, UK.

5. Human Developmental Biology Resource, Neural Development Unit, UCL Institute of Child Health, 30 Guilford Street, London, WC1N 1EH, UK.

Abstract

The expression and function of embryonic myosin heavy chain (eMYH) has not been investigated within the early developing heart. This is despite the knowledge that other structural proteins, such as alpha and beta myosin heavy chains and cardiac alpha actin, play crucial roles in atrial septal development and cardiac function. Most cases of atrial septal defects and cardiomyopathy are not associated with a known causative gene, suggesting that further analysis into candidate genes is required. Expression studies localised eMYH in the developing chick heart. eMYH knockdown was achieved using morpholinos in a temporal manner and functional studies were carried out using electrical and calcium signalling methodologies. Knockdown in the early embryo led to abnormal atrial septal development and heart enlargement. Intriguingly, action potentials of the eMYH knockdown hearts were abnormal in comparison with the alpha and beta myosin heavy chain knockdowns and controls. Although myofibrillogenesis appeared normal, in knockdown hearts the tissue integrity was affected owing to apparent focal points of myocyte loss and an increase in cell death. An expression profile of human skeletal myosin heavy chain genes suggests that human myosin heavy chain 3 is the functional homologue of the chick eMYH gene. These data provide compelling evidence that eMYH plays a crucial role in important processes in the early developing heart and, hence, is a candidate causative gene for atrial septal defects and cardiomyopathy.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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