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PMID: 24835277 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Gene-specific increase in the energetic cost of contraction in hypertrophic cardiomyopathy caused by thick filament mutations.

Cardiovascular research ·Vol. 103 ·No. 2 ·2014-07-15 ·Pages 248-57

Witjas-Paalberends ER, Güçlü A, Germans T, Knaapen P, Harms HJ, Vermeer AM, Christiaans I, Wilde AA, Dos Remedios C, Lammertsma AA, van Rossum AC, Stienen GJ, van Slegtenhorst M, Schinkel AF, Michels M, Ho CY, Poggesi C, van der Velden J

Abstract

Disease mechanisms regarding hypertrophic cardiomyopathy (HCM) are largely unknown and disease onset varies. Sarcomere mutations might induce energy depletion for which until now there is no direct evidence at sarcomere level in human HCM. This study investigated if mutations in genes encoding myosin-binding protein C (MYBPC3) and myosin heavy chain (MYH7) underlie changes in the energetic cost of contraction in the development of human HCM disease. Energetic cost of contraction was studied in vitro by measurements of force development and ATPase activity in cardiac muscle strips from 26 manifest HCM patients (11 MYBPC3mut, 9 MYH7mut, and 6 sarcomere mutation-negative, HCMsmn). In addition, in vivo, the ratio between external work (EW) and myocardial oxygen consumption (MVO2) to obtain myocardial external efficiency (MEE) was determined in 28 pre-hypertrophic mutation carriers (14 MYBPC3mut and 14 MYH7mut) and 14 healthy controls using [(11)C]-acetate positron emission tomography and cardiovascular magnetic resonance imaging. Tension cost (TC), i.e. ATPase activity during force development, was higher in MYBPC3mut and MYH7mut compared with HCMsmn at saturating [Ca(2+)]. TC was also significantly higher in MYH7mut at submaximal, more physiological [Ca(2+)]. EW was significantly lower in both mutation carrier groups, while MVO2 did not differ. MEE was significantly lower in both mutation carrier groups compared with controls, showing the lowest efficiency in MYH7 mutation carriers. We provide direct evidence that sarcomere mutations perturb the energetic cost of cardiac contraction. Gene-specific severity of cardiac abnormalities may underlie differences in disease onset and suggests that early initiation of metabolic treatment may be beneficial, in particular, in MYH7 mutation carriers.

Keywords
Hypertrophic cardiomyopathy Mutation carriers Myocardial efficiency Sarcomere function Sarcomere mutations
MeSH Terms
Actin Cytoskeleton/genetics Adult Aged Cardiac Myosins/genetics,metabolism Cardiomyopathy, Hypertrophic/genetics Carrier Proteins/genetics Female Gene Expression Regulation Genotype Humans Male Middle Aged Mutation/genetics Myocardial Contraction/genetics,physiology Myosin Heavy Chains/genetics Sarcomeres/genetics,pathology
Chemicals
Carrier Proteins MYH7 protein, human myosin-binding protein C Cardiac Myosins Myosin Heavy Chains
Authors & Affiliations
18 authors, click to expand affiliations / ORCID
Witjas-Paalberends E Rosalie
Department of Physiology, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, Amsterdam, The Netherlands [email protected] [email protected].
Güçlü Ahmet
Department of Cardiology, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, De Boelelaan 1117, 1081 HV Amsterdam, The Netherlands ICIN Netherlands Heart Institute, Utrecht, The Netherlands [email protected] [email protected].
Germans Tjeerd
Department of Cardiology, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, De Boelelaan 1117, 1081 HV Amsterdam, The Netherlands.
Knaapen Paul
Department of Cardiology, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, De Boelelaan 1117, 1081 HV Amsterdam, The Netherlands.
Harms Hendrik J
Department of Radiology and Nuclear Medicine, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, Amsterdam, The Netherlands.
Vermeer Alexa M C
Department of Clinical Genetics, Academic Medical Center, Amsterdam, The Netherlands.
Christiaans Imke
Department of Clinical Genetics, Academic Medical Center, Amsterdam, The Netherlands.
Wilde Arthur A M
Department of Cardiology, Academic Medical Center, Amsterdam, The Netherlands.
Dos Remedios Cris
Institute for Biomedical Research, Muscle Research Unit, University of Sydney, Sydney, Australia.
Lammertsma Adriaan A
Department of Radiology and Nuclear Medicine, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, Amsterdam, The Netherlands.
van Rossum Albert C
Department of Cardiology, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, De Boelelaan 1117, 1081 HV Amsterdam, The Netherlands.
Stienen Ger J M
Department of Physiology, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, Amsterdam, The Netherlands Department of Physics and Astronomy, VU University, Amsterdam, The Netherlands.
van Slegtenhorst Marjon
Department of Clinical Genetics, Erasmus Medical Center, Rotterdam, The Netherlands.
Schinkel Arend F
Thorax Center, Cardiology, Erasmus Medical Center, Rotterdam, The Netherlands.
Michels Michelle
Thorax Center, Cardiology, Erasmus Medical Center, Rotterdam, The Netherlands.
Ho Carolyn Y
Brigham and Women's Hospital, Cardiology, Boston, MA, USA.
Poggesi Corrado
Department of Physiology, University of Florence, Florence, Italy.
van der Velden Jolanda
Department of Physiology, Institute for Cardiovascular Research (ICaR-VU), VU University Medical Center, Amsterdam, The Netherlands ICIN Netherlands Heart Institute, Utrecht, The Netherlands.
Article Info
Journal
Cardiovascular research
Abbr.
Cardiovasc Res
ISSN
1755-3245
Published
2014-07-15
Epub
2014-00-16
Pages
248-57
Language
English
Region
England
NLM ID
0077427
Subset
IM
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