Reduced mechanical efficiency of rat papillary muscle related to degree of hypertrophy of cardiomyocytes

Isolated rat papillary muscles of the right ventricle were used to discover the origin of reduced myocardial efficiency in chronic heart failure. Right ventricular hypertrophy was induced by monocrotaline injection, causing pulmonary hypertension. Control (n = 7) and hypertrophied (n = 11) papillary...

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Published inAmerican journal of physiology. Heart and circulatory physiology Vol. 298; no. 4; pp. H1190 - H1197
Main Authors Wong, Yeun Ying, Handoko, M Louis, Mouchaers, Koen T B, de Man, Frances S, Vonk-Noordegraaf, Anton, van der Laarse, Willem J
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Published United States American Physiological Society 01.04.2010
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Abstract Isolated rat papillary muscles of the right ventricle were used to discover the origin of reduced myocardial efficiency in chronic heart failure. Right ventricular hypertrophy was induced by monocrotaline injection, causing pulmonary hypertension. Control (n = 7) and hypertrophied (n = 11) papillary muscles were subjected to sinusoidal length changes at 37 degrees C and 5 Hz with a peak-to-peak amplitude of 15% of the length giving maximum force (L(max)) after being stretched to 92.5% of L(max). Isometric tension at L(max) was similar in control and hypertrophied muscles. Work was assessed from the area encompassed by force-length loops. Work per loop was 0.93 +/- 0.11 and 0.84 +/- 0.11 microJ/mm(3) (means +/- SE) for control and hypertrophied muscles, respectively (P = 0.591). Suprabasal O(2) uptake per work loop was 5.7 +/- 0.7 pmol/mm(3) in control muscles and 8.7 +/- 1.7 pmol/mm(3) in hypertrophied muscles (P = 0.133). Net mechanical efficiency was calculated from the ratio of work output and suprabasal O(2) uptake. The efficiency of hypertrophied muscles was 29.1 +/- 3.7% and was smaller than in control muscles (43.7 +/- 2.2%, P = 0.016). The right ventricular cardiomyocyte cross-sectional area increased from 272 +/- 17 microm(2) in control muscles to 396 +/- 31 microm(2) in hypertrophied muscles (P < 0.003). Mechanical efficiency correlated negatively with right ventricular wall thickness and cardiomyocyte cross-sectional area [Spearman rank correlation coefficients of -0.50 (P = 0.039) and -0.53 (P = 0.024), respectively]. We conclude that efficiency decreases with increasing cardiomyocyte hypertrophy. Thus, the reduced efficiency of diseased whole hearts can be at least partly explained by reduced efficiency at the cardiomyocyte level.
AbstractList Isolated rat papillary muscles of the right ventricle were used to discover the origin of reduced myocardial efficiency in chronic heart failure. Right ventricular hypertrophy was induced by monocrotaline injection, causing pulmonary hypertension. Control (n = 7) and hypertrophied (n = 11) papillary muscles were subjected to sinusoidal length changes at 37 degrees C and 5 Hz with a peak-to-peak amplitude of 15% of the length giving maximum force (L(max)) after being stretched to 92.5% of L(max). Isometric tension at L(max) was similar in control and hypertrophied muscles. Work was assessed from the area encompassed by force-length loops. Work per loop was 0.93 +/- 0.11 and 0.84 +/- 0.11 microJ/mm(3) (means +/- SE) for control and hypertrophied muscles, respectively (P = 0.591). Suprabasal O(2) uptake per work loop was 5.7 +/- 0.7 pmol/mm(3) in control muscles and 8.7 +/- 1.7 pmol/mm(3) in hypertrophied muscles (P = 0.133). Net mechanical efficiency was calculated from the ratio of work output and suprabasal O(2) uptake. The efficiency of hypertrophied muscles was 29.1 +/- 3.7% and was smaller than in control muscles (43.7 +/- 2.2%, P = 0.016). The right ventricular cardiomyocyte cross-sectional area increased from 272 +/- 17 microm(2) in control muscles to 396 +/- 31 microm(2) in hypertrophied muscles (P < 0.003). Mechanical efficiency correlated negatively with right ventricular wall thickness and cardiomyocyte cross-sectional area [Spearman rank correlation coefficients of -0.50 (P = 0.039) and -0.53 (P = 0.024), respectively]. We conclude that efficiency decreases with increasing cardiomyocyte hypertrophy. Thus, the reduced efficiency of diseased whole hearts can be at least partly explained by reduced efficiency at the cardiomyocyte level.
Isolated rat papillary muscles of the right ventricle were used to discover the origin of reduced myocardial efficiency in chronic heart failure. Right ventricular hypertrophy was induced by monocrotaline injection, causing pulmonary hypertension. Control (n = 7) and hypertrophied (n = 11) papillary muscles were subjected to sinusoidal length changes at 37...C and 5 Hz with a peak-to-peak amplitude of 15% of the length giving maximum force (L...) after being stretched to 92.5% of L... Isometric tension at L... was similar in control and hypertrophied muscles. Work was assessed from the area encompassed by force-length loops. Work per loop was 0.93 ± 0.11 and 0.84 ± 0.11 ...J/mm... (means ± SE) for control and hypertrophied muscles, respectively (P = 0.591). Suprabasal ... uptake per work loop was 5.7 ± 0.7 pmol/mm... in control muscles and 8.7 ± 1.7 pmol/mm... in hypertrophied muscles (P = 0.133). Net mechanical efficiency was calculated from the ratio of work output and suprabasal ... uptake. The efficiency of hypertrophied muscles was 29.1 ± 3.7% and was smaller than in control muscles (43.7 ± 2.2%, P = 0.016). The right ventricular cardiomyocyte cross-sectional area increased from 272 ± 17 ...m... in control muscles to 396 ± 31 ...m... in hypertrophied muscles (P < 0.003). Mechanical efficiency correlated negatively with right ventricular wall thickness and cardiomyocyte cross-sectional area [Spearman rank correlation coefficients of -0.50 (P = 0.039) and -0.53 (P = 0.024), respectively]. We conclude that efficiency decreases with increasing cardiomyocyte hypertrophy. Thus, the reduced efficiency of diseased whole hearts can be at least partly explained by reduced efficiency at the cardiomyocyte level. (ProQuest: ... denotes formulae/symbols omitted.)
Isolated rat papillary muscles of the right ventricle were used to discover the origin of reduced myocardial efficiency in chronic heart failure. Right ventricular hypertrophy was induced by monocrotaline injection, causing pulmonary hypertension. Control ( n = 7) and hypertrophied ( n = 11) papillary muscles were subjected to sinusoidal length changes at 37°C and 5 Hz with a peak-to-peak amplitude of 15% of the length giving maximum force ( L max ) after being stretched to 92.5% of L max . Isometric tension at L max was similar in control and hypertrophied muscles. Work was assessed from the area encompassed by force-length loops. Work per loop was 0.93 ± 0.11 and 0.84 ± 0.11 μJ/mm 3 (means ± SE) for control and hypertrophied muscles, respectively ( P = 0.591). Suprabasal O 2 uptake per work loop was 5.7 ± 0.7 pmol/mm 3 in control muscles and 8.7 ± 1.7 pmol/mm 3 in hypertrophied muscles ( P = 0.133). Net mechanical efficiency was calculated from the ratio of work output and suprabasal O 2 uptake. The efficiency of hypertrophied muscles was 29.1 ± 3.7% and was smaller than in control muscles (43.7 ± 2.2%, P = 0.016). The right ventricular cardiomyocyte cross-sectional area increased from 272 ± 17 μm 2 in control muscles to 396 ± 31 μm 2 in hypertrophied muscles ( P < 0.003). Mechanical efficiency correlated negatively with right ventricular wall thickness and cardiomyocyte cross-sectional area [Spearman rank correlation coefficients of −0.50 ( P = 0.039) and −0.53 ( P = 0.024), respectively]. We conclude that efficiency decreases with increasing cardiomyocyte hypertrophy. Thus, the reduced efficiency of diseased whole hearts can be at least partly explained by reduced efficiency at the cardiomyocyte level.
Author Handoko, M Louis
van der Laarse, Willem J
Vonk-Noordegraaf, Anton
Wong, Yeun Ying
Mouchaers, Koen T B
de Man, Frances S
Author_xml – sequence: 1
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  fullname: Wong, Yeun Ying
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  givenname: Willem J
  surname: van der Laarse
  fullname: van der Laarse, Willem J
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Snippet Isolated rat papillary muscles of the right ventricle were used to discover the origin of reduced myocardial efficiency in chronic heart failure. Right...
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StartPage H1190
SubjectTerms Animals
Biomechanical Phenomena
Cardiology
Cardiomyocytes
Disease Models, Animal
Heart failure
Hypertension, Pulmonary - chemically induced
Hypertension, Pulmonary - metabolism
Hypertension, Pulmonary - physiopathology
Hypertrophy - pathology
Male
Monocrotaline - adverse effects
Muscle Relaxation - physiology
Myocardial Contraction - physiology
Myocytes, Cardiac - metabolism
Myocytes, Cardiac - pathology
Oxygen
Oxygen - metabolism
Papillary Muscles - physiopathology
Rats
Rats, Wistar
Rodents
Title Reduced mechanical efficiency of rat papillary muscle related to degree of hypertrophy of cardiomyocytes
URI https://www.ncbi.nlm.nih.gov/pubmed/20118411
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