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March 1, 2003Journal of Applied Physiology39 citations

Exercise training alters length dependence of contractile properties in rat myocardium

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GDGary M. DiffeeDNDaniel F. Nagle

Key Result

Progressive treadmill exercise increased the sarcomere length dependence of maximal tension and pCa(50) in rat cardiac myocytes compared with sedentary controls.

Structured PICO

Does progressive treadmill exercise increase the length dependence of contractile properties in rat myocardium?

P
Population
Female Sprague-Dawley rats subjected to 11 weeks of progressive treadmill exercise or sedentary control to evaluate myocardial function.
I
Intervention
11 weeks of progressive treadmill exercise
C
Comparator
Sedentary control
O
Outcome
Sarcomere length dependence of maximal tension and pCa50 in permeabilized myocytessurrogate

Exercise training increases the length dependence of maximal and submaximal tension in cardiac myocytes, which may partly explain training-induced enhancement of myocardial function.

Main Result

Absolute Event Rate: 0.132% vs 0.084%

Abstract

Myocardial function is enhanced by endurance exercise training, but the cellular mechanisms underlying this improved function remain unclear. Exercise training increases the sensitivity of rat cardiac myocytes to activation by Ca(2+), and this Ca(2+) sensitivity has been shown to be highly dependent on sarcomere length. We tested the hypothesis that exercise training increases this length dependence in cardiac myocytes. Female Sprague-Dawley rats were divided into sedentary control (C) and exercise-trained (T) groups. The T rats underwent 11 wk of progressive treadmill exercise. Heart weight increased by 14% in T compared with C rats, and plantaris muscle citrate synthase activity showed a 39% increase with training. Steady-state tension was determined in permeabilized myocytes by using solutions of various Ca(2+) concentration (pCa), and tension-pCa curves were generated at two different sarcomere lengths for each myocyte (1.9 and 2.3 microm). We found an increased sarcomere length dependence of both maximal tension and pCa(50) (the Ca(2+) concentration giving 50% of maximal tension) in T compared with C myocytes. The DeltapCa(50) between the long and short sarcomere length was 0.084 +/- 0.023 (mean +/- SD) in myocytes from C hearts compared with 0.132 +/- 0.014 in myocytes from T hearts (n = 50 myocytes per group). The Deltamaximal tension was 5.11 +/- 1.42 kN/m(2) in C myocytes and 9.01 +/- 1.28 in T myocytes. We conclude that exercise training increases the length dependence of maximal and submaximal tension in cardiac myocytes, and this change may underlie, at least in part, training-induced enhancement of myocardial function.

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Cite This Study

Diffee et al. (2003) studied this question. Progressive treadmill exercise vs. Sedentary control was evaluated on DeltapCa(50) between long and short sarcomere length. Progressive treadmill exercise increased the sarcomere length dependence of maximal tension and pCa(50) in rat cardiac myocytes compared with sedentary controls.

synapsesocial.com/papers/6a785d2ee8156ceda1ae0cedhttps://doi.org/10.1152/japplphysiol.00565.2002
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Exercise training increases the Ca<sup>2+</sup>sensitivity of tension in rat cardiac myocytes2001 · 72 citations
  2. 2Regional differences in effects of exercise training on contractile and biochemical properties of rat cardiac myocytes2003 · 42 citations
  3. 3Increased contractility and calcium sensitivity in cardiac myocytes isolated from endurance trained rats2001 · 212 citations
  4. 4Altered single cell force-velocity and power properties in exercise-trained rat myocardium2003 · 44 citations
  5. 5Chronic exercise alters contractility and morphology of isolated rat cardiac myocytes1993 · 99 citations