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November 12, 1999Circulation Research113 citationsOpen Access

Regulation of Cardiac Myocyte Protein Turnover and Myofibrillar Structure In Vitro by Specific Directions of Stretch

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DSDavid G. SimpsonMMM. MajeskiTBThomas K. Borg

Key Result

Stretch of 1.0% to 5.0% suppressed the turnover of the contractile protein pool by 50% to 100% in stellate neonatal cardiac myocytes compared to unstretched controls.

Key Points

  • This study aims to understand how varying directions and degrees of stretch influence protein turnover and myofibril structure in cardiac myocytes.
  • Evaluated stretch effects at various degrees (0.5% to 10.0%) in cultured neonatal cardiac myocytes.
  • Conducted pulse-chase experiments to measure turnover of contractile proteins and myofibrils.
  • Observed effects of isoproterenol and nifedipine on protein turnover under different stretch conditions.
  • Stretching cardiac myocytes across the short axis reduced contractile protein turnover by 50%-100%.
  • Stretch in parallel with myofibrils showed no significant change in protein turnover or alignment.
  • Isoproterenol treatment with parallel stretch modestly accelerated protein turnover while combined with short-axis stretch it suppressed turnover.

Structured PICO

Does specific direction and degree of stretch regulate contractile protein turnover and myofibrillar structure in cultured neonatal cardiac myocytes?

P
Population
Cultured neonatal cardiac myocytes (NCMs)
I
Intervention
Different degrees (0.5%, 1.0%, 2.5%, 5.0%, and 10.0%) and directions of stretch (parallel vs. across the short axis of myofibrils), with or without isoproterenol or nifedipine
C
Comparator
Unstretched controls
O
Outcome
Turnover and accumulation of contractile proteins (myosin heavy chain and actin) and myofibrillar organizationsurrogate

Specific directions of mechanical stretch play a crucial role in regulating myofibrillar organization and contractile protein metabolism in cardiac myocytes.

Abstract

Abstract —We have examined how different degrees (0.5%, 1.0%, 2.5%, 5.0%, and 10.0%) and directions of stretch regulate the turnover and accumulation of contractile proteins in cultured neonatal cardiac myocytes (NCMs). In pulse-chase experiments, stellate-shaped NCMs with random arrays of myofibrils (MFs) exhibited a threshold response to stretch. With respect to unstretched controls, the turnover of the contractile protein pool was suppressed 50% to 100% in stellate NCMs stretched 1.0% to 5.0% and was unaltered in stellate NCMs stretched 0.5% or 10.0%. The posttranslational metabolism of myosin heavy chain (MHC) and actin was regulated in parallel with the total contractile protein pool. The turnover of the cytoplasmic protein pool remained unchanged in response to stretch. NCMs plated onto an aligned matrix of type I collagen expressed an elongated, rod-like cell shape. The MFs of these cells were distributed in parallel with one another along a single unique axis. The tissue-like pattern of organization of these cultures made it possible to assay how specific directions of stretch affected cardiac protein turnover and MF organization. In pulse-chase experiments, stretch in parallel with the MFs did not alter the turnover of the total contractile protein pool, the cytoplasmic protein pool, MHC, or actin. The total cellular concentration of MHC and actin remained constant, and MF alignment was not overtly affected. In contrast, even modest degrees of stretch across the short axis of the MFs suppressed total contractile protein turnover, the turnover of MHC and actin, and promoted the accumulation of these MF subunits. The parallel alignment of MFs deteriorated in myocytes stretched greater than 5%. The characteristic response of aligned myocytes to stretch was not affected by the contractile state of the cells. Isoproterenol (ISO) treatment in concert with stretch in parallel with the MFs modestly accelerated contractile protein turnover. Conversely, contractile protein turnover was suppressed in cells treated with ISO and stretched across the short axis of the MFs. Contractile arrest with nifedipine (NIFED) accelerated total myofibrillar protein turnover. Stretch across the short axis, but not in parallel with the MFs, suppressed protein turnover in cells treated with NIFED. The turnover of the cytosolic proteins remained constant under all conditions assayed. These data suggest that specific directions of stretch may play a crucial role in regulating MF organization and the metabolism of contractile proteins in the cardiac myocyte. The full text of this article is availabale at http://www.circresaha.org.

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Cite This Study

Simpson et al. (1999) studied Cultured neonatal cardiac myocytes. Stretch (different degrees and directions) vs. Unstretched controls was evaluated on Turnover of the contractile protein pool. Stretch of 1.0% to 5.0% suppressed the turnover of the contractile protein pool by 50% to 100% in stellate neonatal cardiac myocytes compared to unstretched controls.

synapsesocial.com/papers/6a15a57837103a4337a0053fhttps://doi.org/10.1161/01.res.85.10.e59
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Also Consider

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

  1. 1Mechanical regulation of cardiac myocyte protein turnover and myofibrillar structure1996 · 65 citations
  2. 2Mechanical Regulation of Cardiac Myofibrillar Structure<sup>a</sup>1995 · 18 citations
  3. 3Pulsatile Stretch Remodels Cell-to-Cell Communication in Cultured Myocytes2000 · 205 citations
  4. 4Myosin heavy chain turnover in cultured neonatal rat heart cells: effects of [Ca2+]i and contractile activity1996 · 48 citations
  5. 5Simultaneous Stretching and Contraction of Stress Fibers In Vivo2004 · 204 citations