Temporal dynamics of cardiac hypertrophic growth in response to pressure overload

Yuan Wang1,2, Yuannyu Zhang3, Guanqiao Ding1

  • 1Division of Cardiology, Department of Internal Medicine, The University of Texas Southwestern Medical Center, Dallas, Texas.

Insights

Cardiac myocytes exhibit rapid growth in response to pressure overload, with peak protein synthesis occurring within days. This study reveals the temporal dynamics of pathological cardiac growth, crucial for understanding heart failure progression.

Area of Science:

  • Cardiovascular Biology
  • Molecular Cardiology
  • Physiology

Background:

  • Hypertension is a major risk factor for heart failure, often leading to left ventricular hypertrophy.
  • Pathological cardiac remodeling and decompensation can arise from sustained hypertrophic growth.
  • The precise timing of cardiac hypertrophic growth remains poorly understood.

Purpose of the Study:

  • To delineate the temporal regulation of cardiac hypertrophic growth using protein synthesis rates.
  • To identify optimal conditions for puromycin labeling in cardiac myocyte cultures.
  • To investigate the in vivo temporal dynamics of cardiac growth under pressure overload.

Main Methods:

  • Utilized puromycin labeling to measure relative protein synthesis rates.
  • Optimized puromycin treatment conditions in neonatal rat ventricular myocyte cultures.
  • Employed an acute surgical model of pressure-overload stress in vivo.
  • Performed RNA sequencing analysis to assess transcriptomic changes.

Main Results:

  • Myocyte growth rate peaked 8-10 hours after stimulation in vitro.
  • Maximal cardiac growth rate occurred 7 days after pressure-overload surgery in vivo.
  • Significant transcriptomic alterations were observed during the early phase of hypertrophic growth.

Conclusions:

  • Cardiac myocytes initiate an immediate growth response to pressure overload.
  • Protein synthesis rates gradually return to basal levels after the initial growth phase.
  • This study provides novel insights into the temporal dynamics of pathological cardiac hypertrophy.

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