Longitudinal diffusion barriers imposed by myofilaments and mitochondria in murine cardiac myocytes

Christine Deisl1, Jay H Chung2, Donald W Hilgemann1

  • 1Department of Physiology, Southwestern Medical Center, Dallas, TX, USA.

PubMed

Insights

Cytoplasmic diffusion in cardiomyocytes is restricted by molecular size, protein networks, and mitochondria. These cellular structures influence nucleotide availability for muscle function.

Area of Science:

  • Cellular Physiology
  • Biophysics

Background:

  • Cytoplasmic diffusion is crucial for cellular function, but its restrictions in cardiomyocytes are not fully understood.
  • Understanding diffusion dynamics is key to comprehending cellular energetics and metabolic regulation.

Purpose of the Study:

  • To quantify diffusion restrictions for various molecules within BL6 murine cardiomyocytes.
  • To investigate the contributions of protein networks, myofilaments, and mitochondria to cytoplasmic diffusion limitations.
  • To determine the impact of these restrictions on nucleotide availability and cellular energy transfer.

Main Methods:

  • Optical and electrical methods were employed to measure diffusion coefficients of fluorophores and ions (Na+).
  • Techniques included analyzing solute diffusion in intact and permeabilized myocytes, extracted myofilaments, and protein gels (gelatin).
  • Measurements were correlated with molecular weight, cellular structures (myofilaments, mitochondria), and physiological conditions (temperature, strain).

Main Results:

  • Cytoplasmic diffusion in cardiomyocytes is significantly restricted by molecular size, with diffusion slowing >20-fold for increasing molecular weight.
  • ATP diffusion was found to be 4-8 times slower than in free water at 35°C.
  • Mitochondrial networks and myofilaments were identified as key contributors to diffusion restrictions, with variations observed between different mouse strains and conditions (e.g., VDAC1 presence).
  • Diffusion restrictions were strain-dependent and influenced by cellular strain.

Conclusions:

  • Cytoplasmic diffusion in cardiomyocytes is highly restricted, influenced by molecular size, protein networks, myofilaments, and mitochondrial structure.
  • These diffusion limitations play a significant role in regulating cytoplasmic adenine nucleotide concentrations (AMP, ADP).
  • Despite restrictions, diffusion capacity for ATP delivery to myofilaments remains substantially higher than ATP consumption rates.

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