Syntaxin 4-enhanced plasma membrane repair is independent of dysferlin in skeletal muscle

Hsin-Yu Chen1, Daniel E Michele1,2

  • 1Department of Molecular & Integrative Physiology, University of Michigan, Ann Arbor, Michigan, United States.

Insights

Plasma membrane repair (PMR) in muscle cells requires SNARE complex disassembly. Overexpression of STX4 enhances PMR independently of dysferlin, suggesting SNAREs are crucial for muscle cell repair.

Area of Science:

  • Cell biology
  • Muscle physiology
  • Membrane dynamics

Background:

  • Plasma membrane repair (PMR) is vital for cell survival.
  • Dysferlin, a Ca2+-binding protein, is crucial for skeletal muscle PMR.
  • SNARE proteins mediate membrane fusion in processes like neurotransmission.

Purpose of the Study:

  • To investigate if SNARE-mediated PMR in muscle cells requires dysferlin.
  • To determine the role of SNARE complex disassembly in PMR.
  • To assess the effect of STX4 overexpression on PMR.

Main Methods:

  • Pharmacological inhibition of SNARE complex disassembly using TAT-NSF700.
  • Genetic manipulation involving overexpression of STX4 and SNAP23.
  • Assessment of membrane integrity and Ca2+ influx in muscle cells (hiPS-CMs and FDB fibers).
  • Laser-induced membrane wounding model.

Main Results:

  • Inhibition of SNARE complex disassembly increased membrane damage in hiPS-CMs.
  • TAT-NSF700 treatment led to increased Ca2+ influx but decreased FM1-43 uptake in wounded FDB fibers.
  • Overexpression of STX4 or SNAP23 reduced Ca2+ influx in wounded FDB fibers.
  • STX4 overexpression improved PMR even in dysferlin-deficient FDB fibers.

Conclusions:

  • SNARE complex disassembly is essential for efficient plasma membrane repair in muscle cells.
  • STX4 enhances PMR in skeletal muscle, and this effect is independent of dysferlin.
  • SNARE-mediated PMR mechanisms may operate independently of dysferlin in skeletal muscle.

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