Myosin Va movements in normal and dilute-lethal axons provide support for a dual filament motor complex

P C Bridgman1

  • 1Department of Anatomy and Neurobiology, Washington University School of Medicine, St. Louis, Missouri 63110, USA. bridgmap@thalamus.wustl.edu

The Journal of Cell Biology
|September 9, 1999
PubMed

Insights

Myosin Va is crucial for organelle transport in neurons, particularly at presynaptic terminals. Its absence causes organelles to stall in microtubule-rich areas, impacting neuronal function.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Molecular Motors

Background:

  • Axonal transport is vital for neuronal function, relying on molecular motors to move organelles.
  • Myosin Va is a motor protein implicated in intracellular transport, but its specific role in neurons is not fully understood.

Purpose of the Study:

  • To elucidate the function of myosin Va in axonal transport of organelles within living neurons.
  • To determine the relationship between myosin Va, microtubules, and organelle movement.

Main Methods:

  • Monitoring myosin Va-associated organelle movements using fluorescently labeled antibodies or GFP-myosin Va tail constructs in neurons.
  • Depolymerizing microtubules with nocodazole in both normal and myosin Va-null (dilute-lethal) neurons.
  • Analyzing organelle distribution and presynaptic terminal morphology in wild-type and mutant mice.

Main Results:

  • Myosin Va-associated organelles exhibit bidirectional movement, dependent on microtubules in myosin Va-null neurons.
  • Organelles accumulate in microtubule-rich regions in the absence of myosin Va, suggesting they become stranded.
  • Presynaptic terminals in mice lacking myosin Va show structural alterations and increased vesicle accumulation.

Conclusions:

  • Myosin Va binds to organelles and interacts with both actin and microtubule-based transport systems.
  • While not essential for long-range axonal transport, myosin Va is critical for local organelle movement and processing, especially in microtubule-poor presynaptic terminals.

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