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Updated: Jul 23, 2026

Myosin-Specific Adaptations of In vitro Fluorescence Microscopy-Based Motility Assays
Published on: February 4, 2021
Myosin Va movements in normal and dilute-lethal axons provide support for a dual filament motor complex
1Department of Anatomy and Neurobiology, Washington University School of Medicine, St. Louis, Missouri 63110, USA. bridgmap@thalamus.wustl.edu
Abstract:
To investigate the role that myosin Va plays in axonal transport of organelles, myosin Va-associated organelle movements were monitored in living neurons using microinjected fluorescently labeled antibodies to myosin Va or expression of a green fluorescent protein-myosin Va tail construct. Myosin Va-associated organelles made rapid bi-directional movements in both normal and dilute-lethal (myosin Va null) neurites. In normal neurons, depolymerization of microtubules by nocodazole slowed, but did not stop movement. In contrast, depolymerization of microtubules in dilute-lethal neurons stopped movement. Myosin Va or synaptic vesicle protein 2 (SV2), which partially colocalizes with myosin Va on organelles, did not accumulate in dilute-lethal neuronal cell bodies because of an anterograde bias associated with organelle transport. However, SV2 showed peripheral accumulations in axon regions of dilute-lethal neurons rich in tyrosinated tubulin. This suggests that myosin Va-associated organelles become stranded in regions rich in dynamic microtubule endings. Consistent with these observations, presynaptic terminals of cerebellar granule cells in dilute-lethal mice showed increased cross-sectional area, and had greater numbers of both synaptic and larger SV2 positive vesicles. Together, these results indicate that myosin Va binds to organelles that are transported in axons along microtubules. This is consistent with both actin- and microtubule-based motors being present on these organelles. Although myosin V activity is not necessary for long-range transport in axons, myosin Va activity is necessary for local movement or processing of organelles in regions, such as presynaptic terminals that lack microtubules.
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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