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Reconstitution in vitro of MSP-based filopodium extension in nematode sperm
Long Miao1, Kexi Yi, Joy M Mackey
1Department of Biological Science, Florida State University, Tallahassee, Florida 32306, USA.
Abstract:
The major sperm protein (MSP) motility system in nematode sperm is best known for propelling the movement of mature sperm, where it has taken over the role usually played by actin in amoeboid cell motility. However, MSP filaments also drive the extension of filopodia, transient organelles composed of a core bundle of MSP filaments, that form in the late in sperm development but are not found on crawling cells. We have reconstituted filopodial extension in vitro whereby thin bundles of MSP filaments, each enveloped by a membrane sheath at their growing end, elongated at rates up to 17 microm/min. These bundles often exceeded 500 microm in length but were comprised of filaments only 1 microm long. The reconstituted filopodia assembled in the same cell-free sperm extracts that produced MSP fibers, robust meshworks of filaments that exhibit the same organization and dynamics as the lamellipodial filament system that propels sperm movement. The filopodia and fibers that assembled in vitro both had a membranous structure at their growing end, shared four MSP accessory proteins, and responded identically to agents that alter MSP-based motility by modulating protein phosphorylation. However, filopodia grew three- to four-fold faster than fibers. The reconstitution of filopodial extension shows that, like the actin cytoskeleton, MSP filaments can adopt two architectures, bundles and meshworks, each capable of pushing against membranes to generate protrusion. The reconstitution of both forms of motility in the same in vitro system provides a promising avenue for understanding how the forces for membrane protrusion are produced.
Insights
Major sperm protein (MSP) filaments drive nematode sperm motility and filopodia extension. In vitro studies show MSP can form both bundles and meshworks, generating membrane protrusions similar to actin.
Area of Science:
- Cell Biology
- Biochemistry
- Biophysics
Background:
- The major sperm protein (MSP) system propels nematode sperm motility, replacing actin in mature sperm.
- MSP filaments also form filopodia, transient organelles crucial for sperm development.
Purpose of the Study:
- To reconstitute and analyze filopodial extension in vitro using MSP filaments.
- To compare the dynamics and structures of MSP-driven filopodia and fibers.
Main Methods:
- In vitro reconstitution of filopodial extension using cell-free sperm extracts.
- Analysis of MSP filament organization, dynamics, and protein interactions.
- Comparison of filopodia and fiber assembly under varying conditions.
Main Results:
- Reconstituted filopodia, composed of bundled MSP filaments, elongated rapidly (up to 17 microm/min).
- Both filopodia and fibers exhibited membranous structures at their growing ends and shared accessory proteins.
- Filopodia demonstrated significantly faster growth rates (3-4x) compared to fibers.
Conclusions:
- MSP filaments, like actin, can form distinct architectures (bundles and meshworks) for membrane protrusion.
- The in vitro system allows for detailed study of force generation mechanisms in MSP-based motility.
- This research provides insights into the dual roles of MSP in sperm movement and development.

