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Isolation of Murine Spermatogenic Cells using a Violet-Excited Cell-Permeable DNA Binding Dye
Published on: January 14, 2021
Segregation of micron-scale membrane sub-domains in live murine sperm
Vimal Selvaraj1, Atsushi Asano, Danielle E Buttke
1The James A. Baker Institute for Animal Health, College of Veterinary Medicine, Cornell University, Ithaca, New York 14853, USA.
Abstract:
Lipid rafts, membrane sub-domains enriched in sterols and sphingolipids, are controversial because demonstrations of rafts have often utilized fixed cells. We showed in living sperm that the ganglioside G(M1) localized to a micron-scale membrane sub-domain in the plasma membrane overlying the acrosome. We investigated four models proposed for membrane sub-domain maintenance. G(M1) segregation was maintained in live sperm incubated under non-capacitating conditions, and after sterol efflux, a membrane alteration necessary for capacitation. The complete lack of G(M1) diffusion to the post-acrosomal plasma membrane (PAPM) in live cells argued against the transient confinement zone model. However, within seconds after cessation of sperm motility, G(M1) dramatically redistributed several microns from the acrosomal sub-domain to the post-acrosomal, non-raft sub-domain. This redistribution was not accompanied by movement of sterols, and was induced by the pentameric cholera toxin subunit B (CTB). These data argued against a lipid-lipid interaction model for sub-domain maintenance. Although impossible to rule out a lipid shell model definitively, mice lacking caveolin-1 maintained segregation of both sterols and G(M1), arguing against a role for lipid shells surrounding caveolin-1 in sub-domain maintenance. Scanning electron microscopy of sperm freeze-dried without fixation identified cytoskeletal structures at the sub-domain boundary. Although drugs used to disrupt actin and intermediate filaments had no effect on the segregation of G(M1), we found that disulfide-bonded proteins played a significant role in sub-domain segregation. Together, these data provide an example of membrane sub-domains extreme in terms of size and stability of lipid segregation, and implicate a protein-based membrane compartmentation mechanism.
Insights
This study reveals that membrane sub-domains in living sperm are maintained by protein interactions, not just lipids. Disulfide-bonded proteins play a key role in this dynamic lipid segregation.
Area of Science:
- Cell Biology
- Membrane Biology
- Sperm Biology
Background:
- Lipid rafts are membrane sub-domains crucial for cell function, but their dynamics in living cells remain debated.
- Previous studies often relied on fixed cells, limiting understanding of dynamic raft behavior.
- Ganglioside G(M1) is a known marker for lipid rafts.
Purpose of the Study:
- To investigate the mechanisms maintaining membrane sub-domains in living sperm.
- To test proposed models for membrane sub-domain maintenance, including lipid-lipid interactions and protein involvement.
- To explore the role of cytoskeletal elements and specific proteins in G(M1) sub-domain stability.
Main Methods:
- Live imaging of ganglioside G(M1) distribution in sperm under various conditions (non-capacitating, sterol efflux).
- Utilized cholera toxin subunit B (CTB) to induce G(M1) redistribution.
- Investigated the role of caveolin-1, cytoskeletal drugs, and disulfide-bonded proteins.
- Employed scanning electron microscopy of freeze-dried sperm to visualize sub-domain boundaries.
Main Results:
- G(M1) formed stable micron-scale sub-domains in live sperm, persisting after sterol efflux.
- G(M1) redistribution was rapid upon cessation of motility and CTB induction, arguing against lipid-lipid interactions or simple diffusion.
- Caveolin-1 absence did not disrupt G(M1) or sterol segregation.
- Disulfide-bonded proteins, not actin or intermediate filaments, were implicated in maintaining sub-domain boundaries.
Conclusions:
- Sperm membrane sub-domains exhibit extreme stability and size, challenging previous models.
- A protein-based mechanism, specifically involving disulfide-bonded proteins, is crucial for maintaining these membrane sub-domains.
- This study provides evidence for protein-mediated membrane compartmentation in living cells.
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