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.

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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