Reducing agents induce microtubule extrusion in demembranated mammalian spermatozoa

Masashi Kinukawa1, Masao Nagata, Fugaku Aoki

  • 1Department of Integrated Biosciences, Graduate School of Frontier Sciences, University of Tokyo, Kashiwa, Chiba 277-8562, Japan.

Reproduction (Cambridge, England)
|December 8, 2004
PubMed

Insights

Reducing agents like dithiothreitol can induce microtubule extrusion from sperm axonemes, revealing the role of disulfide bonds in flagellar structure and motility regulation.

Area of Science:

  • Spermatozoa motility
  • Cellular biomechanics
  • Cytoskeletal dynamics

Background:

  • Flagellar bending in spermatozoa is crucial for motility.
  • Microtubule sliding within the flagellar axoneme regulates this bending.
  • Previous methods using proteases to study microtubule sliding had limited success due to protein degradation.

Purpose of the Study:

  • To investigate the regulation of microtubule sliding in spermatozoa.
  • To develop a more effective method for inducing and observing microtubule extrusion from the flagellar axoneme.

Main Methods:

  • Demembranation of hamster and mouse spermatozoa using Triton X-100.
  • Treatment with high concentrations of reducing agents (dithiothreitol or 2-mercaptoethanol) without proteases.
  • Observation of microtubule extrusion using microscopy.

Main Results:

  • High concentrations of reducing agents induced microtubule extrusion in most demembranated spermatozoa.
  • Extrusion occurred at reducing agent concentrations sufficient to reduce disulfide bonds.
  • Microtubule extrusion initiated on one side, then the other, not simultaneously.
  • Extruded microtubules were observed on both the same and opposite sides of the sperm head curve.

Conclusions:

  • Disulfide bonds significantly contribute to the structural integrity of axonemal connections between doublet microtubules.
  • Reducing agents offer a protease-free method to study microtubule sliding regulation.
  • The sequential, asymmetric extrusion of microtubules provides insights into flagellar mechanics.

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