Cyclic 3',5'-AMP causes ADAM1/ADAM2 to rapidly diffuse within the plasma membrane of guinea pig sperm

Gary R Hunnicutt1, Dennis E Koppel, Susanna Kwitny

  • 1population council, center for biomedical research, rockefeller university, new york, ny 10065, USA. ghunnicutt@popcbr.rockefeller.edu

Insights

Sperm maturation involves a cAMP-induced pathway that increases the mobility of ADAM1/ADAM2 proteins. This change is crucial for sperm function and occurs during epididymal maturation, not in testicular sperm.

Area of Science:

  • Sperm biology
  • Molecular and cell biology
  • Reproductive science

Background:

  • Sperm utilize existing proteins for function as they cannot synthesize new ones.
  • During capacitation, the membrane protein ADAM1/ADAM2 transitions from stationary to highly mobile.
  • The trigger for this mobility change in ADAM1/ADAM2 was previously unknown.

Purpose of the Study:

  • To investigate if increased cyclic adenosine monophosphate (cAMP) levels trigger the mobility change of ADAM1/ADAM2.
  • To determine if this cAMP-induced change is linked to sperm capacitation.

Main Methods:

  • Incubation of guinea pig cauda sperm with dibutyryl cAMP (db-cAMP) and papaverine to induce capacitation.
  • Utilizing fluorescence redistribution after photobleaching (FRAP) to measure ADAM1/ADAM2 lateral mobility.
  • Comparing mobility changes in db-cAMP treated cauda sperm versus testicular sperm.

Main Results:

  • db-cAMP treatment induced hypermotility and acrosome-reaction competence in cauda sperm.
  • FRAP analysis showed a ~12-fold increase in ADAM1/ADAM2 lateral mobility in db-cAMP treated cauda sperm.
  • Testicular sperm showed only a modest increase in mobility and did not undergo capacitation.

Conclusions:

  • A cAMP-induced signaling pathway releases ADAM1/ADAM2 from diffusion constraints during sperm maturation.
  • This pathway is established during epididymal maturation and is essential for sperm capacitation.
  • The findings elucidate a key biophysical mechanism underlying sperm fertility.

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