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Updated: Jul 3, 2026

Recording Electrical Currents across the Plasma Membrane of Mammalian Sperm Cells
Published on: February 14, 2021
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
Abstract:
Because sperm cannot synthesize new proteins as they journey to the egg, they use multiple mechanisms to modify the activity of existing proteins, including changes in the diffusion coefficient of some membrane proteins. Previously, we showed that during capacitation the guinea pig heterodimeric membrane protein ADAM1/ADAM2 (fertilin) transforms from a stationary state to one of rapid diffusion within the lipid bilayer. The cause for this biophysical change, however, was unknown. In this study we examined whether an increase in cAMP, such as occurs during capacitation, could trigger this change. We incubated guinea pig cauda sperm with the membrane-permeable cAMP analog dibutyryl cAMP (db-cAMP) and the phosphodiesterase inhibitor papaverine and first tested for indications of capacitation. We observed hypermotility and acrosome-reaction competence. We then used fluorescence redistribution after photobleaching (FRAP) to measure the lateral mobility of ADAM1/ADAM2 after the db-cAMP treatment. We observed that db-cAMP caused roughly a 12-fold increase in lateral mobility of ADAM1/ADAM2, yielding diffusion similar to that observed for sperm capacitated in vitro. When we repeated the FRAP on testicular sperm incubated in db-cAMP, we found only a modest increase in lateral mobility of ADAM1/ADAM2, which underwent little redistribution. Interestingly, testicular sperm also cannot be induced to undergo capacitation. Together, the data suggest that the release of ADAM1/ADAM2 from its diffusion constraints results from a cAMP-induced signaling pathway that, like others of capacitation, is established during epididymal sperm maturation.
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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