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Updated: May 28, 2026

Real-Time Imaging of Acrosomal Calcium Dynamics and Exocytosis in Live Mouse Sperm
Published on: October 13, 2023
CASK interacts with PMCA4b and JAM-A on the mouse sperm flagellum to regulate Ca2+ homeostasis and motility
Rolands G Aravindan1, Victor P Fomin, Ulhas P Naik
1Department of Biological Sciences, University of Delaware, Newark, DE 19716, USA. pdeleon@udel.edu
Abstract:
Deletion of the highly conserved gene for the major Ca(2+) efflux pump, Plasma membrane calcium/calmodulin-dependent ATPase 4b (Pmca4b), in the mouse leads to loss of progressive and hyperactivated sperm motility and infertility. Here we first demonstrate that compared to wild-type (WT), Junctional adhesion molecule-A (Jam-A) null sperm, previously shown to have motility defects and an abnormal mitochondrial phenotype reminiscent of that seen in Pmca4b nulls, exhibit reduced (P < 0.001) ATP levels, significantly (P < 0.001) greater cytosolic Ca(2+) concentration ([Ca(2+) ](c)) and ∼10-fold higher mitochondrial sequestration, indicating Ca(2+) overload. Investigating the mechanism involved, we used co-immunoprecipitation studies to show that CASK (Ca(2+) /calmodulin-dependent serine kinase), identified for the first time on the sperm flagellum where it co-localizes with both PMCA4b and JAM-A on the proximal principal piece, acts as a common interacting partner of both. Importantly, CASK binds alternatively and non-synergistically with each of these molecules via its single PDZ (PDS-95/Dlg/ZO-1) domain to either inhibit or promote efflux. In the absence of CASK-JAM-A interaction in Jam-A null sperm, CASK-PMCA4b interaction is increased, resulting in inhibition of PMCA4b's enzymatic activity, consequent Ca(2+) accumulation, and a ∼6-fold over-expression of constitutively ATP-utilizing CASK, compared to WT. Thus, CASK negatively regulates PMCA4b by directly binding to it and JAM-A positively regulates it indirectly through CASK. The decreased motility is likely due to the collateral net deficit in ATP observed in nulls. Our data indicate that Ca(2+) homeostasis in sperm is maintained by the relative ratios of CASK-PMCA4b and CASK-JAM-A interactions.
Insights
Loss of Junctional adhesion molecule-A (Jam-A) in sperm causes calcium overload and infertility by disrupting the interaction between CASK (calcium/calmodulin-dependent serine kinase) and Plasma membrane calcium ATPase 4b (Pmca4b). This highlights a novel regulatory mechanism for sperm function.
Area of Science:
- Spermatology
- Molecular Biology
- Calcium Signaling
Background:
- Plasma membrane calcium/calmodulin-dependent ATPase 4b (Pmca4b) is crucial for sperm motility and fertility.
- Junctional adhesion molecule-A (Jam-A) null sperm exhibit motility defects and abnormal mitochondrial function.
- Calcium (Ca2+) homeostasis is vital for sperm function.
Purpose of the Study:
- To investigate the molecular mechanism underlying motility defects in Jam-A null sperm.
- To identify the role of CASK (calcium/calmodulin-dependent serine kinase) in sperm calcium regulation.
- To elucidate the interaction between CASK, Pmca4b, and Jam-A in sperm.
Main Methods:
- Comparative analysis of wild-type (WT) and Jam-A null sperm.
- Measurement of ATP levels, cytosolic Ca2+ concentration ([Ca2+]c), and mitochondrial Ca2+ sequestration.
- Co-immunoprecipitation studies to identify protein interactions.
- Assessment of CASK and Pmca4b enzymatic activity.
Main Results:
- Jam-A null sperm show reduced ATP, increased [Ca2+]c, and significant Ca2+ overload in mitochondria.
- CASK interacts with both Pmca4b and Jam-A on the sperm flagellum.
- In Jam-A null sperm, increased CASK-Pmca4b interaction inhibits Pmca4b activity, leading to Ca2+ accumulation and altered CASK expression.
- Jam-A positively regulates Pmca4b activity indirectly via CASK.
Conclusions:
- Sperm Ca2+ homeostasis is regulated by the balance of CASK-Pmca4b and CASK-Jam-A interactions.
- The CASK-Pmca4b-Jam-A complex is essential for maintaining normal sperm motility and fertility.
- Disruption of this complex leads to infertility due to impaired Ca2+ regulation and ATP depletion.
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