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Novero, A. G.

Publications and source records attributed to Novero, A. G..

2 recordsLinked to original sources

Semenogelin-1 Inhibition of Mouse Sperm Hyperactivation Reveals Two Functional Domains Modulating CatSper Channel

Seminal plasma is essential for sperm survival and function after ejaculation. Semenogelin-1 (SEMG1), the predominant seminal plasma protein, transiently suppresses sperm motility and hyperactivation after ejaculation through epididymal protease inhibitor (EPPIN) binding. However, the molecular mechanism underlying SEMG1-mediated inhibition of hyperactivation remains unclear. Here, we tested the hypothesis that SEMG1 inhibits CatSper, a sperm-specific calcium channel crucial for hyperactivation. Full-length recombinant mouse SEMG1 (mSEMG1; Q32-G375) inhibited both progressive motility and hyperactivation; the latter was not recovered with NH4Cl-induced alkalinization, indicating an effect downstream of capacitation-associated intracellular alkalinization. Electrophysiological recordings revealed that mSEMG1 reduced CatSper currents at physiologically relevant concentrations. Truncated mSEMG1 fragments mSEMG1Q32-V118 and mSEMG1R98-G375, but not mSEMG1Y221-G375, inhibited sperm hyperactivation and CatSper currents to a similar extent as full- length mSEMG1. Notably, only mSEMG1R98-G375 retained full EPPIN-binding capacity. Together, our findings identify two functional domains within mSEMG1 (Q32-V118 and R98-S220) that inhibit sperm hyperactivation by suppressing CatSper activity and differ in their EPPIN-binding capacities. These functional domains represent promising prototypes for the design of spermiostatic molecules, offering additional avenues for non-hormonal male contraception. Summary statementWe report a novel mechanism by which SEMG1, a major seminal plasma protein, modulates sperm hyperactivation by inhibiting a key calcium channel, offering new insights into sperm function and non- hormonal male contraception.

physiology↗

The sodium-proton exchangers sNHE and NHE1 control plasma membrane hyperpolarization in mouse sperm.

Sperm capacitation, crucial for fertilization, occurs in the female reproductive tract and can be replicated in vitro using a medium rich in bicarbonate, calcium, and albumin. These components trigger the cAMP-PKA signaling cascade, proposed to promote hyperpolarization of the mouse sperm plasma membrane through activation of SLO3 K+ channel. Hyperpolarization is a hallmark of capacitation: proper membrane hyperpolarization renders higher in vitro fertilizing ability, while Slo3 KO mice are infertile. However, the precise regulation of SLO3 opening remains elusive. Our study challenges the involvement of PKA in this event and reveals the role of Na+/H+ exchangers. During capacitation, calcium increase through CatSper channels activates NHE1, while cAMP directly stimulates the sperm-specific NHE, collectively promoting the alkalinization threshold needed for SLO3 opening. Hyperpolarization then feeds back Na+/H+ activity. Our work is supported by pharmacology, and a plethora of KO mouse models, and proposes a novel pathway leading to hyperpolarization. TeaserAlkalinization of sperm cytoplasm activates potassium channels to hyperpolarize the plasma membrane in a PKA independent cascade.

cell biology↗