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Skerrett-Byrne, D.

Publications and source records attributed to Skerrett-Byrne, D..

2 recordsLinked to original sources

Decoding human sperm signalling: Phosphoproteomic discovery of kinases governing fertilization competency

Capacitation, the process whereby sperm gain the functional competence to fertilize an egg in the absence of de novo transcription and translation, is orchestrated by a hierarchy of kinases driving the phosphorylation of sperm proteins. While increased phosphorylation, in particular tyrosine phosphorylation, is a revered hallmark of fertilization competency in our species, only a limited repository of phosphorylated substrates and kinases have ever been reported from human sperm. To broaden therapeutic targets for sperm targeted contraceptives and infertility therapies, we adapted a contemporary phosphoproteomic technique termed EasyPhos to generate bespoke methodology for the investigation of human sperm signalling. This approach yielded high depth phosphoproteomes of non-capacitated and capacitated human spermatozoa with in silico investigation of the phosphosites revealing 52 kinases with previously uncharacterized roles in sperm capacitation. Investigating the function of the putative sperm capacitation kinases identified yielded several kinases with novel roles in the regulation of sperm function. Of particular interest, polo like kinase 1 (PLK1) inhibition significantly reduced progressive sperm motility, attenuated capacitation-associated tyrosine phosphorylation and reduced the sperm acrosome reaction, an essential step to achieve fertilization. These findings reveal extensive phosphoproteome remodelling during human sperm capacitation, expanding the landscape of molecular targets for fertility control.

Cell Biology↗

The origins and molecular evolution of sperm

Sperm is a nearly universal cell type among animals, yet its evolutionary origins remain unclear. Using comparative proteomics and phylogenomics across 32 species, we reconstruct the 700+ million year evolutionary history of sperm to define the Last Universal Common Sperm (LUCS), a conserved core of 301 gene families enriched in motility and energy metabolism. We found that most of the LUCS toolkit was developed in filozoan unicellular ancestors approximately 400 Ma before animals, revealing sperm as a reconfigured legacy from our unicellular past rather than an invention of multicellularity. Sperm shows a within-cell evolutionary gradient, both spatial and temporal, where ancient proteins dominate the tail, while younger innovations concentrate in the head. The oldest sperm components are disproportionately associated with human infertility, establishing an empirical bridge between evolutionary depth and clinical relevance. Together, our findings reveal how evolutionary history is inscribed within a single cell and can guide clinical insights.

evolutionary biology↗