A hidden protamine PTM code in sperm generates heterogeneous chromatin states and finetunes reproductive fitness
Moritz, L.; Woodilla, C. J.; Agrawal, R.; Rabbani, M.; Schon, S. B.; Xie, W.; Tower, C. A.; Srinivasan, S.; Sheng, Y.; Baldwin, M. R.; O'Brien, P. J.; Hess, R. A.; Orwig, K. E.; Redding, S.; Hammoud, S.
Show abstract
Traditionally, the sperm genome is thought to be packaged by protamines into a uniformly compact and inert chromatin structure. Here, we challenge this long-standing view by demonstrating that protamine post-translational modifications (PTMs) present on distinct protamine molecules create discrete protamine-DNA chromatin states, ranging from weak to tightly associated chromatin configurations. Loss of these modifications alters protamine-DNA interactions in vitro and in vivo, compromising sperm chromatin integrity and impairing fertility. Therefore, these findings demonstrate that protamines do not merely serve as inert packaging proteins; rather protamine PTMs establish functional heterogeneity within sperm chromatin, creating compartment-like domains analogous to those in somatic cells. Thus, PTMs allow protamines to do more than simply compact the paternal genome--they likely encode a molecular blueprint that orchestrates the timely unpacking and reorganization of the paternal genome after fertilization.
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