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Koga, C.

Publications and source records attributed to Koga, C..

2 recordsLinked to original sources

Genome compartments guide protamine replacement and genome stability during spermiogenesis

Compartment-scale genome organisation persists in mammalian sperm, yet how histone-protamine replacement is orchestrated in space and time during spermiogenesis remains unclear. Here we combine stage-resolved purification of mouse spermatids with spike-in-normalised ATAC-seq and PRM1 CUT&Tag to map chromatin accessibility and protamine incorporation across spermiogenesis. We uncover a transient, genome-wide hyper-accessible phase coincident with replacement that is uncoupled from transcription and suppressed in catalytic PHF7-mutant spermatids. PRM1 loading initiates within accessible A-compartment chromatin and later spreads across both A- and B-compartments, whereas protamine-null mice demonstrated that PRM1/ PRM2 deficiency selectively destabilises A-compartment closure. Sequencing of short DNA fragments from Prm1/Prm2 dosage-reduced epididymal sperm reveals early enrichment of breakage at protamine-targeted A-compartment regions, which dissipates as fragmentation becomes genome-wide during epididymal transit. Together, our data place histone-protamine replacement within a compartment-centred framework that links 3D genome domains to the timing, targeting and integrity of the sperm genome.

genomics↗

Isolation of stage-specific spermatogenic cells by dynamic histone incorporation and removal in spermatogenesis.

Due to the lack of an in vitro spermatogenesis system, studies on mammalian spermatogenesis require the isolation of specific germ cell populations for further analyses. BSA gradient and elutriation have been used for several decades to purify testicular germ cells; more recently, fluorescence-activated cell sorting (FACS) has become popular. Although each method has its advantages and disadvantages and is used depending on the purpose of the experiment, reliance on FACS is expected to be more prevalent because fewer cells can be managed. However, the currently used FACS method for testicular germ cells relies on karyotypic differences via DNA staining. Thus, it remains challenging to separate post-meiotic haploid cells (spermatids) according to their differentiation stage despite significant variations in morphology and chromatin state. In this study, we developed a method for finely separating testicular germ cells using VC mice carrying fluorescently tagged histones. This method enables the separation of spermatogonia, spermatocytes, and spermatids based on the intensity of histone fluorescence and cell size. Combined with a DNA staining dye, this method separates spermatids after elongation according to each spermiogenic stage. Although the necessity for a specific transgenic mouse line is less versatile, this method is expected to be helpful for the isolation of testicular germ cell populations because it is highly reproducible and independent of complex cell sorter settings and staining conditions.

developmental biology↗