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de Rooij, D. G.

Publications and source records attributed to de Rooij, D. G..

2 recordsLinked to original sources

Spermatoproteasome-deficient mice are proficient in meiotic DNA repair but defective in meiotic exit

Meiotic recombination generates crossovers which are essential to ensure genome haploidization. The ubiquitin proteasome system regulates meiotic recombination through its association to the synaptonemal complex, a zipper-like structure that holds homologs and provides the structural framework for meiotic recombination. Here we show that the testis-specific 4s subunit (PSMA8) of the spermatoproteasome is located at the synaptonemal complex and is essential for the assembly of its activator PA200. Accordingly, synapsis-deficient mice show delocalization of PSMA8 from the synaptonemal complex. Genetic analysis of Psma8-deficient mice shows normal meiotic DNA repair, crossing over formation and an increase of spermatocytes at metaphase I and metaphase II which either enter into apoptosis or slip to give rise to an early spermatid arrest and infertility. Thus, spermatoproteasome-dependent histone degradation is dispensable for meiotic recombination. We show that PSMA8 deficiency alters the proteostasis of several key meiotic players such as acetylated histones, SYCP3, SYCP1, CDK1 and TRIP13 which in turn leads to an aberrant meiotic exit and early spermatid arrest prior to the histone displacement process that take place subsequently.

cell biology

Isolating mitotic and meiotic germ cells from male mice by developmental synchronization, staging, and sorting

Isolating discrete populations of germ cells from the mouse testis is challenging, because the adult testis contains germ cells at every step of spermatogenesis, in addition to somatic cells. We present a novel method for isolating precise, high-purity populations of male germ cells. We first synchronize germ cell development in vivo by manipulating retinoic acid metabolism, and perform histological staging to verify synchronization. We use fluorescence-activated cell sorting to separate the synchronized differentiating germ cells from contaminating somatic and germline stem cells. We achieve [~]90% purity at each step of development from the germline stem cell pool through late meiotic prophase. Utilizing this \"3S\" method (synchronize, stage, and sort), we can separate germ cell types that were previously challenging or impossible to distinguish, with sufficient yield for epigenetic and biochemical studies. The 3S method should enable detailed characterization of molecular changes that occur during the mitotic and meiotic phases of spermatogenesis.

developmental biology