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Fanourgakis, G.

Publications and source records attributed to Fanourgakis, G..

2 recordsLinked to original sources

The eutherian-specific histone H3.4 promotes germ cell development and reproductive fitness

Many genes encoding chromatin proteins are subject to evolutionary selection driving reproductive fitness. In mice and men, the histone H3.4 variant is essential to spermatogenesis. Here we define the evolutionary origin and molecular-physiological roles of sequence variation in H3f4 for male germ cell development in mice. Our phylogenetic analyses indicate that eutherian H3f4 orthologs originate from an ancestral H3.2 gene existing prior to the divergence of eutherian and marsupial mammals over 100 million years ago. Positioned in truncated histone gene clusters, eutherian H3f4 orthologs show increased non-synonymous and synonymous substitution rates compared to orthologous marsupial H3.2 loci located in typically large histone clusters. To determine the impact of sequence divergence on reproductive fitness, we reverted non-synonymously substituted residues in H3f4 to those present in canonical H3.1 (H3f4V24A, H3f4H42R, H3f4S98A). Hemizygous expression of such triply reverted H3f4H3.1 allele on a H3f4-deficiency background caused an >40% reduction in testis weight associated with impaired meiotic DNA double strand break repair, death of pachytene spermatocytes, impaired differentiation of spermatids and aberrant expression of thousands of genes during spermatid elongation. Hemizygous expression of individual residue substitution alleles revealed residues V24 and H42 of H3.4 to promote spermatogenesis, while residue S98 is neutral. Together, our study shows that H3f4 has been subject to positive evolutionary selection, promoting male reproductive fitness.

genetics↗

DNA methylation modulates nucleosome retention in sperm and H3K4 methylation deposition in early mouse embryos.

DNA methylation (DNAme) serves a stable gene regulatory function in somatic cells (1). In the germ line and during early embryogenesis, however, DNAme undergoes global erasure and re-establishment to support germ cell and embryonic development (2). While de novo DNAme acquisition during male germ cell development is essential for setting genomic DNA methylation imprints, other intergenerational roles for paternal DNAme in defining embryonic chromatin after fertilization are unknown. To approach this question, we reduced levels of DNAme in developing male germ cells through conditional gene deletion of the de novo DNA methyltransferases DNMT3A and DNMT3B in undifferentiated spermatogonia. We observed that DNMT3A serves a DNAme maintenance function in undifferentiated spermatogonia while DNMT3B catalyzes de novo DNAme during spermatogonial differentiation. Mutant male germ cells nevertheless completed their differentiation to sperm. Failing de novo DNAme in Dnmt3a/Dnmt3b double deficient spermatogonia is associated with increased nucleosome occupancy in mature sperm, preferentially at sites with higher CpG content, supporting the model that DNAme modulates nucleosome retention in sperm (3). To assess the impact of altered sperm chromatin in the formation of embryonic chromatin, we measured H3K4me3 occupancy at paternal and maternal alleles in 2-cell embryos using a newly developed transposon-based tagging assay for modified chromatin. Our data show that reduced DNAme in sperm renders paternal alleles permissive for H3K4me3 establishment in early embryos, independently of possible paternal inheritance of sperm born H3K4me3. Together, this study provides first evidence that paternally inherited DNAme directs chromatin formation during early embryonic development.

genetics↗