Department of Histology and Cell Biology, Yokohama City University School of Medicine, Yokohama 236-0004, Japan.
Faculty of Pharmaceutical Sciences, Nagasaki International University, Huis Ten Bosch, Sasebo, Nagasaki 859-3298, Japan.
Development. 2021 Apr 15;148(8). doi: 10.1242/dev.196212. Epub 2021 Apr 26.
During spermatogenesis, intricate gene expression is coordinately regulated by epigenetic modifiers, which are required for differentiation of spermatogonial stem cells (SSCs) contained among undifferentiated spermatogonia. We have previously found that KMT2B conveys H3K4me3 at bivalent and monovalent promoters in undifferentiated spermatogonia. Because these genes are expressed late in spermatogenesis or during embryogenesis, we expect that many of them are potentially programmed by KMT2B for future expression. Here, we show that one of the genes targeted by KMT2B, Tsga8, plays an essential role in spermatid morphogenesis. Loss of Tsga8 in mice leads to male infertility associated with abnormal chromosomal distribution in round spermatids, malformation of elongating spermatid heads and spermiation failure. Tsga8 depletion leads to dysregulation of thousands of genes, including the X-chromosome genes that are reactivated in spermatids, and insufficient nuclear condensation accompanied by reductions of TNP1 and PRM1, key factors for histone-to-protamine transition. Intracytoplasmic sperm injection (ICSI) of spermatids rescued the infertility phenotype, suggesting competency of the spermatid genome for fertilization. Thus, Tsga8 is a KMT2B target that is vitally necessary for spermiogenesis and fertility.
在精子发生过程中,复杂的基因表达受到表观遗传修饰物的协调调节,这些修饰物对于包含在未分化精原细胞中的精原干细胞(SSC)的分化是必需的。我们之前发现 KMT2B 在未分化精原细胞中的二价和单价启动子处传递 H3K4me3。由于这些基因在精子发生后期或胚胎发生期间表达,我们预计其中许多基因可能被 KMT2B 编程用于未来表达。在这里,我们表明 KMT2B 靶向的一个基因 Tsga8 在精子形成过程中起着至关重要的作用。在小鼠中敲除 Tsga8 会导致雄性不育,与圆形精子中染色体分布异常、延长精子头部畸形和精子发生失败有关。Tsga8 的缺失会导致数千个基因的失调,包括在精子中重新激活的 X 染色体基因,以及核浓缩不足,同时 TNP1 和 PRM1 减少,这是组蛋白到鱼精蛋白转换的关键因素。精子内注射(ICSI)精子可挽救不育表型,表明精子基因组具有受精的能力。因此,Tsga8 是 KMT2B 的一个靶标,对精子发生和生育能力至关重要。