Department of Genetics, University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA.
Department of Biology, Faculty of Medicine, Masaryk University, 62500 Brno, Czech Republic.
G3 (Bethesda). 2022 May 6;12(5). doi: 10.1093/g3journal/jkac079.
Generation of functional gametes is accomplished through a multilayered and finely orchestrated succession of events during meiotic progression. In the Caenorhabditis elegans germline, the HORMA-domain-containing protein HTP-3 plays pivotal roles for the establishment of chromosome axes and the efficient induction of programmed DNA double-strand breaks, both of which are crucial for crossover formation. Double-strand breaks allow for accurate chromosome segregation during the first meiotic division and therefore are an essential requirement for the production of healthy gametes. Phosphorylation-dependent regulation of HORMAD protein plays important roles in controlling meiotic chromosome behavior. Here, we document a phospho-site in HTP-3 at Serine 285 that is constitutively phosphorylated during meiotic prophase I. pHTP-3S285 localization overlaps with panHTP-3 except in nuclei undergoing physiological apoptosis, in which pHTP-3 is absent. Surprisingly, we observed that phosphorylation of HTP-3 at S285 is independent of the canonical kinases that control meiotic progression in nematodes. During meiosis, the htp-3(S285A) mutant displays accelerated RAD-51 turnover, but no other meiotic abnormalities. Altogether, these data indicate that the Ser285 phosphorylation is independent of canonical meiotic protein kinases and does not regulate HTP-3-dependent meiotic processes. We propose a model wherein phosphorylation of HTP-3 occurs through noncanonical or redundant meiotic kinases and/or is likely redundant with additional phospho-sites for function in vivo.
生殖细胞的产生是通过减数分裂过程中多层次和精细协调的事件序列来完成的。在秀丽隐杆线虫的生殖系中,含有 HORMA 结构域的蛋白 HTP-3 对于染色体轴的建立和程序性 DNA 双链断裂的有效诱导起着关键作用,这两者对于交叉形成都是至关重要的。双链断裂允许在第一次减数分裂期间进行准确的染色体分离,因此是产生健康生殖细胞的必要条件。HORMAD 蛋白的磷酸化依赖性调节在控制减数分裂染色体行为中起着重要作用。在这里,我们记录了 HTP-3 丝氨酸 285 位的一个磷酸化位点,该位点在减数分裂前期 I 中持续磷酸化。pHTP-3S285 的定位与 panHTP-3 重叠,除了在经历生理凋亡的核中外,pHTP-3 不存在。令人惊讶的是,我们观察到 HTP-3 在 S285 位的磷酸化独立于控制线虫减数分裂进程的典型激酶。在减数分裂过程中,htp-3(S285A)突变体显示 RAD-51 周转加速,但没有其他减数分裂异常。总的来说,这些数据表明 Ser285 磷酸化独立于典型的减数分裂蛋白激酶,并且不调节 HTP-3 依赖的减数分裂过程。我们提出了一个模型,其中 HTP-3 的磷酸化通过非典型或冗余的减数分裂激酶发生,或者可能与体内功能的其他磷酸化位点冗余。