组蛋白H3.3变异在尾脊索鱼有丝分裂和减数分裂中的磷酸化作用。

Alexandra Schulmeister, Martina Schmid, Eric M Thompson
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引用次数: 27

摘要

哺乳动物组蛋白变体H3.3与复制依赖性组蛋白H3.1有5个氨基酸的不同,包括用丝氨酸代替丙氨酸31。H3.3在整个细胞周期中表达,主要沉积在独立于s期的转录活性位点。来自哺乳动物细胞的数据表明,丝氨酸31 (H3.3S31P)的磷酸化在有丝分裂中起作用。在这里,我们发现H3.3S31P也出现在尾脊索动物Oikopleura dioica的有丝分裂中,这表明这种组蛋白修饰及其在有丝分裂中的功能已经在无脊椎动物-脊椎动物的过渡中存在。与H3在28号丝氨酸(H3S28P)磷酸化的空间格局不同。H3S28P在端粒区附近富集,但H3.3S31P在时间和空间上与哺乳动物不同,更广泛地分布在前期、中期和中期染色体中。我们还发现了H3.3S31P在半产薯蓣的卵源减数分裂中起重要作用。H3.3S31P与H3S28P一起在复倍体晚期的所有减数分裂核中启动,在H3S10P之后。然而,H3.3S31P仅保留在为成熟卵母细胞提供种子的减数分裂核亚群上,并在减数分裂过程中在中期停止。因此,这一表观遗传标记是调节回路的一部分,使O. dioica能够在数值上调节卵母细胞的产生超过两个数量级。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phosphorylation of the histone H3.3 variant in mitosis and meiosis of the urochordate Oikopleura dioica.

Mammalian histone variant H3.3 differs from replication-dependent histone H3.1 by five amino acids, including replacement of alanine 31 by serine. H3.3 is expressed throughout the cell cycle, primarily deposited at transcriptionally active loci independent of S-phase. Data from mammalian cells suggest that phosphorylation of serine 31 (H3.3S31P) plays a role in mitosis. Here we show that H3.3S31P also occurs during mitosis of the urochordate Oikopleura dioica, suggesting this histone modification and its function in mitosis is already present at the invertebrate-vertebrate transition. The spatial pattern differed from that of H3 phosphorylation at serine 28 (H3S28P). H3S28P was enriched near telomeric regions, but H3.3S31P differed both temporally and spatially from the mammalian pattern, being more widely distributed throughout prophase, prometaphase and metaphase chromosomes. We also identified an important role for H3.3S31P during oogenic meiosis in the semelparous O. dioica. H3.3S31P initiated together with H3S28P in all meiotic nuclei in late diplotene, after H3S10P. However, H3.3S31P was retained only on the subset of meiotic nuclei that seeded maturing oocytes and proceeded through meiosis to arrest in metaphase I. Thus, this epigenetic mark is part of a regulatory circuitry that enables O. dioica to numerically adjust oocyte production over two orders of magnitude.

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