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四膜虫减数分裂染色体花束由着丝粒组织,并促进同源重组。

The Tetrahymena meiotic chromosome bouquet is organized by centromeres and promotes interhomolog recombination.

机构信息

Department of Chromosome Biology and Max F. Perutz Laboratories, Center for Molecular Biology, University of Vienna, A-1030 Vienna, Austria.

出版信息

J Cell Sci. 2012 Dec 1;125(Pt 23):5873-80. doi: 10.1242/jcs.112664. Epub 2012 Sep 12.

DOI:10.1242/jcs.112664
PMID:22976299
Abstract

In order to form crossovers and to undergo reductional segregation during meiosis, homologous chromosomes must pair. In Tetrahymena, meiotic prophase nuclei elongate immensely, and, within the elongated nucleus, chromosomes are arranged with telomeres assembled at one pole and centromeres at the opposite pole. This organisation is an exaggerated form of the bouquet, a meiotic chromosome arrangement that is widely conserved among eukaryotes. We show that centromere function is crucial for the formation of Tetrahymena's stretched bouquet and, thereby, for homologue pairing. This finding adds to previous reports of the importance of centromeres in chromosome pairing in budding yeast and in Drosophila. Tetrahymena's bouquet is an ataxia telangiectasia- and RAD3-related (ATR)-dependent meiotic DNA damage response that is triggered by meiotic DNA double-strand breaks (DSBs), suggesting that the bouquet is needed for DSB repair. However, in the present study we show that although homologous pairing is impeded in the absence of the bouquet, DSB repair takes place nevertheless. Moreover, recombinational DSB repair, as monitored by bromodeoxyuridine incorporation, takes place only after exit from the bouquet stage. Therefore, we conclude that the bouquet is not required for DSB repair per se, but may be necessary for the alignment of homologous loci in order to promote homologous crossovers over alternative repair pathways.

摘要

为了在减数分裂过程中形成交叉和经历减数分裂的分离,同源染色体必须配对。在四膜虫中,减数分裂前期细胞核极度伸长,并且在伸长的细胞核内,染色体的排列方式是端粒聚集在一极,着丝粒聚集在另一极。这种组织形式是“ bouquet”的一种夸张形式,“ bouquet”是一种广泛存在于真核生物中的减数分裂染色体排列方式。我们表明,着丝粒的功能对于四膜虫拉伸的“ bouquet”的形成以及同源物的配对至关重要。这一发现增加了先前关于着丝粒在芽殖酵母和果蝇中染色体配对中的重要性的报告。四膜虫的“ bouquet”是一种共济失调毛细血管扩张症和 RAD3 相关(ATR)依赖性减数分裂 DNA 损伤反应,由减数分裂 DNA 双链断裂(DSB)触发,表明“ bouquet”是 DSB 修复所必需的。然而,在本研究中,我们表明,尽管在没有“ bouquet”的情况下,同源配对受到阻碍,但 DSB 修复仍然发生。此外,如溴脱氧尿苷掺入所监测的重组 DSB 修复仅在退出“ bouquet”阶段后才发生。因此,我们得出结论,“ bouquet”本身并不是 DSB 修复所必需的,但可能需要同源基因座的对准,以促进同源交叉而不是替代修复途径。

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