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Holocentromere identity: from the typical mitotic linear structure to the great plasticity of meiotic holocentromeres

机译:整体着丝粒身份:从典型的有丝分裂线性结构到减数分裂全着丝粒的巨大可塑性

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The centromere is the chromosomal site of kinetochore assembly and is responsible for the correct chromosome segregation during mitosis and meiosis in eukaryotes. Contrary to monocentrics, holocentric chromosomes lack a primary constriction, what is attributed to a kinetochore activity along almost the entire chromosome length during mitosis. This extended centromere structure imposes a problem during meiosis, since sister holocentromeres are not co-oriented during first meiotic division. Thus, regardless of the relatively conserved somatic chromosome structure of holocentrics, during meiosis holocentric chromosomes show different adaptations to deal with this condition. Recent findings in holocentrics have brought back the discussion of the great centromere plasticity of eukaryotes, from the typical CENH3-based holocentromeres to CENH3-less holocentric organisms. Here, we summarize recent and former findings about centromere/kinetochore adaptations shown by holocentric organisms during mitosis and meiosis and discuss how these adaptations are related to the type of meiosis found.
机译:着丝粒是线粒体组装的染色体位点,负责真核生物在有丝分裂和减数分裂过程中正确的染色体分离。与单中心染色体相反,全中心染色体缺乏主要的收缩,这归因于有丝分裂期间几乎整个染色体长度上的动粒活动。这种扩展的着丝粒结构在减数分裂过程中产生了一个问题,因为姐妹全向着丝粒在第一次减数分裂分裂期间不是共同定向的。因此,不管全心体的相对保守的体染色体结构如何,在减数分裂期间,全心体染色体显示出不同的适应性以应对这种情况。整体中心的最新发现使对真核生物着丝粒可塑性的讨论从典型的基于CENH3的整体着丝粒到缺少CENH3的整体中心生物都得到了讨论。在这里,我们总结了在有丝分裂和减数分裂过程中,由全中心生物显示的着丝粒/线粒体适应性的最新发现和以前的发现,并讨论了这些适应性与所发现的减数分裂类型之间的关系。

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