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Evolutionary cell biology of chromosome segregation: insights from trypanosomes

机译:染色体分离的进化细胞生物学:锥虫的见解

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Faithful transmission of genetic material is essential for the survival of all organisms. Eukaryotic chromosome segregation is driven by the kinetochore that assembles onto centromeric DNA to capture spindle microtubules and govern the movement of chromosomes. Its molecular mechanism has been actively studied in conventional model eukaryotes, such as yeasts, worms, flies and human. However, these organisms are closely related in the evolutionary time scale and it therefore remains unclear whether all eukaryotes use a similar mechanism. The evolutionary origins of the segregation apparatus also remain enigmatic. To gain insights into these questions, it is critical to perform comparative studies. Here, we review our current understanding of the mitotic mechanism in Trypanosoma brucei, an experimentally tractable kinetoplastid parasite that branched early in eukaryotic history. No canonical kinetochore component has been identified, and the design principle of kinetochores might be fundamentally different in kinetoplastids. Furthermore, these organisms do not appear to possess a functional spindle checkpoint that monitors kinetochore–microtubule attachments. With these unique features and the long evolutionary distance from other eukaryotes, understanding the mechanism of chromosome segregation in T. brucei should reveal fundamental requirements for the eukaryotic segregation machinery, and may also provide hints about the origin and evolution of the segregation apparatus.
机译:遗传物质的忠实传播对于所有生物的生存至关重要。真核染色体的分离是由动粒体驱动的,该动粒体组装到着丝粒DNA上以捕获纺锤体微管并控制染色体的运动。它的分子机制已经在传统的模型真核生物中被积极研究,例如酵母,蠕虫,果蝇和人类。但是,这些生物在进化时间尺度上密切相关,因此尚不清楚是否所有真核生物都使用类似的机制。隔离装置的进化起源也仍然是个谜。要深入了解这些问题,进行比较研究至关重要。在这里,我们回顾了我们目前对布鲁氏锥虫(Trypanosoma brucei)的有丝分裂机制的了解,锥虫是一种在实验上易于处理的动质体寄生虫,在真核生物历史的早期就分支了。目前尚无典型的动线粒成分,动植物的设计原理在动质体中可能根本不同。此外,这些生物似乎没有监测纺锤体-微管附件的功能性纺锤体检查站。凭借这些独特的特征以及与其他真核生物的长距离进化距离,了解布鲁氏锥虫染色体分离的机制应揭示出真核生物分离机制的基本要求,并可能为分离装置的起源和进化提供提示。

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