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Meiosis-Specific Loading of the Centromere-Specific Histone CENH3 in Arabidopsis thaliana

机译:拟南芥中特定于组蛋白的组蛋白CENH3的减数分裂特异性加载

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摘要

Centromere behavior is specialized in meiosis I, so that sister chromatids of homologous chromosomes are pulled toward the same side of the spindle (through kinetochore mono-orientation) and chromosome number is reduced. Factors required for mono-orientation have been identified in yeast. However, comparatively little is known about how meiotic centromere behavior is specialized in animals and plants that typically have large tandem repeat centromeres. Kinetochores are nucleated by the centromere-specific histone CENH3. Unlike conventional histone H3s, CENH3 is rapidly evolving, particularly in its N-terminal tail domain. Here we describe chimeric variants of CENH3 with alterations in the N-terminal tail that are specifically defective in meiosis. Arabidopsis thaliana cenh3 mutants expressing a GFP-tagged chimeric protein containing the H3 N-terminal tail and the CENH3 C-terminus (termed GFP-tailswap) are sterile because of random meiotic chromosome segregation. These defects result from the specific depletion of GFP-tailswap protein from meiotic kinetochores, which contrasts with its normal localization in mitotic cells. Loss of the GFP-tailswap CENH3 variant in meiosis affects recruitment of the essential kinetochore protein MIS12. Our findings suggest that CENH3 loading dynamics might be regulated differently in mitosis and meiosis. As further support for our hypothesis, we show that GFP-tailswap protein is recruited back to centromeres in a subset of pollen grains in GFP-tailswap once they resume haploid mitosis. Meiotic recruitment of the GFP-tailswap CENH3 variant is not restored by removal of the meiosis-specific cohesin subunit REC8. Our results reveal the existence of a specialized loading pathway for CENH3 during meiosis that is likely to involve the hypervariable N-terminal tail. Meiosis-specific CENH3 dynamics may play a role in modulating meiotic centromere behavior.
机译:着丝粒的行为专门用于减数分裂I,因此同源染色体的姐妹染色单体(通过动粒单向)被拉向纺锤体的同一侧,并减少了染色体数。已经在酵母中鉴定了单向所需的因子。然而,关于减数分裂着丝粒行为如何专门化于通常具有大的串联重复着丝粒的动植物中的知之甚少。着丝粒由着丝粒特异的组蛋白CENH3成核。与常规的组蛋白H3不同,CENH3正在迅速发展,尤其是在其N末端尾域。在这里,我们描述了CENH3的嵌合变异体,其N末端尾部的变化在减数分裂中特别有缺陷。表达含有H3 N末端尾巴和CENH3 C末端(称为GFP-tailswap)的GFP标签的嵌合蛋白的拟南芥cenh3突变体是不育的,因为其减数分裂是随机的染色体分离。这些缺陷是由减数分裂动植物的GFP-tailswap蛋白的特异性消耗造成的,这与其在有丝分裂细胞中的正常定位形成对比。减数分裂中GFP-tailswap CENH3变体的丢失影响必需的动线粒体蛋白MIS12的募集。我们的发现表明CENH3加载动力学可能在有丝分裂和减数分裂中受到不同的调节。作为我们假说的进一步支持,我们表明,一旦GFP-tailswap恢复单倍体有丝分裂,GFP-tailswap蛋白就会被募集回到花粉粒子集中的着丝粒。 GFP-tailswap CENH3变体的减数分裂募集不能通过去除减数分裂特异性黏附素亚基REC8来恢复。我们的研究结果揭示了减数分裂过程中CENH3的专门加载途径的存在,该途径可能涉及高变的N末端尾巴。减数分裂特异的CENH3动态可能在调节减数分裂着丝粒行为中起作用。

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