Piacentini Lucia, Marchetti Marcella, Bucciarelli Elisabetta, Casale Assunta Maria, Cappucci Ugo, Bonifazi Paolo, Renda Fioranna, Fanti Laura
Istituto Pasteur Italia, Dipartimento di Biologia e Biotecnologie "Charles Darwin", Università "Sapienza", Rome, Italy.
Istituto di Biologia e Patologia Molecolari del CNR, Rome, Italy.
Chromosoma. 2019 Dec;128(4):503-520. doi: 10.1007/s00412-019-00711-x. Epub 2019 Jun 16.
Centromeres are epigenetically determined chromatin structures that specify the assembly site of the kinetochore, the multiprotein machinery that binds microtubules and mediates chromosome segregation during mitosis and meiosis. The centromeric protein A (CENP-A) and its Drosophila orthologue centromere identifier (Cid) are H3 histone variants that replace the canonical H3 histone in centromeric nucleosomes of eukaryotes. CENP-A/Cid is required for recruitment of other centromere and kinetochore proteins and its deficiency disrupts chromosome segregation. Despite the many components that are known to cooperate in centromere function, the complete network of factors involved in CENP-A recruitment remains to be defined. In Drosophila, the Trx-G proteins localize along the heterochromatin with specific patterns and some of them localize to the centromeres of all chromosomes. Here, we show that the Trx, Ash1, and CBP proteins are required for the correct chromosome segregation and that Ash1 and CBP mediate for Cid/CENP-A recruitment at centromeres through post-translational histone modifications. We found that centromeric H3 histone is consistently acetylated in K27 by CBP and that nej and ash1 silencing respectively causes a decrease in H3K27 acetylation and H3K4 methylation along with an impairment of Cid loading.
着丝粒是由表观遗传决定的染色质结构,它指定了动粒的组装位点,动粒是一种多蛋白机制,在有丝分裂和减数分裂过程中结合微管并介导染色体分离。着丝粒蛋白A(CENP-A)及其果蝇同源物着丝粒标识符(Cid)是H3组蛋白变体,它们取代了真核生物着丝粒核小体中的经典H3组蛋白。CENP-A/Cid是招募其他着丝粒和动粒蛋白所必需的,其缺陷会破坏染色体分离。尽管已知有许多成分在着丝粒功能中协同作用,但参与CENP-A招募的完整因子网络仍有待确定。在果蝇中,Trx-G蛋白以特定模式沿着异染色质定位,其中一些定位于所有染色体的着丝粒。在这里,我们表明Trx、Ash1和CBP蛋白是正确染色体分离所必需的,并且Ash1和CBP通过翻译后组蛋白修饰介导Cid/CENP-A在着丝粒处的招募。我们发现着丝粒H3组蛋白在K27位点持续被CBP乙酰化,并且分别沉默nej和ash1会导致H3K27乙酰化和H3K4甲基化减少,同时Cid加载受损。