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酵母核包膜蛋白 Mps3 与三种替代复制因子 C 复合物和一种变体组蛋白之间的物理联系。

Physical links between the nuclear envelope protein Mps3, three alternate replication factor C complexes, and a variant histone in Saccharomyces cerevisiae.

机构信息

Science Department, Marywood University, Scranton, Pennsylvania 18509, USA.

出版信息

DNA Cell Biol. 2012 Jun;31(6):917-24. doi: 10.1089/dna.2011.1493. Epub 2012 Jan 25.

Abstract

Viability of cell progeny upon cell division require that genomes are replicated, repaired, and maintained with high fidelity. Central to both DNA replication and repair are Replication Factor C (RFC) complexes which catalyze the unloading/loading of sliding clamps such as PCNA or 9-1-1 complexes on DNA. Budding yeast contain four alternate RFC complexes which play partially redundant roles. Rfc1, Ctf18, Rad24, and Elg1 are all large subunits that bind, in a mutually exclusive fashion to RFC 2-5 small subunits. Ctf18, Rad24, and Elg1 are of particular interest because, in addition to their roles in maintaining genome integrity, all three play critical roles in sister chromatid tethering reactions that appear coupled to their roles in DNA replication/repair. Intriguingly, the nuclear envelope protein Mps3 similarly exhibits roles in repair and cohesion, leading us to hypothesize that Mps3 and RFCs function through a singular mechanism. Here we report that the nuclear envelope protein Mps3 physically associates with all three of these large RFC complex subunits (Ctf18, Elg1, and Rad24). In addition we report a physical interaction between Mps3 and the histone variant Htz1, a factor previously shown to promote DNA repair. In combination, these findings reveal a direct link between the nuclear envelope and chromatin and provide support for a model that telomeres and chromatin interact with the nuclear envelope during both DNA repair and sister chromatid pairing reactions.

摘要

细胞分裂后细胞后代的存活要求基因组被复制、修复和高度保真地维持。复制因子 C(RFC)复合物是 DNA 复制和修复的核心,它催化滑动夹(如 PCNA 或 9-1-1 复合物)在 DNA 上的卸载/加载。 budding yeast 包含四个替代的 RFC 复合物,它们发挥部分冗余的作用。Rfc1、Ctf18、Rad24 和 Elg1 都是大亚基,以相互排斥的方式结合到 RFC 2-5 小亚基上。Ctf18、Rad24 和 Elg1 特别有趣,因为除了在维持基因组完整性方面的作用外,这三个亚基在姐妹染色单体连接反应中都起着关键作用,这些反应似乎与其在 DNA 复制/修复中的作用相关。有趣的是,核膜蛋白 Mps3 同样在修复和凝聚中发挥作用,这使我们假设 Mps3 和 RFC 通过单一机制发挥作用。在这里,我们报告核膜蛋白 Mps3 与这三个大 RFC 复合物亚基(Ctf18、Elg1 和 Rad24)都有物理关联。此外,我们还报告了 Mps3 与组蛋白变体 Htz1 之间的物理相互作用,Htz1 是先前被证明促进 DNA 修复的因素。这些发现结合起来,揭示了核膜和染色质之间的直接联系,并为一个模型提供了支持,即端粒和染色质在 DNA 修复和姐妹染色单体配对反应期间与核膜相互作用。

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