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利用RNA干扰系统鉴定秀丽隐杆线虫中mus-101修饰基因

Systematic, RNA-interference-mediated identification of mus-101 modifier genes in Caenorhabditis elegans.

作者信息

Holway Antonia H, Hung Crystal, Michael W Matthew

机构信息

The Biological Laboratories, Department of Molecular and Cellular Biology, Harvard University, Cambridge, Massachusetts 02138, USA.

出版信息

Genetics. 2005 Mar;169(3):1451-60. doi: 10.1534/genetics.104.036137. Epub 2005 Jan 16.

Abstract

The Mus101 family of chromosomal proteins, identified initially in Drosophila, is widely conserved and has been shown to function in a variety of DNA metabolic processes. Such functions include DNA replication, DNA damage repair, postreplication repair, damage checkpoint activation, chromosome stability, and chromosome condensation. Despite its conservation and widespread involvement in chromosome biogenesis, very little is known about how Mus101 is regulated and what other proteins are required for Mus101 to exert its functions. To learn more about Mus101, we have initiated an analysis of the protein in C. elegans. Here, we show that C. elegans mus-101 is an essential gene, that it is required for DNA replication, and that it also plays an important role in the DNA damage response. Furthermore, we use RNA interference (RNAi)-mediated reverse genetics to screen for genes that modify a mus-101 partial loss-of-function RNAi phenotype. Using a systematic approach toward modifier gene discovery, we have found five chromosome I genes that modify the mus-101 RNAi phenotype, and we go on to show that one of them encodes an E3 SUMO ligase that promotes SUMO modification of MUS-101 in vitro. These results expand our understanding of MUS-101 regulation and show that genetic interactions can be uncovered using screening strategies that rely solely on RNAi.

摘要

染色体蛋白的Mus101家族最初是在果蝇中发现的,具有广泛的保守性,并已证明在多种DNA代谢过程中发挥作用。这些功能包括DNA复制、DNA损伤修复、复制后修复、损伤检查点激活、染色体稳定性和染色体凝聚。尽管Mus101具有保守性且广泛参与染色体生物发生,但对于其如何被调控以及Mus101发挥功能还需要哪些其他蛋白质,人们了解得很少。为了更多地了解Mus101,我们已经开始对秀丽隐杆线虫中的这种蛋白质进行分析。在这里,我们表明秀丽隐杆线虫的mus-101是一个必需基因,它是DNA复制所必需的,并且在DNA损伤反应中也起着重要作用。此外,我们使用RNA干扰(RNAi)介导的反向遗传学来筛选修饰mus-101部分功能丧失RNAi表型的基因。通过一种系统的方法来发现修饰基因,我们发现了五个位于染色体I上的基因可以修饰mus-101的RNAi表型,并且我们进一步表明其中一个基因编码一种E3 SUMO连接酶,该酶在体外促进MUS-101的SUMO修饰。这些结果扩展了我们对MUS-101调控的理解,并表明可以使用仅依赖RNAi的筛选策略来揭示遗传相互作用。

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