Ehmsen Kirk Tevebaugh, Heyer Wolf-Dietrich
Section of Microbiology and Section of Molecular and Cellular Biology, University of California Davis, Davis, CA 95616-8665, USA.
Nucleic Acids Res. 2008 Apr;36(7):2182-95. doi: 10.1093/nar/gkm1152. Epub 2008 Feb 16.
The DNA structure-selective endonuclease Mus81-Mms4/Eme1 is a context-specific recombination factor that supports DNA replication, but is not essential for DSB repair in Saccharomyces cerevisiae. We overexpressed Mus81-Mms4 in S. cerevisiae, purified the heterodimer to apparent homogeneity, and performed a classical enzymological characterization. Kinetic analysis (k(cat), K(M)) demonstrated that Mus81-Mms4 is catalytically active and identified three substrate classes in vitro. Class I substrates reflect low K(M) (3-7 nM) and high k(cat) ( approximately 1 min(-1)) and include the nicked Holliday junction, 3'-flapped and replication fork-like structures. Class II substrates share low K(M) (1-6 nM) but low k(cat) (< or =0.3 min(-1)) relative to Class I substrates and include the D-loop and partial Holliday junction. The splayed Y junction defines a class III substrate having high K(M) ( approximately 30 nM) and low k(cat) (0.26 min(-1)). Holliday junctions assembled from oligonucleotides with or without a branch migratable core were negligibly cut in vitro. We found that Mus81 and Mms4 are phosphorylated constitutively and in the presence of the genotoxin MMS. The endogenous complex purified in either modification state is negligibly active on Holliday junctions. Hence, Holliday junction incision activity in vitro cannot be attributed to the Mus81-Mms4 heterodimer in isolation.
DNA结构选择性核酸内切酶Mus81-Mms4/Eme1是一种依赖于上下文的重组因子,可支持DNA复制,但对酿酒酵母中的双链断裂修复并非必不可少。我们在酿酒酵母中过表达了Mus81-Mms4,将异源二聚体纯化至表观均一,并进行了经典的酶学表征。动力学分析(k(cat)、K(M))表明Mus81-Mms4具有催化活性,并在体外鉴定出三类底物。I类底物表现出低K(M)(3-7 nM)和高k(cat)(约1 min(-1)),包括带切口的霍利迪连接体、3'-侧翼和复制叉样结构。相对于I类底物,II类底物的K(M)较低(1-6 nM),但k(cat)较低(≤0.3 min(-1)),包括D-环和部分霍利迪连接体。展开的Y型连接体定义了III类底物,其具有高K(M)(约30 nM)和低k(cat)(0.26 min(-1))。由带有或不带有可分支迁移核心的寡核苷酸组装而成的霍利迪连接体在体外的切割可忽略不计。我们发现Mus81和Mms4在基础状态以及存在基因毒素甲磺酸甲酯(MMS)的情况下都会发生磷酸化。以任何一种修饰状态纯化的内源性复合物对霍利迪连接体的活性都可忽略不计。因此,体外的霍利迪连接体切割活性不能单独归因于Mus81-Mms4异源二聚体。