Grainge I, Lee J, Xu C J, Jayaram M
Section of Molecular Genetics and Microbiology, University of Texas at Austin, Austin, TX 78712, USA.
J Mol Biol. 2001 Dec 7;314(4):717-33. doi: 10.1006/jmbi.2001.5194.
Using a combination of DNA and hybrid DNA-RNA substrates, we have analyzed the mechanism of phosphoryl transfer by the Flp site-specific recombinase in three different reactions: DNA strand breakage and joining, and two types of RNA cleavage activities. These reactions were then used to characterize Flp variants altered at His309 and His345, amino acid residues that are in close proximity to two key catalytic residues (Arg308 and Tyr343). These histidine residues are important for strand cutting by Tyr343, the active-site nucleophile of Flp, but neither residue contributes to the type II RNA cleavage activity or to the strand-joining reaction in a pre-cleaved substrate. Strand cleavage reactions using small, diffusible nucleophiles indicate that this histidine pair contributes to the correct positioning and activation of Tyr343 within the shared active site of Flp. The implications of these results are evaluated against the recently solved crystal structure of Flp in association with a Holliday junction.
我们使用DNA和DNA-RNA杂交底物的组合,分析了Flp位点特异性重组酶在三种不同反应中的磷酸转移机制:DNA链断裂和连接,以及两种类型的RNA切割活性。然后利用这些反应来表征在His309和His345处发生改变的Flp变体,这两个氨基酸残基紧邻两个关键催化残基(Arg308和Tyr343)。这些组氨酸残基对于Flp的活性位点亲核试剂Tyr343进行链切割很重要,但这两个残基均不参与II型RNA切割活性或预切割底物中的链连接反应。使用小的可扩散亲核试剂进行的链切割反应表明,这对组氨酸有助于Tyr343在Flp共享活性位点内的正确定位和激活。根据最近解析的Flp与霍利迪连接体结合的晶体结构,对这些结果的意义进行了评估。