Martin Shelley S, Pulido Erik, Chu Victor C, Lechner Tyson S, Baldwin Enoch P
Section of Molecular and Cellular Biology, University of California, Davis, 1 Shields Avenue, Davis, CA 95616, USA
J Mol Biol. 2002 May 24;319(1):107-27. doi: 10.1016/S0022-2836(02)00246-2.
Cre recombinase uses two pairs of sequential cleavage and religation reactions to exchange homologous DNA strands between 34 base-pair (bp) LoxP recognition sequences. In the oligomeric recombination complex, a switch between "cleaving" and "non-cleaving" subunit conformations regulates the number, order, and regio-specificity of the strand exchanges. However, the particular sequence of events has been in question. From analysis of strand composition of the Holliday junction (HJ) intermediate, we determined that Cre initiates recombination of LoxP by cleaving the upper strand on the left arm. Cre preferred to react with the left arm of a LoxP suicide substrate, but at a similar rate to the right arm, indicating that the first strand to be exchanged is selected prior to cleavage. We propose that during complex assembly the cleaving subunit preferentially associates with the LoxP left arm, directing the first strand exchange to that side. In addition, this biased assembly would enforce productive orientation of LoxP sites in the recombination synapses. A novel Cre-HJ complex structure in which LoxP was oriented with the left arm bound by the cleaving Cre subunit suggested a physical basis for the strand exchange order. Lys86 and Lys201 interact with the left arm scissile adenine base differently than in structures that have a scissile guanine. These interactions are associated with positioning the 198-208 loop, a structural component of the conformational switch, in a configuration that is specific to the cleaving conformation. Our results suggest that strand exchange order and site alignment are regulated by an "induced fit" mechanism in which the cleaving conformation is selectively stabilized through protein-DNA interactions with the scissile base on the strand that is cleaved first.
Cre重组酶利用两对连续的切割和重新连接反应,在34个碱基对(bp)的LoxP识别序列之间交换同源DNA链。在寡聚重组复合物中,“切割”和“非切割”亚基构象之间的转换调节链交换的数量、顺序和区域特异性。然而,具体的事件顺序一直存在疑问。通过对霍利迪连接体(HJ)中间体的链组成分析,我们确定Cre通过切割左臂上的上链启动LoxP的重组。Cre更倾向于与LoxP自杀底物的左臂反应,但与右臂的反应速率相似,这表明在切割之前就选择了要交换的第一条链。我们提出,在复合物组装过程中,切割亚基优先与LoxP左臂结合,将第一条链交换导向该侧。此外,这种偏向组装将强制LoxP位点在重组突触中以有效的方向排列。一种新的Cre-HJ复合物结构,其中LoxP的左臂由切割的Cre亚基结合,为链交换顺序提供了物理基础。Lys86和Lys201与左臂可裂解腺嘌呤碱基的相互作用与具有可裂解鸟嘌呤的结构不同。这些相互作用与将198-208环(构象转换的一个结构成分)定位在特定于切割构象的构型中有关。我们的结果表明,链交换顺序和位点排列受“诱导契合”机制调节, 其中通过与首先被切割链上的可裂解碱基的蛋白质-DNA相互作用选择性地稳定切割构象。