Ciubotaru Mihai, Schatz David G
Section of Immunobiology, Howard Hughes Medical Institute, Yale University School of Medicine, 300 Cedar St., TAC S625, New Haven, CT 06510.
Mol Cell Biol. 2004 Oct;24(19):8727-44. doi: 10.1128/MCB.24.19.8727-8744.2004.
V(D)J recombination requires binding and synapsis of a complementary (12/23) pair of recombination signal sequences (RSSs) by the RAG1 and RAG2 proteins, aided by a high-mobility group protein, HMG1 or HMG2. Double-strand DNA cleavage within this synaptic, or paired, complex is thought to involve DNA distortion or melting near the site of cleavage. Although V(D)J recombination normally occurs between RSSs located on the same DNA molecule (in cis), all previous studies that directly assessed RSS synapsis were performed with the two DNA substrates in trans. To overcome this limitation, we have developed a facilitated circularization assay using DNA substrates of reduced length to assess synapsis of RSSs in cis. We show that a 12/23 pair of RSSs is the preferred substrate for synapsis of cis RSSs and that the efficiency of pairing is dependent upon RAG1-RAG2 stoichiometry. Synapsis in cis occurs rapidly and is kinetically favored over synapsis of RSSs located in trans. This experimental system also allowed the generation of underwound DNA substrates containing pairs of RSSs in cis. Importantly, we found that the RAG proteins cleave such substrates substantially more efficiently than relaxed substrates and that underwinding may enhance RSS synapsis as well as RAG1/2-mediated catalysis. The energy stored in such underwound substrates may be used in the generation of DNA distortion and/or protein conformational changes needed for synapsis and cleavage. We propose that this unwinding is uniquely sensed during synapsis of an appropriate 12/23 pair of RSSs.
V(D)J重组需要RAG1和RAG2蛋白结合并配对互补的(12/23)重组信号序列(RSS)对,这一过程由高迁移率族蛋白HMG1或HMG2辅助。这种突触样或配对复合物中的双链DNA切割被认为涉及切割位点附近的DNA扭曲或解链。虽然V(D)J重组通常发生在同一DNA分子上(顺式)的RSS之间,但之前所有直接评估RSS配对的研究都是用两条反式DNA底物进行的。为了克服这一局限性,我们开发了一种简易环化试验,使用缩短长度的DNA底物来评估顺式RSS的配对。我们发现,12/23 RSS对是顺式RSS配对的首选底物,配对效率取决于RAG1-RAG2的化学计量。顺式配对迅速发生,并且在动力学上比反式RSS配对更有利。该实验系统还能生成含有顺式RSS对的负超螺旋DNA底物。重要的是,我们发现RAG蛋白切割此类底物的效率远高于松弛底物,并且负超螺旋可能会增强RSS配对以及RAG1/2介导的催化作用。这种负超螺旋底物中储存的能量可能用于产生配对和解割所需的DNA扭曲和/或蛋白质构象变化。我们提出,在合适的12/23 RSS对配对过程中,这种解旋能被独特地感知到。