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Probing the DNA Structural Requirements for Facilitated Diffusion

机译:探索促进扩散的DNA结构要求

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DNA glycosylases perform a genome-wide search to locate damaged nucleotides among a great excess of undamaged nucleotides. Many glycosylases are capable of facilitated diffusion, whereby multiple sites along the DNA are sampled during a single binding encounter. Electrostatic interactions between positively charged amino acids and the negatively charged phosphate backbone are crucial for facilitated diffusion, but the extent to which diffusing proteins rely on the double-helical structure DNA is not known. Kinetic assays were used to probe the DNA searching mechanism of human alkyladenine DNA glycosylase (AAG) and to test the extent to which diffusion requires B-form duplex DNA. Although AAG excises eA lesions from single-stranded DNA, it is not processive on single-stranded DNA because dissociation is faster than N-glycosidic bond cleavage. However, the AAG complex with single-stranded DNA is sufficiently stable to allow for DNA annealing when a complementary strand is added. This observation provides evidence of nonspecific association of AAG with single-stranded DNA. Single-strand gaps, bubbles, and bent structures do not impede the search by AAG. Instead, these flexible or bent structures lead to the capture of a nearby site of damage that is more efficient than that of a continuous B-form duplex. The ability of AAG to negotiate these helix discontinuities is inconsistent with a sliding mode of diffusion but can be readily explained by a hopping mode that involves microscopic dissociation and reassociation. These experiments provide evidence of relatively long-range hops that allow a searching protein to navigate around DNA binding proteins that would serve as obstacles to a sliding protein.
机译:DNA糖基化酶可以进行全基因组搜索,以将受损的核苷酸定位在大量未损坏的核苷酸中。许多糖基化酶能够促进扩散,从而在单个结合过程中沿DNA采样多个位点。带正电荷的氨基酸与带负电荷的磷酸骨架之间的静电相互作用对于促进扩散至关重要,但是,扩散蛋白依赖于双螺旋结构DNA的程度尚不清楚。动力学测定法用于探测人烷基腺嘌呤DNA糖基化酶(AAG)的DNA搜索机制,并测试扩散需要B型双链体DNA的程度。尽管AAG可以从单链DNA中切除eA病变,但它在单链DNA上却没有进行性作用,因为解离要比N-糖苷键的切割快。但是,具有单链DNA的AAG复合物足够稳定,可以在添加互补链时进行DNA退火。该观察结果提供了AAG与单链DNA非特异性结合的证据。单链间隙,气泡和弯曲结构不会妨碍AAG的搜索。而是,这些柔性或弯曲的结构导致捕获附近的损坏部位,该部位比连续的B型双工更为有效。 AAG协商这些螺旋间断的能力与扩散的滑动模式不一致,但可以通过涉及微观解离和重新结合的跳跃模式轻松解释。这些实验提供了相对长距离跃点的证据,该跃点允许搜索蛋白在DNA结合蛋白周围导航,而DNA结合蛋白将成为滑动蛋白的障碍。

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