Kostiuk Georgij, Dikic Jasmina, Schwarz Friedrich W, Sasnauskas Giedrius, Seidel Ralf, Siksnys Virginijus
Institute of Biotechnology, Vilnius University, Sauletekio av. 7, LT-10257 Vilnius, Lithuania.
Molecular Biophysics group, Institute for Experimental Physics I, Universität Leipzig, Linnéstr. 5, 04103 Leipzig, Germany.
Nucleic Acids Res. 2017 Jun 2;45(10):5968-5979. doi: 10.1093/nar/gkx294.
Endonucleases that generate DNA double strand breaks often employ two independent subunits such that the active site from each subunit cuts either DNA strand. Restriction enzyme BcnI is a remarkable exception. It binds to the 5΄-CC/SGG-3΄ (where S = C or G, '/' designates the cleavage position) target as a monomer forming an asymmetric complex, where a single catalytic center approaches the scissile phosphodiester bond in one of DNA strands. Bulk kinetic measurements have previously shown that the same BcnI molecule cuts both DNA strands at the target site without dissociation from the DNA. Here, we analyse the BcnI DNA binding and target recognition steps at the single molecule level. We find, using FRET, that BcnI adopts either 'open' or 'closed' conformation in solution. Next, we directly demonstrate that BcnI slides over long distances on DNA using 1D diffusion and show that sliding is accompanied by occasional jumping events, where the enzyme leaves the DNA and rebinds immediately at a distant site. Furthermore, we quantify the dynamics of the BcnI interactions with cognate and non-cognate DNA, and determine the preferred binding orientation of BcnI to the target site. These results provide new insights into the intricate dynamics of BcnI-DNA interactions.
产生DNA双链断裂的核酸内切酶通常采用两个独立的亚基,使得每个亚基的活性位点切割一条DNA链。限制性内切酶BcnI是一个显著的例外。它作为单体结合到5΄-CC/SGG-3΄(其中S = C或G,'/'表示切割位置)靶序列上,形成一个不对称复合物,其中单个催化中心靠近其中一条DNA链上的可切割磷酸二酯键。此前的大量动力学测量表明,同一个BcnI分子在靶位点切割两条DNA链而不与DNA解离。在这里,我们在单分子水平上分析BcnI的DNA结合和靶序列识别步骤。我们利用荧光共振能量转移发现,BcnI在溶液中采取“开放”或“闭合”构象。接下来,我们直接证明BcnI利用一维扩散在DNA上长距离滑动,并表明滑动伴随着偶尔的跳跃事件,即酶离开DNA并立即在远处位点重新结合。此外,我们量化了BcnI与同源和非同源DNA相互作用的动力学,并确定了BcnI与靶位点的优先结合方向。这些结果为BcnI-DNA相互作用的复杂动力学提供了新的见解。