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Type III Intermediate Filament Proteins Interact with Four-Way Junction DNA and Facilitate Its Cleavage by the Junction-Resolving Enzyme T7 Endonuclease I

机译:III型中间丝蛋白与四路连接DNA相互作用,并通过连接解析酶T7核酸内切酶I促进其切割

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The isolation from proliferating mouse and human embryo fibroblasts of SDS-stable crosslinkage products of vimentin with DNA fragments containing inverted repeats capable of cruciform formation under superhelical stress and the competitive effect of a synthetic Holliday junction on the binding of cytoplasmic intermediate filament (cIF) proteins to supercoiled DNA prompted a detailed investigation of the proteins' capacity to associate with four-way junction DNA and to influence its processing by junction-resolving endonucleases. Electrophoretic mobility shift analysis of reaction products obtained from vimentin and Holliday junctions under varying ionic conditions revealed efficient complex formation of the filament protein not only with the unstacked, square-planar configuration of the junctions but also with their coaxially stacked X-conformation. Glial fibrillary acidic protein (GFAP) was less efficient and desmin virtually inactive in complex formation. Electron microscopy showed binding of vimentin tetramers or octamers almost exclusively to the branchpoint of the Holliday junctions under physiological ionic conditions. Even at several hundredfold molar excess, sequence-related single- and double-stranded DNAs were unable to chase Holliday junctions from their complexes with vimentin. Vimentin also stimulated bacteriophage T7 endonuclease I in introducing single-strand cuts diametrically across the branchpoint and thus in the resolution of the Holliday junctions. This effect is very likely due to vimentin-induced structural distortion of the branchpoint, as suggested by the results of hydroxyl radical footprinting of Holliday junctions in the absence and the presence of vimentin. Moreover, vimentin, and to a lesser extent GFAP and desmin, interacted with the cruciform structures of inverted repeats inserted into a supercoiled vector plasmid, thereby changing their configuration via branch migration and sensibilizing them to processing by T7 endonuclease I. This refers to both plasmid relaxation caused by unilateral scission and, particularly, linearization via bilateral scission at primary and cIF protein-induced secondary cruciform branchpoints that were identified by T7 endonuclease I footprinting. cIF proteins share these activities with a variety of other architectural proteins interacting with and structurally modulating four-way DNA junctions. In view of the known and hypothetical functions of four-way DNA junctions and associated protein factors in DNA metabolism, cIF proteins as complementary nuclear matrix proteins may play important roles in such nuclear matrix-associated processes as DNA replication, recombination, repair, and transcription, with special emphasis on both the preservation and evolution of the genome.
机译:从增殖的小鼠和人类胚胎成纤维细胞中分离波形蛋白的SDS稳定交联产物与DNA片段,该片段包含能够在超螺旋应力下形成十字形的反向重复序列,以及合成的霍利迪结对细胞质中间丝(cIF)蛋白结合的竞争作用对超螺旋DNA的检测提示了对该蛋白与四向连接DNA缔合并通过连接解析核酸内切酶影响其加工能力的详细研究。从波形蛋白和霍利迪连接处在不同的离子条件下获得的反应产物的电泳迁移率迁移分析显示,不仅连接处具有未堆叠的方形结构,而且它们的同轴堆叠的X构象均有效地形成了细丝蛋白。胶质纤维酸性蛋白(GFAP)效率较低,结蛋白实际上在复合物形成中没有活性。电子显微镜显示,在生理离子条件下,波形蛋白四聚体或八聚体几乎仅与霍利迪结的分支点结合。甚至在摩尔量过量几百倍时,与序列相关的单链和双链DNA也无法从波形蛋白与它们的复合物中追赶霍利迪连接。波形蛋白还刺激了噬菌体T7核酸内切酶I,从而沿分支点沿直径方向引入单链切段,从而改善了霍利迪连接点。这种作用很可能是由于波形蛋白诱导的分支点结构变形所致,正如在不存在波形蛋白和存在波形蛋白的情况下,霍利迪连接处的羟基自由基足迹所表明的那样。此外,波形蛋白和程度较小的GFAP和结蛋白与插入超螺旋载体质粒中的反向重复序列的十字形结构相互作用,从而通过分支迁移改变其构型,并使它们对T7核酸内切酶I敏感。由单侧分裂引起的松弛,特别是通过在T7核酸内切酶I足迹确定的由cIF蛋白诱导的次级十字形分支点处的双侧分裂引起的线性化。 cIF蛋白与其他多种与四向DNA连接相互作用并在结构上调节四向DNA连接的建筑蛋白共享这些活性。鉴于四向DNA连接和相关蛋白因子在DNA代谢中的已知功能和假设功能,作为互补核基质蛋白的cIF蛋白可能在诸如DNA复制,重组,修复和转录等核基质相关过程中发挥重要作用。 ,特别强调基因组的保存和进化。

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