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寡聚翼状螺旋-转角-螺旋蛋白RdfS控制整合性接合元件切除和转移的结构基础

Structural basis for control of integrative and conjugative element excision and transfer by the oligomeric winged helix-turn-helix protein RdfS.

作者信息

Verdonk Callum J, Agostino Mark, Eto Karina Yui, Hall Drew A, Bond Charles S, Ramsay Joshua P

机构信息

School of Molecular Sciences, The University of Western Australia, Perth, WA 6009, Australia.

Curtin Medical Research Institute, Curtin University, Perth, WA 6102, Australia.

出版信息

Nucleic Acids Res. 2025 Mar 20;53(6). doi: 10.1093/nar/gkaf249.

Abstract

Winged helix-turn-helix (wHTH) proteins are diverse DNA-binding proteins that often oligomerize on DNA and participate in DNA recombination and transcriptional regulation. wHTH recombination directionality factors (RDFs) associated with tyrosine recombinases, stimulate excision of prophage and integrative and conjugative elements (ICEs). RdfS is required for excision and conjugation of the Mesorhizobium japonicum R7A ICE, ICEMlSymR7A, which carries genes for nitrogen-fixing symbiosis. We show RdfS binds to DNA regions within the IntS attachment site (attP) and within the rdfS promoter, enabling RdfS to coordinate rdfS/intS expression and stimulate RdfS/IntS-mediated ICEMlSymR7A excision. Several RdfS DNA-binding sites were identified. However, no consensus motif was apparent and no individual nucleotide substitutions in attP prevented RdfS binding. RdfS forms extensive helical filaments in crystals, with subunits contacting via a novel α1-helix absent in other wHTH-RDFs. RdfS oligomerized in solution in the absence of DNA. Molecular dynamics simulations supported a role for the α1-helix in oligomerization and compaction of nucleoprotein complexes. Removal of RdfS-α1 did not eliminate DNA-binding in vitro but reduced oligomerization and abolished RdfS-mediated ICEMlSymR7A excision and conjugative transfer. We propose the novel RdfS-α1 mediated oligomerization enables RdfS to specifically recognize larger DNA regions with low primary sequence conservation through an indirect readout mechanism.

摘要

翼状螺旋-转角-螺旋(wHTH)蛋白是多种DNA结合蛋白,它们常常在DNA上形成寡聚体,并参与DNA重组和转录调控。与酪氨酸重组酶相关的wHTH重组方向性因子(RDF)刺激原噬菌体以及整合性和接合性元件(ICE)的切除。RdfS是日本中生根瘤菌R7A ICE(ICEMlSymR7A)切除和接合所必需的,该ICE携带固氮共生基因。我们发现RdfS与IntS附着位点(attP)内以及rdfS启动子内的DNA区域结合,从而使RdfS能够协调rdfS/intS的表达,并刺激RdfS/IntS介导的ICEMlSymR7A切除。鉴定出了几个RdfS DNA结合位点。然而,没有明显的共有基序,并且attP中的单个核苷酸取代并不妨碍RdfS结合。RdfS在晶体中形成广泛的螺旋丝,亚基通过其他wHTH-RDF中不存在的新型α1螺旋相互接触。在没有DNA的情况下,RdfS在溶液中形成寡聚体。分子动力学模拟支持α1螺旋在核蛋白复合物的寡聚化和压缩中的作用。去除RdfS-α1并没有消除体外的DNA结合,但减少了寡聚化,并消除了RdfS介导的ICEMlSymR7A切除和接合转移。我们提出,新型的RdfS-α1介导的寡聚化使RdfS能够通过间接读出机制特异性识别具有低一级序列保守性的更大DNA区域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f692/11963761/031d5c67d391/gkaf249figgra1.jpg

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