Department of Biochemistry, 307 Research Dr., Box 3711, Duke University Medical Center, Durham, NC 27710, USA.
100 Edwin H Land Blvd, Rowland Institute at Harvard, Harvard University, Cambridge, Cambridge, MA 02142, USA.
Nucleic Acids Res. 2024 Feb 9;52(3):1435-1449. doi: 10.1093/nar/gkad1198.
Transcription regulators play central roles in orchestrating responses to changing environmental conditions. Recently the Caulobacter crescentus transcription activator DriD, which belongs to the newly defined WYL-domain family, was shown to regulate DNA damage responses independent of the canonical SOS pathway. However, the molecular mechanisms by which DriD and other WYL-regulators sense environmental signals and recognize DNA are not well understood. We showed DriD DNA-binding is triggered by its interaction with ssDNA, which is produced during DNA damage. Here we describe the structure of the full-length C. crescentus DriD bound to both target DNA and effector ssDNA. DriD consists of an N-terminal winged-HTH (wHTH) domain, linker region, three-helix bundle, WYL-domain and C-terminal WCX-dimer domain. Strikingly, DriD binds DNA using a novel, asymmetric DNA-binding mechanism that results from different conformations adopted by the linker. Although the linker does not touch DNA, our data show that contacts it makes with the wHTH are key for specific DNA binding. The structure indicates how ssDNA-effector binding to the WYL-domain impacts wHTH DNA binding. In conclusion, we present the first structure of a WYL-activator bound to both effector and target DNA. The structure unveils a unique, asymmetric DNA binding mode that is likely conserved among WYL-activators.
转录调控因子在协调应对环境变化的反应中发挥着核心作用。最近,新月柄杆菌的转录激活因子 DriD 被证明可以独立于典型的 SOS 途径调节 DNA 损伤反应,它属于新定义的 WYL 结构域家族。然而,DriD 和其他 WYL 调控因子如何感知环境信号并识别 DNA 的分子机制尚不清楚。我们发现 DriD 的 DNA 结合是由其与 ssDNA 的相互作用触发的,ssDNA 是在 DNA 损伤过程中产生的。在这里,我们描述了全长新月柄杆菌 DriD 与靶 DNA 和效应 ssDNA 结合的结构。DriD 由一个 N 端的翅膀-HTH(wHTH)结构域、连接区、三螺旋束、WYL 结构域和 C 端 WCX 二聚体结构域组成。引人注目的是,DriD 采用了一种新颖的、不对称的 DNA 结合机制来结合 DNA,这种机制是由连接区的不同构象引起的。尽管连接区不接触 DNA,但我们的数据表明,它与 wHTH 的接触对于特定的 DNA 结合是关键的。该结构表明 ssDNA 效应因子与 WYL 结构域的结合如何影响 wHTH 的 DNA 结合。总之,我们展示了第一个与效应物和靶 DNA 结合的 WYL 激活剂的结构。该结构揭示了一种独特的、不对称的 DNA 结合模式,这种模式可能在 WYL 激活剂中是保守的。