Institute of Genetic Epidemiology, Medical University of Innsbruck, Austria.
Institute of Biochemistry, University of Greifswald, Germany.
FEBS J. 2023 Jan;290(2):521-532. doi: 10.1111/febs.16606. Epub 2022 Sep 2.
TetR/AcrR-like transcription regulators enable bacteria to sense a wide variety of chemical compounds and to dynamically adapt the expression levels of specific genes in response to changing growth conditions. Here, we describe the structural characterisation of SCO3201, an atypical TetR/AcrR family member from Streptomyces coelicolor that strongly represses antibiotic production and morphological development under conditions of overexpression. We present crystal structures of SCO3201 in its ligand-free state as well as in complex with an unknown inducer, potentially a polyamine. In the ligand-free state, the DNA-binding domains of the SCO3201 dimer are held together in an unusually compact conformation and, as a result, the regulator cannot span the distance between the two half-sites of its operator. Interaction with the ligand coincides with a major structural rearrangement and partial conversion of the so-called hinge helix (α4) to a 3 -conformation, markedly increasing the distance between the DNA-binding domains. In sharp contrast to what was observed for other TetR/AcrR-like regulators, the increased interdomain distance might facilitate rather than abrogate interaction of the dimer with the operator. Such a 'reverse' induction mechanism could expand the regulatory repertoire of the TetR/AcrR family and may explain the dramatic impact of SCO3201 overexpression on the ability of S. coelicolor to generate antibiotics and sporulate.
TetR/AcrR 样转录调节因子使细菌能够感知各种化学化合物,并根据生长条件的变化动态地调节特定基因的表达水平。在这里,我们描述了来自链霉菌的非典型 TetR/AcrR 家族成员 SCO3201 的结构特征,该蛋白在过表达条件下强烈抑制抗生素的产生和形态发育。我们展示了 SCO3201 在配体自由状态以及与未知诱导物(可能是聚胺)结合的晶体结构。在配体自由状态下,SCO3201 二聚体的 DNA 结合域以异常紧凑的构象结合在一起,因此,调节剂不能跨越其操纵子的两个半位点之间的距离。与配体的相互作用伴随着一个主要的结构重排和所谓的铰链螺旋(α4)的部分转换为 3 构象,显着增加 DNA 结合域之间的距离。与其他 TetR/AcrR 样调节剂观察到的情况形成鲜明对比的是,增加的域间距离可能促进而不是阻止二聚体与操纵子的相互作用。这种“反向”诱导机制可以扩展 TetR/AcrR 家族的调控范围,并可能解释 SCO3201 过表达对链霉菌产生抗生素和产孢能力的巨大影响。