Institute for Biochemistry, University of Greifswald, Felix-Hausdorff-Straße 4, 17489 Greifswald, Germany.
Institute for Biochemistry, University of Greifswald, Felix-Hausdorff-Straße 4, 17489 Greifswald, Germany; ZIK HIKE, University of Greifswald, Fleischmannstr. 42, 17489 Greifswald, Germany.
Biochim Biophys Acta Proteins Proteom. 2020 Jun;1868(6):140404. doi: 10.1016/j.bbapap.2020.140404. Epub 2020 Feb 27.
Allosteric regulation of the Tet repressor (TetR) homodimer relies on tetracycline binding that abolishes the affinity for the DNA operator. Previously, interpretation of circular dichroism data called for unfolding of the α-helical DNA-binding domains in absence of binding to DNA or tetracycline. Our small angle X-ray scattering of TetR(D) in solution contradicts this unfolding as a physiological process. Instead, in the core domain crystal structures analyses show increased immobilisation of helix α9 and two C-terminal turns of helix α8 upon tetracycline binding. Tetracycline complexes of TetR(D) and four single-site alanine variants were characterised by isothermal titration calorimetry, fluorescence titration, X-ray crystal structures, and melting curves. Five crystal structures confirm that Thr103 is a key residue for the allosteric events of induction, with the T103A variant lacking induction by any tetracycline. The T103A variant shows anti-cooperative inducer binding, and a melting curve of the tetracycline complex different to TetR(D) and other variants. For the N82A variant inducer binding is clearly anti-cooperative but triggers the induced conformation.
变构调节 Tet 阻遏蛋白 (TetR) 同源二聚体依赖于四环素结合,四环素结合会破坏其与 DNA 操纵子的亲和力。此前,对圆二色性数据的解释要求在没有与 DNA 或四环素结合的情况下解折叠 α-螺旋 DNA 结合结构域。我们对溶液中 TetR(D) 的小角度 X 射线散射与这种作为生理过程的解折叠相矛盾。相反,在核心结构域晶体结构分析中,当与四环素结合时,α9 螺旋和 α8 螺旋的两个 C 端环的固定化增加。通过等温滴定量热法、荧光滴定、X 射线晶体结构和熔解曲线对 TetR(D) 和四个单点丙氨酸变体的四环素复合物进行了表征。五个晶体结构证实 Thr103 是诱导变构事件的关键残基,T103A 变体缺乏任何四环素的诱导。T103A 变体显示出抗协同诱导剂结合,并且四环素复合物的熔解曲线与 TetR(D) 和其他变体不同。对于 N82A 变体,诱导剂结合显然是抗协同的,但会触发诱导构象。