Department of Chemistry and Biochemistry, North Dakota State University, Fargo, ND 58108, USA.
Independent Researcher, Winnipeg, MB R3C 0Z5, Canada.
Biomolecules. 2024 Sep 3;14(9):1108. doi: 10.3390/biom14091108.
Cell surface signaling (CSS) is a means of rapidly adjusting transcription in response to extracellular stimuli in Gram-negative bacteria. The pseudobactin BN7/8 uptake (Pup) system not only imports iron but also upregulates its own transcription through CSS in . In the absence of ferric pseudobactin BN7/8, the signaling components are maintained in a resting state via the formation of a periplasmic complex between the N-terminal signaling domain (NTSD) of the outer membrane iron-transporter, PupB, and the C-terminal CSS domain (CCSSD) of the sigma regulator, PupR. The previously determined 1.6 Å crystal structure of this periplasmic complex has allowed us to probe the structural and thermodynamic consequences of mutating key interfacial residues. In this report, we describe the solution structure of the PupB NTSD and use Nuclear Magnetic Resonance spectroscopy, Isothermal Titration Calorimetry, and Circular Dichroism spectroscopy together with thermal denaturation to investigate whether three PupB point mutations, Q69K, H72D, and L74A, influence the interaction merely due to the chemical nature of the amino acid substitution or also cause changes in overall protein structure. Our results demonstrate that binding to the PupR CCSSD does not alter the structure of PupB NTSD and that the individual mutations have only minor effects on structure. The mutations generally lower thermodynamic stability of the NTSD and weaken binding to the CCSSD. These findings validate the X-ray crystal structure interface, emphasizing the importance of amino acid chemical nature at the interface.
细胞表面信号转导(CSS)是革兰氏阴性菌快速响应细胞外刺激调节转录的一种方式。假菌素 BN7/8 摄取(Pup)系统不仅能导入铁,还能通过 CSS 上调自身转录。在没有铁假菌素 BN7/8 的情况下,信号成分通过外膜铁转运蛋白 PupB 的 N 端信号结构域(NTSD)和 sigma 调节蛋白 PupR 的 C 端 CSS 结构域(CCSSD)在周质中形成复合物,从而保持在静息状态。之前已确定的该周质复合物的 1.6 Å 晶体结构使我们能够探测突变关键界面残基的结构和热力学后果。在本报告中,我们描述了 PupB NTSD 的溶液结构,并使用核磁共振波谱、等温滴定量热法和圆二色性光谱以及热变性来研究 PupB 的三个点突变,Q69K、H72D 和 L74A 是否仅因氨基酸取代的化学性质而影响相互作用,还是导致整个蛋白质结构发生变化。我们的结果表明,与 PupR CCSSD 的结合不会改变 PupB NTSD 的结构,并且单个突变对结构的影响很小。这些突变通常会降低 NTSD 的热力学稳定性并削弱与 CCSSD 的结合。这些发现验证了 X 射线晶体结构界面,强调了界面处氨基酸化学性质的重要性。