From the Molecular Biophysics Unit, Indian Institute of Science, Bangalore 560012, India and.
Department of Biology, Indian Institute of Science Education and Research, Tirupati 517507, India.
J Biol Chem. 2018 Sep 7;293(36):14065-14079. doi: 10.1074/jbc.RA118.003917. Epub 2018 Jul 6.
In eubacteria, cyclic di-GMP (c-di-GMP) signaling is involved in virulence, persistence, motility and generally orchestrates multicellular behavior in bacterial biofilms. Intracellular c-di-GMP levels are maintained by the opposing activities of diguanylate cyclases (DGCs) and cognate phosphodiesterases (PDEs). The c-di-GMP homeostasis in is supported by DcpA, a conserved, bifunctional protein with both DGC and PDE activities. DcpA is a multidomain protein whose GAF-GGDEF-EAL domains are arranged in tandem and are required for these two activities. To gain insight into how interactions among these three domains affect DcpA activity, here we studied its domain dynamics using real-time FRET. We demonstrate that substrate binding in DcpA results in domain movement that prompts a switch from an "open" to a "closed" conformation and alters its catalytic activity. We found that a single point mutation in the conserved EAL motif (E384A) results in complete loss of the PDE activity of the EAL domain and in a significant decrease in the DGC activity of the GGDEF domain. Structural analyses revealed multiple hydrophobic and aromatic residues around Cys that are necessary for proper DcpA folding and maintenance of the active conformation. On the basis of these observations and taking into account additional bioinformatics analysis of EAL domain-containing proteins, we identified a critical putatively conserved motif, GCQGF, that plays an important role in c-di-GMP turnover. We conclude that a substrate-induced conformational switch involving movement of a loop containing a conserved motif in the bifunctional diguanylate cyclase-phosphodiesterase DcpA controls c-di-GMP turnover in .
在真细菌中,环二鸟苷酸(c-di-GMP)信号参与了毒力、持久性、运动性,并且通常协调了细菌生物膜中的多细胞行为。细胞内的 c-di-GMP 水平通过二鸟苷酸环化酶(DGCs)和同源磷酸二酯酶(PDEs)的拮抗活性来维持。DcpA 支持 中的 c-di-GMP 动态平衡,DcpA 是一种保守的、具有双功能的蛋白质,具有 DGC 和 PDE 活性。DcpA 是一种多结构域蛋白,其 GAF-GGDEF-EAL 结构域串联排列,这两种活性都需要这些结构域。为了深入了解这三个结构域之间的相互作用如何影响 DcpA 的活性,我们在这里使用实时 FRET 研究了其结构域动力学。我们证明,DcpA 中的底物结合导致结构域运动,促使从“开放”构象向“关闭”构象转变,并改变其催化活性。我们发现,保守的 EAL 基序(E384A)中的单个点突变导致 EAL 结构域的 PDE 活性完全丧失,并且 GGDEF 结构域的 DGC 活性显著降低。结构分析显示,Cys 周围有多个疏水和芳香残基,对于 DcpA 的正确折叠和维持活性构象是必要的。基于这些观察结果,并考虑到对含有 EAL 结构域的蛋白质的额外生物信息学分析,我们确定了一个关键的假定保守基序 GCQGF,它在 c-di-GMP 周转中发挥着重要作用。我们的结论是,涉及双功能二鸟苷酸环化酶-磷酸二酯酶 DcpA 中包含保守基序的环的构象变化的底物诱导的构象变化控制 c-di-GMP 在 中的周转。