Abstract

FimX is a multidomain signaling protein required for type IV pilus biogenesis and twitching motility in the opportunistic pathogen Pseudomonas aeruginosa. FimX is localized to the single pole of the bacterial cell, and the unipolar localization is crucial for the correct assembly of type IV pili. FimX contains a non-catalytic EAL domain that lacks cyclic diguanylate (c-di-GMP) phosphodiesterase activity. It was shown that deletion of the EAL domain or mutation of the signature EVL motif affects the unipolar localization of FimX. However, it was not understood how the C-terminal EAL domain could influence protein localization considering that the localization sequence resides in the remote N-terminal region of the protein. Using hydrogen/deuterium exchange-coupled mass spectrometry, we found that the binding of c-di-GMP to the EAL domain triggers a long-range (∼ca. 70 Å) conformational change in the N-terminal REC domain and the adjacent linker. In conjunction with the observation that mutation of the EVL motif of the EAL domain abolishes the binding of c-di-GMP, the hydrogen/deuterium exchange results provide a molecular explanation for the mediation of protein localization and type IV pilus biogenesis by c-di-GMP through a remarkable allosteric regulation mechanism.

Highlights

  • Non-catalytic GGDEF and EAL domains [5, 7,8,9,10,11,12,13,14]

  • In conjunction with the observation that mutation of the EVL motif of the EAL domain abolishes the binding of c-di-GMP, the hydrogen/deuterium exchange results provide a molecular explanation for the mediation of protein localization and type IV pilus biogenesis by c-di-GMP through a remarkable allosteric regulation mechanism

  • We postulated that the effect of c-di-GMP binding might be exerted through a local conformational change that was undetectable by the scattering and sedimentation methods

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Summary

Allosteric Regulation in FimX

Using the method of amide hydrogen/deuterium (H/D) exchange-coupled mass spectrometry. The highly sensitive H/D exchange method revealed that the binding of c-di-GMP to the EAL domain triggers a distinctive conformational change in the REC domain and the adjacent linker region. Binding assays demonstrated that mutation of the EVL motif completely abolishes the c-di-GMP-binding capability of FimX. The results provide a novel molecular explanation for the mediation of protein function and cellular location by c-di-GMP through an allosteric regulation mechanism

EXPERIMENTAL PROCEDURES
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