Thermodynamic Diversity in Staphylococcal Nitrate Sensors with a Conserved Binding Pocket
Nitrate is an important oxyanion in bacterial physiology, with major roles as a nitrogen source for assimilation and as an alternative electron acceptor in anaerobic respiration. Accordingly, diverse nitrate-responsive regulatory systems sense nitrate availability and control the expression of genes involved in nitrate transport and metabolism. In the NreABC system, the soluble GAF-like domain protein NreA functions as a cellular nitrate sensor. To date, our molecular understanding of nitrate recognition by NreA has been derived primarily from studies of the Staphylococcus carnosus protein, with less known about homologues from other species. Here, we identified 736 NreA homologues through bioinformatic analysis of the GAF-like domain superfamily and selected five staphylococcal representatives for thermodynamic characterization by isothermal titration calorimetry. Despite conservation of the nitrate-binding pocket, these homologues resolved into high- and low-affinity groups with distinct thermodynamic profiles. Comparative structural modeling and chimeragenesis of a low-affinity homologue revealed that the C-terminal region is a non-coordinating determinant of nitrate-binding affinity. Together, these findings show that a conserved nitrate-binding pocket preserves recognition, while distal sequence variation shapes thermodynamics and tunes the nitrate concentration range over which NreA sensors can function.