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Scarsbrook, H. L.

Publications and source records attributed to Scarsbrook, H. L..

2 recordsLinked to original sources

Structural modelling and functional analysis support lipid binding by the dimeric E. coli DedA protein YqjA

Maintenance of membrane homeostasis is essential for bacterial viability, yet the molecular functions of many membrane proteins involved in this process remain poorly understood. The widely distributed DedA superfamily of integral membrane proteins has been implicated in membrane homeostasis, with deletion of DedA genes resulting in sensitivities to temperature, pH and a range of antimicrobial compounds. Several bacterial DedA proteins have been linked to lipid transport, providing a potential connection between function and phenotype. However, a lack of direct functional and structural data means that the precise role of DedA proteins in bacterial membrane homeostasis remains unclear. Here, using analytical ultracentrifugation (AUC), we show that the Escherichia coli DedA protein YqjA exists predominantly as a dimer and, by combining structural modelling with site-specific cysteine crosslinking, we have identified the most likely dimer interface. Modelling of dimeric YqjA in the presence of lipids predicts an interfacial lipid-binding site located in close proximity to several conserved, functionally important residues. Consistent with lipid binding, addition of lipid substantially increased the thermal stability of YqjA. Furthermore, mutation of residues associated with the predicted binding site impaired YqjA function. Together, these findings provide new structural and functional insights into the DedA family and support a role for lipid binding in the activity of YqjA.

biochemistry↗

Topological analysis of a bacterial DedA protein associated with alkaline tolerance and antimicrobial resistance.

Maintaining membrane integrity is of paramount importance to the survival of bacteria as the membrane is the site of multiple crucial cellular processes including energy generation, nutrient uptake, and antimicrobial efflux. The DedA family of integral membrane proteins are widespread in bacteria and are associated with maintaining the integrity of the membrane. In addition, DedA proteins have been linked to resistance to multiple classes of antimicrobials in various microorganisms. Therefore, the DedA family are attractive targets for the development of new antibiotics. Despite DedA family members playing a key physiological role in many bacteria, their structure, function and physiological role remain unclear. To help illuminate the structure of the bacterial DedA proteins, we have performed substituted cysteine accessibility method (SCAM) analysis on the most comprehensively characterized bacterial DedA protein, YqjA from Escherichia coli. By probing the accessibility of 15 cysteine residues across the length of YqjA using thiol reactive reagents, we have mapped the topology of the protein. Using these data, we have experimentally validated a structural model of YqjA generated using evolutionary co-variance, which consists of an -helical bundle with two re-entrant hairpin loops reminiscent of several secondary active transporters. In addition, our cysteine accessibility data suggests that YqjA forms an oligomer wherein the protomers are arranged in a parallel fashion. This experimentally verified model of YqjA lays the foundation for future work in understanding the function and mechanism of this interesting and important family.

biochemistry↗