Structure-function analysis of the Escherichia coli β-barrel assembly enhancing protease BepA suggests a role for a self-inhibitory state
Bryant, J.; Cadby, I. T.; Chong, Z.-S.; Sevastsyanovich, Y.; Morris, F.; Cunningham, A. F.; Kritikos, G.; Meek, R. W.; Banzhaf, M.; Chng, S.-S.; Henderson, I.; Lovering, A. L.
Show abstract
The asymmetric Gram-negative outer membrane (OM) is the first line of defence for the bacteria against environmental insults and attack by antimicrobials. The key component of the OM barrier is the surface exposed lipopolysaccharide, which is transported to the surface by the essential lipopolysaccharide transport (Lpt) system. Correct folding of the Lpt system OM component, LptD, is essential and is regulated by a periplasmic metalloprotease, BepA. Here we present the crystal structure of BepA, solved to a resolution of 1.9 [A]. Our structure comprises the zinc-bound m48 protease domain and a tetratricopeptide repeat (TPR) domain, consisting of four 2-helix TPR motifs and four non-TPR helices, leading to a nautilus-like shape in which the TPR repeats cup the protease domain. Using targeted mutagenesis approaches, we demonstrate that the protein is auto-regulated by the active-site plug. Further to this we reveal that mutation of a negative pocket, formed at the interface between the m48 and TPR domains, impairs BepA activity suggesting the pocket as a possible substrate binding site. We also identify a potential protein interaction site within the TPR cavity as being important for BepA function. Lastly, we provide evidence to show that increased antibiotic susceptibility in the absence of correctly functioning BepA occurs through disruption of OM lipid asymmetry, leading to reduced barrier function and increased cell permeability.
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