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Bivins, M. M.

Publications and source records attributed to Bivins, M. M..

2 recordsLinked to original sources

Energetic coupling of an active site residue in penicillin-binding protein 2 from Neisseria gonorrhoeae with a resistance-associated conformational switch in the β3-β4 loop

Mosaic penA alleles encoding highly mutated variants of penicillin-binding protein 2 (PBP2) are the principal determinants of ceftriaxone resistance in Neisseria gonorrhoeae. Resistance-associated mutations in PBP2 from the ceftriaxone-resistant strain H041 restrict formation of the inward conformation of the {beta}3-{beta}4 loop associated with efficient acylation, but how {beta}-lactam recognition is coupled to this conformational switch is unknown. Because the conserved active-site residue Tyr422 interacts with the R1 substituent of {beta}-lactams, we investigated its role in coupling ligand recognition and acylation activity. Mutation of Tyr422 to Ala lowered acylation rates by up to 120-fold for cefoperazone and piperacillin, whereas acylation rates of ceftriaxone increased 4-fold. Unexpectedly, the crystal structure of the Y422A mutant acylated by ceftriaxone revealed that the {beta}3-{beta}4 loop had adopted the inward, high-activity conformation, despite position 422 being spatially distant from the loop. Transformation experiments showed that cell viability requires a tyrosine at position 422, indicating the residue is essential for transpeptidase function. Together, these findings reveal an energetic coupling between an active-site residue in PBP2 and a conformational switch whose equilibrium is altered by resistance mutations. The previously observed higher activity of {beta}-lactams containing extended R1 groups is consistent with stronger interactions with Tyr422 that favor the conformational switch. Molecular modeling suggests that such groups enhance activity by mimicking the iso-Glu region of the pentapeptide substrate. Overall, we propose that access to the high-activity state of PBP2 where the {beta}3-{beta}4 loop is inward is regulated by interactions between Tyr422 and {beta}-lactam R1 groups, and that resistance mutations function by tilting the balance toward a lower activity state.

biochemistry↗

Antibiotic-resistance mutations in penicillin-binding protein 2 from the ceftriaxone-resistant Neisseria gonorrhoeae strain H041 strike a delicate balance between increasing resistance and maintaining transpeptidase activity

The mosaic penA allele (penA41) from H041, the most ceftriaxone-resistant Neisseria gonorrhoeae strain identified to date, encodes a variant of the essential Penicillin-Binding Protein 2 (PBP2) with 60 amino acid mutations compared to PBP2 from the antimicrobial-susceptible strain, FA19. Based on previous work from our lab and others, we identified a minimal set of 10 mutations that, when introduced into the {beta}-lactam antibiotic-susceptible penA allele from FA19 (penA19), confers two-thirds of the ceftriaxone and cefixime resistance compared to the penA41 allele. Three mutations (A311V, I312M, and V316P) are in the 2 helix of PBP2 containing the catalytic serine (Ser310), two (F504L and N512Y) are in the 3-4 loop that is important in binding and acylation, and one (G545S) interacts with conserved amino acids in the active site. The seventh mutation, T483S, confers substantial resistance to ceftriaxone within the minimal mutant set but requires the presence of three epistatic mutations located on the other side of the protein that do not alter resistance on their own yet are necessary to retain essential transpeptidase activity. These epistatic mutations change the backbone dihedral angles at position-447, which may increase flexibility of the enzyme and help restore essential transpeptidation. Our results highlight the complex balance necessary for evolving cephalosporin resistance while also retaining sufficient transpeptidase function in PBP2. Author SummaryIn this study, we set out to understand how Neisseria gonorrhoeae, the bacterium that causes gonorrhea, is able to resist the last remaining recommended antibiotic, ceftriaxone. Gonorrhea is a common sexually transmitted infection worldwide, and rising resistance threatens to make it untreatable. We focused on penicillin-binding protein 2 (PBP2), which is essential for the bacteriums survival and is the lethal target of ceftriaxone. By incorporating a subset of the 60 PBP2 mutations found in a highly resistant strain into PBP2 from an antibiotic-susceptible strain, we discovered that resistance evolved from a combination of mutations that work together to directly reduce the capacity of ceftriaxone to inactivate the protein and others that act as "supporting" mutations to keep the protein functional despite the presence of the resistance mutations. Our study highlights how N. gonorrhoeae successfully negotiates the delicate balance between resistance and function to escape the lethal action of antibiotics.

microbiology↗