Penam sulfones and β-lactamase inhibition: SA2-13 and the importance of the C2 side chain length and composition.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 24454944.
- Also identified by DOI 10.1371/journal.pone.0085892 and PMC identifier 3894197.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
β-Lactamases are the major reason β-lactam resistance is seen in Gram-negative bacteria. To combat this resistance mechanism, β-lactamase inhibitors are currently being developed. Presently, there are only three that are in clinical use (clavulanate, sulbactam and tazobactam). In order to address this important medical need, we explored a new inhibition strategy that takes advantage of a long-lived inhibitory trans-enamine intermediate. SA2-13 was previously synthesized and shown to have a lower k(react) than tazobactam. We investigated here the importance of the carboxyl linker length and composition by synthesizing three analogs of SA2-13 (PSR-4-157, PSR-4-155, and PSR-3-226). All SA2-13 analogs yielded higher turnover numbers and k(react) compared to SA2-13. We next demonstrated using protein crystallography that increasing the linker length by one carbon allowed for better capture of a trans-enamine intermediate; in contrast, this trans-enamine intermediate did not occur when the C2 linker length was decreased by one carbon. If the linker was altered by both shortening it and changing the carboxyl moiety into a neutral amide moiety, the stable trans-enamine intermediate in wt SHV-1 did not form; this intermediate could only be observed when a deacylation deficient E166A variant was studied. We subsequently studied SA2-13 against a relatively recently discovered inhibitor-resistant (IR) variant of SHV-1, SHV K234R. Despite the alteration in the mechanism of resistance due to the K→R change in this variant, SA2-13 was effective at inhibiting this IR enzyme and formed a trans-enamine inhibitory intermediate similar to the intermediate seen in the wt SHV-1 structure. Taken together, our data reveals that the C2 side chain linker length and composition profoundly affect the formation of the trans-enamine intermediate of penam sulfones. We also show that the design of SA2-13 derivatives offers promise against IR SHV β-lactamases that possess the K234R substitution.
Medical subject headings
- Amino Acid Substitution
- Anti-Bacterial Agents
- Anti-Bacterial Agents/chemistry
- Bacterial Proteins
- Bacterial Proteins/antagonists & inhibitors
- Bacterial Proteins/chemistry
- Catalytic Domain
- Crystallography, X-Ray
- Heterocyclic Compounds, 2-Ring
- Heterocyclic Compounds, 2-Ring/chemistry
- Kinetics
- Models, Molecular
- Penicillanic Acid
- Penicillanic Acid/analogs & derivatives
- Penicillanic Acid/chemistry
- Protein Binding
- Structure-Activity Relationship
- Sulfones
- Sulfones/chemistry
- Tazobactam
- Thiazolidines
- Thiazolidines/chemistry
- beta-Lactam Resistance
- beta-Lactamase Inhibitors
- beta-Lactamases
- beta-Lactamases/chemistry
- beta-Lactamases/genetics