AI Article Synopsis

  • AmpC β-lactamase contributes significantly to antibiotic resistance, particularly through mutations that enhance its effectiveness against certain β-lactam antibiotics while reducing their inhibition by β-lactamase inhibitors (BLIs).
  • Mutations like E247K, G183D, T96I, and ΔG229-E247 increase AmpC’s flexibility and catalytic efficiency, allowing for faster breakdown of specific antibiotics like ceftolozane and ceftazidime.
  • Understanding these mutations could help in developing new β-lactams and BLIs that are less prone to resistance mechanisms.

Article Abstract

is a leading cause of nosocomial infections worldwide and notorious for its broad-spectrum resistance to antibiotics. A key mechanism that provides extensive resistance to β-lactam antibiotics is the inducible expression of AmpC β-lactamase. Recently, a number of clinical isolates expressing mutated forms of AmpC have been found to be clinically resistant to the antipseudomonal β-lactam-β-lactamase inhibitor (BLI) combinations ceftolozane-tazobactam and ceftazidime-avibactam. Here, we compare the enzymatic activity of wild-type (WT) AmpC from PAO1 to those of four of these reported AmpC mutants, bearing mutations E247K (a change of E to K at position 247), G183D, T96I, and ΔG229-E247 (a deletion from position 229 to 247), to gain detailed insights into how these mutations allow the circumvention of these clinically vital antibiotic-inhibitor combinations. We found that these mutations exert a 2-fold effect on the catalytic cycle of AmpC. First, they reduce the stability of the enzyme, thereby increasing its flexibility. This appears to increase the rate of deacylation of the enzyme-bound β-lactam, resulting in greater catalytic efficiencies toward ceftolozane and ceftazidime. Second, these mutations reduce the affinity of avibactam for AmpC by increasing the apparent activation barrier of the enzyme acylation step. This does not influence the catalytic turnover of ceftolozane and ceftazidime significantly, as deacylation is the rate-limiting step for the breakdown of these antibiotic substrates. It is remarkable that these mutations enhance the catalytic efficiency of AmpC toward ceftolozane and ceftazidime while simultaneously reducing susceptibility to inhibition by avibactam. Knowledge gained from the molecular analysis of these and other AmpC resistance mutants will, we believe, aid in the design of β-lactams and BLIs with reduced susceptibility to mutational resistance.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7449160PMC
http://dx.doi.org/10.1128/AAC.00894-20DOI Listing

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