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Substrate specificities and structure-activity relationships for acylation of antibiotics catalyzed by kanamycin
Abstract:
Antibiotic resistance caused by the presence of the plasmid pMH67 is mediated by the aminoglycoside acetyltransferase AAC(6')-4, also known as kanamycin acetyltransferase. Bacteria harboring the plasmid are resistant to the kanomycins plus a broad range of other deoxystreptamine-containing aminoglycosides but not to the gentamicins XK62-2 and C1 which are substituted at the 6'-position. Substrate specificity studies on the purified enzyme, however, now show that the enzyme acetylates an even broader range of aminoglycosides, including the gentamicins XK62-2 and C1. The enzyme also accepts several acyl-CoA esters, which differ in nucleotide as well as in acyl chain length. Application of the method of analysis of structure-activity data developed earlier for gentamicin acetyltransferase [Williams, J. W., & Northrop, D. B. (1978) J. Biol. Chem. 253, 5908-5914] to the kinetic data obtained for AAC(6')-4 shows that the turnover of the acylation reaction is limited by catalysis and not by the rate of release of either the acetylated antibiotic or CoA. Most structural changes in aminoglycosides cause changes in rates of release, and only drastic changes, near the 6'-amino group, affect catalysis. The structural requirements on aminoglycosides for enzymatic activity run parallel to the structural requirements for antibacterial activity.
Insights
The aminoglycoside acetyltransferase AAC(6')-4 enzyme acetylates a broad range of antibiotics, including gentamicins. Its structural requirements for enzymatic activity align with those for antibacterial activity, impacting antibiotic resistance.
Area of Science:
- Microbiology
- Biochemistry
- Molecular Biology
Background:
- Plasmid pMH67 confers antibiotic resistance via aminoglycoside acetyltransferase AAC(6")-4.
- Bacteria with pMH67 are resistant to kanamycin and other aminoglycosides, but not gentamicins XK62-2 and C1.
Purpose of the Study:
- To investigate the substrate specificity of AAC(6")-4.
- To determine the kinetic properties and structure-activity relationships of AAC(6")-4.
Main Methods:
- Purification of the AAC(6")-4 enzyme.
- Enzyme kinetics studies using various aminoglycosides and acyl-CoA esters.
- Analysis of structure-activity data using established methods.
Main Results:
- AAC(6")-4 acetylates a broader range of aminoglycosides than previously known, including gentamicins XK62-2 and C1.
- The enzyme accepts acyl-CoA esters with varying nucleotide and acyl chain lengths.
- Enzyme turnover is limited by catalysis, not product release.
- Structural changes in aminoglycosides primarily affect release rates, except for drastic changes near the 6"-amino group which impact catalysis.
Conclusions:
- The structural requirements for AAC(6")-4 enzymatic activity mirror those for antibacterial activity.
- Understanding these structure-activity relationships is crucial for addressing antibiotic resistance mediated by AAC(6")-4.