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Expected and Unexpected Products from the Biochemical Oxidation of Bacterial Alkylquinolones with CYP4F11. | LitMetric

Expected and Unexpected Products from the Biochemical Oxidation of Bacterial Alkylquinolones with CYP4F11.

J Nat Prod

School of Pharmaceutical Science and Technology, Tianjin University, 92 Weijin Road, Tianjin 300072, People's Republic of China.

Published: November 2023

AI Article Synopsis

  • 2-Alkylquinolones are natural products from specific bacteria that help regulate communication among bacteria, known as quorum sensing.
  • These compounds were transformed using a human enzyme, producing various derivatives depending on the length of their alkyl chains, with eight or nine carbons yielding the best results.
  • Oxidation of the alkyl chain decreased the antimicrobial and antibiofilm properties of the quinolones, and the study also found that certain yeast enzymes contributed to the formation of additional ester products.

Article Abstract

2-Alkylquinolones are a class of microbial natural products primarily produced in the and genera that play a key role in modulating quorum sensing. Bacterial alkylquinolones were synthesized and then subjected to oxidative biotransformation using human cytochrome P450 enzyme CYP4F11, heterologously expressed in the fission yeast . This yielded a range of hydroxylated and carboxylic acid derivatives which had undergone ω-oxidation of the 2-alkyl chain, the structures of which were determined by analysis of NMR and MS data. Oxidation efficiency depended on chain length, with a chain length of eight or nine carbon atoms proving optimal for high yields. Homology modeling suggested that Glu233 was relevant for binding, due to the formation of a hydrogen bond from the quinolone nitrogen to Glu233, and in this position only the longer alkyl chains could come close enough to the heme moiety for effective oxidation. In addition to the direct oxidation products, a number of esters were also isolated, which was attributed to the action of endogenous yeast enzymes on the newly formed ω-hydroxy-alkylquinolones. ω-Oxidation of the alkyl chain significantly reduced the antimicrobial and antibiofilm activity of the quinolones.

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Source
http://dx.doi.org/10.1021/acs.jnatprod.3c00689DOI Listing

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