Modified 3-oxoadipate pathway for the biodegradation of methylaromatics in Pseudomonas reinekei MT1

J Bacteriol. 2010 Mar;192(6):1543-52. doi: 10.1128/JB.01208-09. Epub 2010 Jan 8.

Abstract

Catechols are central intermediates in the metabolism of aromatic compounds. Degradation of 4-methylcatechol via intradiol cleavage usually leads to the formation of 4-methylmuconolactone (4-ML) as a dead-end metabolite. Only a few microorganisms are known to mineralize 4-ML. The mml gene cluster of Pseudomonas reinekei MT1, which encodes enzymes involved in the metabolism of 4-ML, is shown here to encode 10 genes found in a 9.4-kb chromosomal region. Reverse transcription assays revealed that these genes form a single operon, where their expression is controlled by two promoters. Promoter fusion assays identified 4-methyl-3-oxoadipate as an inducer. Mineralization of 4-ML is initiated by the 4-methylmuconolactone methylisomerase encoded by mmlI. This reaction produces 3-ML and is followed by a rearrangement of the double bond catalyzed by the methylmuconolactone isomerase encoded by mmlJ. Deletion of mmlL, encoding a protein of the metallo-beta-lactamase superfamily, resulted in a loss of the capability of the strain MT1 to open the lactone ring, suggesting its function as a 4-methyl-3-oxoadipate enol-lactone hydrolase. Further metabolism can be assumed to occur by analogy with reactions known from the 3-oxoadipate pathway. mmlF and mmlG probably encode a 4-methyl-3-oxoadipyl-coenzyme A (CoA) transferase, and the mmlC gene product functions as a thiolase, transforming 4-methyl-3-oxoadipyl-CoA into methylsuccinyl-CoA and acetyl-CoA, as indicated by the accumulation of 4-methyl-3-oxoadipate in the respective deletion mutant. Accumulation of methylsuccinate by an mmlK deletion mutant indicates that the encoded acetyl-CoA hydrolase/transferase is crucial for channeling methylsuccinate into the central metabolism.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adipates / chemistry
  • Adipates / metabolism*
  • Bacterial Proteins / genetics
  • Bacterial Proteins / metabolism
  • Biodegradation, Environmental
  • Culture Media / chemistry
  • Gene Deletion
  • Gene Expression Regulation, Bacterial / physiology
  • Hydrocarbons, Aromatic / metabolism*
  • Isomerases / genetics
  • Isomerases / metabolism
  • Lactones / chemistry
  • Lactones / metabolism*
  • Molecular Structure
  • Open Reading Frames
  • Pseudomonas / metabolism*
  • Salicylates / chemistry
  • Salicylates / metabolism

Substances

  • Adipates
  • Bacterial Proteins
  • Culture Media
  • Hydrocarbons, Aromatic
  • Lactones
  • Salicylates
  • 3-oxoadipic acid
  • Isomerases
  • methyl salicylate