Literature DB >> 16347070

Degradation of Pyridine by Micrococcus luteus Isolated from Soil.

G K Sims1, L E Sommers, A Konopka.   

Abstract

An organism capable of growth on pyridine was isolated from soil by enrichment culture techniques and identified as Micrococcus luteus. The organism oxidized pyridine for energy and released N contained in the pyridine ring as ammonium. The organism could not grow on mono- or disubstituted pyridinecarboxylic acids or hydroxy-, chloro-, amino-, or methylpyridines. Cell extracts of M. luteus could not degrade pyridine, 2-, 3-, or 4-hydroxypyridines or 2,3-dihydroxypyridine, regardless of added cofactors or cell particulate fraction. The organism had a NAD-linked succinate-semialdehyde dehydrogenase which was induced by pyridine. Cell extracts of M. luteus had constitutive amidase activity, and washed cells degraded formate and formamide without a lag. These data are consistent with a previously reported pathway for pyridine metabolism by species of Bacillus, Brevibacterium, and Corynebacterium. Cells of M. luteus were permeable to pyridinecarboxylic acids, monohydroxypyridines, 2,3-dihydroxypyridine, and monoamino- and methylpyridines. The results provide new evidence that the metabolism of pyridine by microorganisms does not require initial hydroxylation of the ring and that permeability barriers do not account for the extremely limited range of substrate isomers used by pyridine degraders.

Entities:  

Year:  1986        PMID: 16347070      PMCID: PMC238995          DOI: 10.1128/aem.51.5.963-968.1986

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  9 in total

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8.  Microbial decomposition of pyridine.

Authors:  O P Shukla
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Authors:  A Jori; D Calamari; F Cattabeni; A Di Domenico; C L Galli; E Galli; V Silano
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  9 in total
  21 in total

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2.  Microbial Degradation of Pyridine: a Complete Pathway in Arthrobacter sp. Strain 68b Deciphered.

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4.  Influence of a supplementary carbon source on biodegradation of pyridine by freely suspended and immobilized Pimelobacter sp..

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5.  Anaerobic and aerobic degradation of pyridine by a newly isolated denitrifying bacterium.

Authors:  S K Rhee; G M Lee; J H Yoon; Y H Park; H S Bae; S T Lee
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10.  Coaggregation by the freshwater bacterium Sphingomonas natatoria alters dual-species biofilm formation.

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