| Literature DB >> 30202483 |
Abstract
Because of nicotine'sEntities:
Keywords: biodegradation; enzyme mechanism; flavoprotein; metabolic pathway; nicotine
Year: 2018 PMID: 30202483 PMCID: PMC6122326 DOI: 10.3762/bjoc.14.204
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Nicotine catabolism in A. nicotinovorans. The respective gene names are given in parentheses.
Scheme 2Hydroxylation of nicotine by the molybdopterin cofactor of nicotine dehydrogenase.
Figure 1Overlay of the structure of LHNO (blue, pdb file 3NG7) with that of human MAO B (orange, pdb file 2FXU). The bound 6-hydroxynicotine is shown with green carbons.
Scheme 3Proposed mechanism of LHNO [21].
Scheme 4Mechanism of LHNO.
Figure 2Overlay of the structures of DHNO (blue, pdb file 2bvf) and tirandamycin oxidase (orange, pdb file 2y3s), another member of the p-cresol methylhydroxylase/vanillyl oxidase family. The carbon atoms of tirandamycin are in green.
Scheme 5Proposed mechanism for DHNO [27].
Scheme 6Mechanism of 2,6-dihydroxypseudooxynicotine hydrolase [37].
Figure 3Overlay of structures of salicylate hydroxylase (orange, pdb file 5evy) and 2,3-dihydroxypyridine 3-hydroxylase (blue, pdb file 2vou). The salicylate bound to the latter is shown in green.
Scheme 7Mechanism of 2,3-dihydroxypyridine 3-hydroxylase [42].
Scheme 8The pyrrolidine pathway for nicotine degradation by pseudomonads. The gene names for P. putida S16 (black), P. putida J5 (red), and Pseudomonas sp. HZN6 (blue) are in parentheses.
Figure 4Overlay of the structure of LHNO (magenta, pdb file 3NG7) with that of NicA2 (magenta, pdb file 5ttj) B (green, pdb file 2FXU). The bound 6-hydroxynicotine is shown with green carbons.
Scheme 9The pseudooxynicotine amine oxidase reaction.
Scheme 10Mechanism of HspB [59].
Scheme 11Hybrid pyridine/pyrrolidine pathway for nicotine metabolism in Agrobacter tumefaciens S33 (black), Ochrobactrum sp. SJY1 (red), and Sphingomonas melonis Ty (blue).