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1.
Commun Biol ; 6(1): 254, 2023 03 10.
Article in English | MEDLINE | ID: mdl-36894667

ABSTRACT

YgfB-mediated ß-lactam resistance was recently identified in multi drug resistant Pseudomonas aeruginosa. We show that YgfB upregulates expression of the ß-lactamase AmpC by repressing the function of the regulator of the programmed cell death pathway AlpA. In response to DNA damage, the antiterminator AlpA induces expression of the alpBCDE autolysis genes and of the peptidoglycan amidase AmpDh3. YgfB interacts with AlpA and represses the ampDh3 expression. Thus, YgfB indirectly prevents AmpDh3 from reducing the levels of cell wall-derived 1,6-anhydro-N-acetylmuramyl-peptides, required to induce the transcriptional activator AmpR in promoting the ampC expression and ß-lactam resistance. Ciprofloxacin-mediated DNA damage induces AlpA-dependent production of AmpDh3 as previously shown, which should reduce ß-lactam resistance. YgfB, however, counteracts the ß-lactam enhancing activity of ciprofloxacin by repressing ampDh3 expression and lowering the benefits of this drug combination. Altogether, YgfB represents an additional player in the complex regulatory network of AmpC regulation.


Subject(s)
Pseudomonas aeruginosa , beta-Lactam Resistance , Pseudomonas aeruginosa/genetics , beta-Lactam Resistance/genetics , Ciprofloxacin/pharmacology , beta-Lactams/pharmacology
2.
Mol Microbiol ; 108(6): 614-626, 2018 06.
Article in English | MEDLINE | ID: mdl-29645305

ABSTRACT

Xenobiotic phthalates are industrially produced on the annual million ton scale. The oxygen-independent enzymatic reactions involved in anaerobic phthalate degradation have only recently been elucidated. In vitro assays suggested that phthalate is first activated to phthaloyl-CoA followed by decarboxylation to benzoyl-CoA. Here, we report the heterologous production and characterization of the enzyme initiating anaerobic phthalate degradation from 'Aromatoleum aromaticum': a highly specific succinyl-CoA:phthalate CoA transferase (SPT, class III CoA transferase). Phthaloyl-CoA formed by SPT accumulated only to sub-micromolar concentrations due to the extreme lability of the product towards intramolecular substitution with a half-life of around 7 min. Upon addition of excess phthaloyl-CoA decarboxylase (PCD), the combined activity of both enzymes was drastically shifted towards physiologically relevant benzoyl-CoA formation. In conclusion, a massive overproduction of PCD in phthalate-grown cells to concentrations >140 µM was observed that allowed for efficient phthaloyl-CoA conversion at concentrations 250-fold below the apparent Km -value of PCD. The results obtained provide insights into an only recently evolved xenobiotic degradation pathway where a massive cellular overproduction of PCD compensates for the formation of the probably most unstable CoA ester intermediate in biology.


Subject(s)
Coenzyme A/metabolism , Phthalic Acids/metabolism , Rhodocyclaceae/enzymology , Xenobiotics/metabolism , Anaerobiosis , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Kinetics , Phthalic Acids/chemistry , Phylogeny , Rhodocyclaceae/classification , Rhodocyclaceae/genetics , Rhodocyclaceae/metabolism
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