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Deciphering the role of recurrent FAD-dependent enzymes in bacterial phosphonate catabolism.
Zangelmi, Erika; Ruffolo, Francesca; Dinhof, Tamara; Gerdol, Marco; Malatesta, Marco; Chin, Jason P; Rivetti, Claudio; Secchi, Andrea; Pallitsch, Katharina; Peracchi, Alessio.
Affiliation
  • Zangelmi E; Department of Chemistry, Life Sciences and Environmental Sustainability, University of Parma, 43124 Parma, Italy.
  • Ruffolo F; Department of Chemistry, Life Sciences and Environmental Sustainability, University of Parma, 43124 Parma, Italy.
  • Dinhof T; Institute of Organic Chemistry, Faculty of Chemistry, University of Vienna, 1090 Vienna, Austria.
  • Gerdol M; Vienna Doctoral School in Chemistry (DoSChem), University of Vienna, 1090 Vienna, Austria.
  • Malatesta M; Department of Life Sciences, University of Trieste, Via Giorgieri 5, 34127 Trieste, Italy.
  • Chin JP; Department of Chemistry, Life Sciences and Environmental Sustainability, University of Parma, 43124 Parma, Italy.
  • Rivetti C; School of Biological Sciences and Institute for Global Food Security, Queen's University Belfast, 19 Chlorine Gardens, BT9 5DL Belfast, UK.
  • Secchi A; Department of Chemistry, Life Sciences and Environmental Sustainability, University of Parma, 43124 Parma, Italy.
  • Pallitsch K; Department of Chemistry, Life Sciences and Environmental Sustainability, University of Parma, 43124 Parma, Italy.
  • Peracchi A; Institute of Organic Chemistry, Faculty of Chemistry, University of Vienna, 1090 Vienna, Austria.
iScience ; 26(11): 108108, 2023 Nov 17.
Article in En | MEDLINE | ID: mdl-37876809
ABSTRACT
Phosphonates-compounds containing a direct C-P bond-represent an important source of phosphorus in some environments. The most common natural phosphonate is 2-aminoethylphosphonate (AEP). Many bacteria can break AEP down through specialized "hydrolytic" pathways, which start with the conversion of AEP into phosphonoacetaldehyde (PAA), catalyzed by the transaminase PhnW. However, the substrate scope of these pathways is very narrow, as PhnW cannot process other common AEP-related phosphonates, notably N-methyl AEP (M1AEP). Here, we describe a heterogeneous group of FAD-dependent oxidoreductases that efficiently oxidize M1AEP to directly generate PAA, thus expanding the versatility and usefulness of the hydrolytic AEP degradation pathways. Furthermore, some of these enzymes can also efficiently oxidize plain AEP. By doing so, they surrogate the role of PhnW in organisms that do not possess the transaminase and create novel versions of the AEP degradation pathways in which PAA is generated solely by oxidative deamination.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: IScience Year: 2023 Document type: Article Affiliation country: Italia

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: IScience Year: 2023 Document type: Article Affiliation country: Italia