Electron transfer ferredoxins with unusual cluster binding motifs support secondary metabolism in many bacteria

dc.contributor.authorChild, S.A.
dc.contributor.authorBradley, J.M.
dc.contributor.authorPukala, T.L.
dc.contributor.authorSvistunenko, D.A.
dc.contributor.authorLe Brun, N.E.
dc.contributor.authorBell, S.G.
dc.date.issued2018
dc.description.abstractThe proteins responsible for controlling electron transfer in bacterial secondary metabolism are not always known or characterised. Here we demonstrate that many bacteria contain a set of unfamiliar ferredoxin encoding genes which are associated with those of cytochrome P450 (CYP) monooxygenases and as such are involved in anabolic and catabolic metabolism. The model organism Mycobacterium marinum M contains eleven of these genes which encode [3Fe-4S] or [4Fe-4S] single cluster containing ferredoxins but which have unusual iron-sulfur cluster binding motif sequences, CXX?XXC(X) n CP, where '?' indicates a variable amino acid residue. Rather than a cysteine residue, which is highly conserved in [4Fe-4S] clusters, or alanine or glycine residues, which are common in [3Fe-4S] ferredoxins, these genes encode at this position histidine, asparagine, tyrosine, serine, threonine or phenylalanine. We have purified, characterised and reconstituted the activity of several of these CYP/electron transfer partner systems and show that all those examined contain a [3Fe-4S] cluster. Furthermore, the ferredoxin used and the identity of the variable motif residue in these proteins affects the functionality of the monooxygenase system and has a significant influence on the redox properties of the ferredoxins. Similar ferredoxin encoding genes were identified across Mycobacterium species, including in the pathogenic M. tuberculosis and M. ulcerans, as well as in a wide range of other bacteria such as Rhodococcus and Streptomyces. In the majority of instances these are associated with CYP genes. These ferredoxin systems are important in controlling electron transfer across bacterial secondary metabolite production processes which include antibiotic and pigment formation among others.
dc.description.statementofresponsibilityStella A. Child, Justin M. Bradley, Tara L. Pukala, Dimitri A. Svistunenko, Nick E. Le Brun and Stephen G. Bell
dc.identifier.citationChemical Science, 2018; 9(41):7948-7957
dc.identifier.doi10.1039/c8sc01286e
dc.identifier.issn2041-6520
dc.identifier.issn2041-6539
dc.identifier.orcidPukala, T.L. [0000-0001-7391-1436]
dc.identifier.orcidBell, S.G. [0000-0002-7457-9727]
dc.identifier.urihttp://hdl.handle.net/2440/117420
dc.language.isoen
dc.publisherRoyal Society of Chemistry
dc.relation.granthttp://purl.org/au-research/grants/arc/FT140100355
dc.rightsCreative Commons BY license. All publication charges for this article have been paid for by the Royal Society of Chemistry. This journal is © The Royal Society of Chemistry 2018
dc.source.urihttps://doi.org/10.1039/c8sc01286e
dc.titleElectron transfer ferredoxins with unusual cluster binding motifs support secondary metabolism in many bacteria
dc.typeJournal article
pubs.publication-statusPublished

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