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A novel and evolutionarily distinct flavoprotein monooxygenase drives skatole degradation in Rhodococcus

作者:Nan Meng, Genxiu Li, Jiaxin Zhang, Jing Zhu, Xutong Kang, Jiahao Duan, Qiao Ma · 发表于:Applied and Environmental Microbiology · 年份:2026 · DOI:10.1128/aem.00228-26 · 被引用次数:3 · 研究领域:Microbial bioremediation and biosurfactants、Enzyme-mediated dye degradation、Pesticide and Herbicide Environmental Studies

ABSTRACT Skatole (3-methylindole), a persistent and toxic N -heterocyclic aromatic pollutant, poses significant bioremediation challenges due to poorly defined biodegradation processes. This study systematically investigated the genetic determinants and metabolic mechanisms of skatole degradation in the environmentally versatile Gram-positive genus Rhodococcus . We demonstrated that skatole degradation was a broadly conserved trait across diverse Rhodococcus species, including R. aetherivorans , R. pyridinivorans , R. ruber , and R. qingshengii . Genomic and functional analyses uncovered a novel flavoprotein monooxygenase (FPMO) SkaA as the initial catalyst for skatole catabolism. Heterologous expression in Escherichia coli confirmed SkaA’s essential catalytic role, with high-resolution liquid chromatography-tandem mass spectrometry identifying the key products 3-methyloxindole and 3-hydroxy-3-methyloxindole. Distribution studies revealed SkaA homologs predominantly in Actinobacteria, particularly Nocardia and Rhodococcus , indicating metabolic capacity for skatole transformation within this phylum. Notably, Rhodococcus strains lacking the skaA gene also retained skatole degradation activity, implying the existence of alternative genetic determinants. Crucially, phylogenetic analysis positioned SkaA as a distinct subclass within Group E FPMOs, exhibiting ≤40% sequence identity to reported styrene/indole oxygenases. The phylogenetic segregation of skatole, indole, and styrene ...