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Published on: May 25, 2016
Coenzyme M biosynthesis in bacteria involves phosphate elimination by a functionally distinct member of the
Sarah E Partovi1, Florence Mus2, Andrew E Gutknecht1
1From the Department of Chemistry and Biochemistry, Montana State University, Bozeman, Montana 59717 and.
Abstract:
For nearly 30 years, coenzyme M (CoM) was assumed to be present solely in methanogenic archaea. In the late 1990s, CoM was reported to play a role in bacterial propene metabolism, but no biosynthetic pathway for CoM has yet been identified in bacteria. Here, using bioinformatics and proteomic approaches in the metabolically versatile bacterium Xanthobacter autotrophicus Py2, we identified four putative CoM biosynthetic enzymes encoded by the xcbB1, C1, D1, and E1 genes. Only XcbB1 was homologous to a known CoM biosynthetic enzyme (ComA), indicating that CoM biosynthesis in bacteria involves enzymes different from those in archaea. We verified that the ComA homolog produces phosphosulfolactate from phosphoenolpyruvate (PEP), demonstrating that bacterial CoM biosynthesis is initiated similarly as the phosphoenolpyruvate-dependent methanogenic archaeal pathway. The bioinformatics analysis revealed that XcbC1 and D1 are members of the aspartase/fumarase superfamily (AFS) and that XcbE1 is a pyridoxal 5'-phosphate-containing enzyme with homology to d-cysteine desulfhydrases. Known AFS members catalyze β-elimination reactions of succinyl-containing substrates, yielding fumarate as the common unsaturated elimination product. Unexpectedly, we found that XcbC1 catalyzes β-elimination on phosphosulfolactate, yielding inorganic phosphate and a novel metabolite, sulfoacrylic acid. Phosphate-releasing β-elimination reactions are unprecedented among the AFS, indicating that XcbC1 is an unusual phosphatase. Direct demonstration of phosphosulfolactate synthase activity for XcbB1 and phosphate β-elimination activity for XcbC1 strengthened their hypothetical assignment to a CoM biosynthetic pathway and suggested functions also for XcbD1 and E1. Our results represent a critical first step toward elucidating the CoM pathway in bacteria.
Insights
Coenzyme M (CoM) biosynthesis in bacteria is elucidated, revealing novel enzymes distinct from archaea. This study identifies key bacterial enzymes initiating CoM production via a unique pathway.
Area of Science:
- Biochemistry
- Microbiology
- Metabolic Engineering
Background:
- Coenzyme M (CoM) was historically believed to exist only in methanogenic archaea.
- The role of CoM in bacterial propene metabolism was suggested, but its biosynthetic pathway in bacteria remained unknown.
- This knowledge gap hindered understanding of microbial metabolic diversity.
Purpose of the Study:
- To identify and characterize the enzymes involved in bacterial coenzyme M (CoM) biosynthesis.
- To elucidate the novel CoM biosynthetic pathway in the bacterium *Xanthobacter autotrophicus* Py2.
- To compare bacterial CoM biosynthesis with the known archaeal pathway.
Main Methods:
- Bioinformatics analysis to identify putative CoM biosynthetic genes (*xcbB1*, *C1*, *D1*, *E1*).
- Proteomic approaches to validate enzyme functions in *Xanthobacter autotrophicus* Py2.
- Enzymatic assays to determine substrate specificity and reaction products.
Main Results:
- Four novel putative CoM biosynthetic enzymes (XcbB1, XcbC1, XcbD1, XcbE1) were identified in *Xanthobacter autotrophicus* Py2.
- XcbB1 demonstrated phosphosulfolactate synthase activity, initiating the pathway from phosphoenolpyruvate (PEP).
- XcbC1 exhibited unprecedented phosphate-releasing β-elimination activity on phosphosulfolactate, yielding sulfoacrylic acid.
Conclusions:
- Bacterial CoM biosynthesis utilizes enzymes distinct from those in archaea, with XcbB1 and XcbC1 playing crucial roles.
- The identified pathway represents a significant departure from known CoM biosynthetic routes, particularly XcbC1's novel enzymatic activity.
- This study provides the foundational understanding for the complete elucidation of the CoM pathway in bacteria.
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