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.

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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