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Updated: Mar 17, 2026

Specificity Analysis of Protein Lysine Methyltransferases Using SPOT Peptide Arrays
Published on: November 29, 2014
Structural Insights into Substrate Recognition and Catalysis in Outer Membrane Protein B (OmpB) by Protein-lysine
Amila H Abeykoon1, Nicholas Noinaj2, Bok-Eum Choi1
1From the Department of Chemistry, Georgetown University, Washington, D. C. 20057.
Abstract:
Rickettsia belong to a family of Gram-negative obligate intracellular infectious bacteria that are the causative agents of typhus and spotted fever. Outer membrane protein B (OmpB) occurs in all rickettsial species, serves as a protective envelope, mediates host cell adhesion and invasion, and is a major immunodominant antigen. OmpBs from virulent strains contain multiple trimethylated lysine residues, whereas the avirulent strain contains mainly monomethyllysine. Two protein-lysine methyltransferases (PKMTs) that catalyze methylation of recombinant OmpB at multiple sites with varying sequences have been identified and overexpressed. PKMT1 catalyzes predominantly monomethylation, whereas PKMT2 catalyzes mainly trimethylation. Rickettsial PKMT1 and PKMT2 are unusual in that their primary substrate appears to be limited to OmpB, and both are capable of methylating multiple lysyl residues with broad sequence specificity. Here we report the crystal structures of PKMT1 from Rickettsia prowazekii and PKMT2 from Rickettsia typhi, both the apo form and in complex with its cofactor S-adenosylmethionine or S-adenosylhomocysteine. The structure of PKMT1 in complex with S-adenosylhomocysteine is solved to a resolution of 1.9 Å. Both enzymes are dimeric with each monomer containing an S-adenosylmethionine binding domain with a core Rossmann fold, a dimerization domain, a middle domain, a C-terminal domain, and a centrally located open cavity. Based on the crystal structures, residues involved in catalysis, cofactor binding, and substrate interactions were examined using site-directed mutagenesis followed by steady state kinetic analysis to ascertain their catalytic functions in solution. Together, our data reveal new structural and mechanistic insights into how rickettsial methyltransferases catalyze OmpB methylation.
Insights
Researchers elucidated the structures of Rickettsia methyltransferases (PKMT1 and PKMT2) that modify Outer membrane protein B (OmpB). These findings reveal insights into bacterial methylation mechanisms crucial for rickettsial virulence.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Rickettsia are Gram-negative bacteria causing typhus and spotted fever.
- Outer membrane protein B (OmpB) is critical for Rickettsia virulence, with methylation affecting its function.
- Specific protein-lysine methyltransferases (PKMTs) catalyze OmpB methylation, differing in their methylation patterns (mono- vs. trimethylation).
Purpose of the Study:
- To determine the crystal structures of Rickettsia PKMT1 and PKMT2.
- To investigate the structural basis for OmpB methylation by these enzymes.
- To elucidate the catalytic mechanisms and substrate interactions of rickettsial PKMTs.
Main Methods:
- X-ray crystallography was used to solve the structures of PKMT1 and PKMT2, both in apo form and complexed with S-adenosylmethionine or S-adenosylhomocysteine.
- Site-directed mutagenesis was employed to identify key residues involved in catalysis and cofactor binding.
- Steady-state kinetic analysis was performed to ascertain the catalytic functions of mutated enzymes.
Main Results:
- The dimeric structures of PKMT1 and PKMT2 were determined, revealing a conserved architecture with an S-adenosylmethionine binding domain.
- Structural analysis identified residues crucial for cofactor binding, catalysis, and substrate interaction.
- Mutagenesis and kinetic studies confirmed the roles of specific residues in the methylation process.
Conclusions:
- The crystal structures provide unprecedented insights into the structural and mechanistic features of Rickettsia PKMTs.
- These findings advance our understanding of how Rickettsia modifies OmpB, a key virulence factor.
- The study lays the groundwork for future investigations into rickettsial pathogenesis and potential therapeutic targets.
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