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Zinc-thiolate intermediate in catalysis of methyl group transfer in Methanosarcina barkeri
- Source :
- Biochemistry. 40(43)
- Publication Year :
- 2001
-
Abstract
- Methyl group transfer reactions are essential in methane-forming pathways in all methanogens. The involvement of zinc in catalysis of methyl group transfer was studied for the methyltransferase enzyme MT2-A important for methanogenesis in Methanosarcina barkeri growing on methylamines. Zinc was shown to be required for MT2-A activity and was tightly bound by the enzyme with an apparent stability constant of 10(13.7) at pH 7.2. Oxidation was a factor influencing activity and metal stoichiometry of purified MT2-A preparations. Methods were developed to produce inactive apo MT2-A and to restore full activity with stoichiometric reincorporation of Zn(2+). Reconstitution with Co(2+) yielded an enzyme with 16-fold higher specific activity. Cysteine thiolate coordination in Co(2+)-MT2-A was indicated by high absorptivity in the 300-400 nm charge transfer region, consistent with more than one thiolate ligand at the metal center. Approximate tetrahedral geometry was indicated by strong d-d transition absorbance centered at 622 nm. EXAFS analyses of Zn(2+)-MT2-A revealed 2S + 2N/O coordination with evidence for involvement of histidine. Interaction with the substrate CoM (2-mercaptoethanesulfonic acid) resulted in replacement of the second N/O group with S, indicating direct coordination of the CoM thiolate. UV-visible spectroscopy of Co(2+)-MT2-A in the presence of CoM also showed formation of an additional metal-thiolate bond. Binding of CoM over the range of pH 6.2-7.7 obeyed a model in which metal-thiolate formation occurs separately from H(+) release from the enzyme-substrate complex. Proton release to the solvent takes place from a group with apparent pK(a) of 6.4, and no evidence for metal-thiolate protonation was found. It was determined that substrate metal-thiolate bond formation occurs with a Delta G degrees ' of -6.7 kcal/mol and is a major thermodynamic driving force in the overall process of methyl group transfer.
- Subjects :
- Time Factors
Inorganic chemistry
ved/biology.organism_classification_rank.species
chemistry.chemical_element
Protonation
Zinc
Biochemistry
Medicinal chemistry
Catalysis
chemistry.chemical_compound
Escherichia coli
Sulfhydryl Compounds
Histidine
Mesna
biology
Ligand
ved/biology
X-Rays
Methanosarcina
Cobalt
Hydrogen Peroxide
Methyltransferases
Hydrogen-Ion Concentration
biology.organism_classification
Kinetics
chemistry
Stability constants of complexes
Metals
Spectrophotometry
Mutagenesis, Site-Directed
Thermodynamics
Methanosarcina barkeri
Electrophoresis, Polyacrylamide Gel
Methyl group
Protein Binding
Subjects
Details
- ISSN :
- 00062960
- Volume :
- 40
- Issue :
- 43
- Database :
- OpenAIRE
- Journal :
- Biochemistry
- Accession number :
- edsair.doi.dedup.....d5fb0b8558f7913b87bec3a8afe6a3b8