3BQ6
Crystal Structure of T. maritima Cobalamin-Independent Methionine Synthase complexed with Zn2+ (Monoclinic)
Summary for 3BQ6
| Entry DOI | 10.2210/pdb3bq6/pdb |
| Related | 3BOF 3BOL 3BQ5 |
| Descriptor | 5-methyltetrahydropteroyltriglutamate-homocysteine methyltransferase, ZINC ION (3 entities in total) |
| Functional Keywords | mete, transferase, tim barrel, homocysteine, zinc, zinc inversion, amino-acid biosynthesis, metal-binding, methionine biosynthesis, methyltransferase |
| Biological source | Thermotoga maritima |
| Total number of polymer chains | 2 |
| Total formula weight | 178951.35 |
| Authors | Pejchal, R.,Smith, J.L.,Ludwig, M.L. (deposition date: 2007-12-19, release date: 2008-03-11, Last modification date: 2023-08-30) |
| Primary citation | Koutmos, M.,Pejchal, R.,Bomer, T.M.,Matthews, R.G.,Smith, J.L.,Ludwig, M.L. Metal active site elasticity linked to activation of homocysteine in methionine synthases. Proc.Natl.Acad.Sci.Usa, 105:3286-3291, 2008 Cited by PubMed Abstract: Enzymes possessing catalytic zinc centers perform a variety of fundamental processes in nature, including methyl transfer to thiols. Cobalamin-independent (MetE) and cobalamin-dependent (MetH) methionine synthases are two such enzyme families. Although they perform the same net reaction, transfer of a methyl group from methyltetrahydrofolate to homocysteine (Hcy) to form methionine, they display markedly different catalytic strategies, modular organization, and active site zinc centers. Here we report crystal structures of zinc-replete MetE and MetH, both in the presence and absence of Hcy. Structural investigation of the catalytic zinc sites of these two methyltransferases reveals an unexpected inversion of zinc geometry upon binding of Hcy and displacement of an endogenous ligand in both enzymes. In both cases a significant movement of the zinc relative to the protein scaffold accompanies inversion. These structures provide new information on the activation of thiols by zinc-containing enzymes and have led us to propose a paradigm for the mechanism of action of the catalytic zinc sites in these and related methyltransferases. Specifically, zinc is mobile in the active sites of MetE and MetH, and its dynamic nature helps facilitate the active site conformational changes necessary for thiol activation and methyl transfer. PubMed: 18296644DOI: 10.1073/pnas.0709960105 PDB entries with the same primary citation |
| Experimental method | X-RAY DIFFRACTION (2.1 Å) |
Structure validation
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