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Biochemistry|June 13, 1998
Structure of the bis(Mg2+)-ATP-oxalate complex of the rabbit muscle pyruvate kinase at 2.1 A resolution: ATP binding over a barrelT M Larsen, M M Benning, I Rayment, et al.Biochemistry|April 9, 1996
A carboxylate oxygen of the substrate bridges the magnesium ions at the active site of enolase: structure of the yeast enzyme complexed with the equilibrium mixture of 2-phosphoglycerate and phosphoenolpyruvate at 1.8 A resolutionT M Larsen, J E Wedekind, I Rayment, et al.The Journal of Biological Chemistry|October 5, 1991
The molecular structure of the high potential iron-sulfur protein isolated from Ectothiorhodospira halophila determined at 2.5-A resolutionD R Breiter, T E Meyer, I Rayment, et al.The Journal of Biological Chemistry|November 5, 1986
Crystallization of a high potential iron-sulfur protein from the halophilic phototrophic bacterium Ectothiorhodospira halophilaH M Holden, T E Meyer, M A Cusanovich, et al.The Journal of Biological Chemistry|April 17, 1999
The three-dimensional structure of a Tn5 transposase-related protein determined to 2.9-A resolutionD R Davies, L Mahnke Braam, W S Reznikoff, et al.Biochemistry|May 23, 1995
Three-dimensional structure of bacterial luciferase from Vibrio harveyi at 2.4 A resolutionA J Fisher, F M Raushel, T O Baldwin, et al.Nature|January 14, 1982
Polyoma virus capsid structure at 22.5 A resolutionI Rayment, T S Baker, D L Caspar, et al.Biochemistry|August 9, 1994
Chelation of serine 39 to Mg2+ latches a gate at the active site of enolase: structure of the bis(Mg2+) complex of yeast enolase and the intermediate analog phosphonoacetohydroxamate at 2.1-A resolutionJ E Wedekind, R R Poyner, G H Reed, et al.Science (New York, N.Y.)|July 7, 2000
Three-dimensional structure of the Tn5 synaptic complex transposition intermediateD R Davies, I Y Goryshin, W S Reznikoff, et al.Journal of Bacteriology|August 5, 2003
Residues C123 and D58 of the 2-methylisocitrate lyase (PrpB) enzyme of Salmonella enterica are essential for catalysisT L Grimek, H Holden, I Rayment, et al.Pageof 11