Abstract

Shifts in the sigmoidal kinetics of allosteric threonine deaminase promoted by isoleucine and valine binding control branched chain amino acid biosynthesis in Escherichia coli. A highly conserved alpha-helix in the C-terminal regulatory domain of the tetrameric enzyme was previously implicated in effector binding and feedback inhibition. Double (447, 451) and triple (447, 451, 454) alanine replacements for the conserved amino acids leucine 447, leucine 451, and leucine 454 in this region yield enzyme variants that show increased sigmoidality in steady-state kinetics, and which are less sensitive to the allosteric modifiers isoleucine and valine. Equilibrium binding studies using fluorescence, enzyme kinetic, and calorimetric approaches indicate that the enzyme variants possess reduced affinity for isoleucine and valine, and suggest that heterotropic ligands can bind to the same site to promote their different effects. The increase in sigmoidal kinetics for the mutants relative to wild-type threonine deaminase may be attributable to the elimination of L-threonine binding to the effector sites, which activates the wild-type enzyme. Enzyme kinetic data and isotherms for active site ligand binding to the mutants can be analyzed in terms of a simple two-state model to yield values for allosteric parameters that are consistent with previous estimates based on an expanded two-state model for homotropic cooperativity for threonine deaminase.

Highlights

  • Shifts in the sigmoidal kinetics of allosteric threonine deaminase promoted by isoleucine and valine binding control branched chain amino acid biosynthesis in Escherichia coli

  • Enzyme kinetic data and isotherms for active site ligand binding to the mutants can be analyzed in terms of a simple two-state model to yield values for allosteric parameters that are consistent with previous estimates based on an expanded two-state model for homotropic cooperativity for threonine deaminase

  • Addition of 50 ␮M isoleucine or 0.5 mM valine, saturating effector concentrations for wild-type threonine deaminase, resulted in almost no effect on the steady-state kinetics seen for TDDBL and TDTPL

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Summary

THE JOURNAL OF BIOLOGICAL CHEMISTRY

Vol 273, No 36, Issue of September 4, pp. 23219 –23224, 1998 Printed in U.S.A. Amino Acid Substitutions in the C-terminal Regulatory Domain Disrupt Allosteric Effector Binding to Biosynthetic Threonine Deaminase from Escherichia coli*. Shifts in the sigmoidal kinetics of allosteric threonine deaminase promoted by isoleucine and valine binding control branched chain amino acid biosynthesis in Escherichia coli. Activation by ATP and inhibition by CTP and UTP occurs by binding to the same sites on the regulatory chains of aspartate transcarbamoylase (6 –10) This is an especially significant problem for the regulation of threonine deaminase since the allosteric effectors isoleucine and valine are so structurally similar yet promote such dramatically different effects on the kinetic properties of the enzyme. The mutant enzymes show more sigmoidal saturation curves in steady-state kinetics and inhibitor binding to the active site, which suggests that L-threonine and its analogs have reduced affinity for the regulatory site These results provide support for a complex mechanism for regulation of wild-type threonine deaminase

EXPERIMENTAL PROCEDURES
RESULTS
Wild type TD
DISCUSSION

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