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How can a catalytic lesion be offset? The energetics of two pseudorevertant triosephosphate isomerases

S C Blacklow1, J R Knowles

  • 1Department of Chemistry, Harvard University, Cambridge, Massachusetts 02138.

Biochemistry
|May 1, 1990
PubMed

Insights

Triosephosphate isomerase mutants E165D and H95N showed destabilized transition states. Introducing a second-site mutation, S96P, significantly enhanced catalytic activity in both mutants by stabilizing transition states and improving substrate binding.

Area of Science:

  • Biochemistry
  • Enzyme kinetics
  • Protein engineering

Background:

  • Triosephosphate isomerase (TIM) is crucial for glycolysis.
  • Mutations in active site residues (E165D, H95N) of TIM lead to reduced catalytic activity.
  • These mutations primarily destabilize transition states for enolization steps.

Purpose of the Study:

  • To investigate the energetic consequences of active site mutations in TIM.
  • To explore the effects of second-site mutations on the catalytic activity of TIM mutants.
  • To understand the kinetic refinement of enzyme catalysts through pseudoreversion.

Main Methods:

  • Site-directed mutagenesis to create E165D and H95N TIM mutants.
  • Random mutagenesis of mutant TIM genes followed by selection for increased catalytic potency.
  • Energetic analysis of wild-type, mutant, and pseudorevertant TIM enzymes.
  • Determination of enzyme-dihydroxyacetone phosphate complex stability.

Main Results:

  • E165D and H95N mutants exhibited destabilized transition states for enolization.
  • Pseudorevertant enzymes (E165D,S96P and H95N,S96P) showed significantly increased catalytic activity (20-fold and 60-fold, respectively).
  • The S96P mutation stabilized transition states and improved substrate binding in both mutant contexts.
  • Second-site mutations can effectively enhance the catalytic potency of sluggish enzyme mutants.

Conclusions:

  • Second-site mutations, like S96P, can partially correct defects caused by active site mutations in TIM.
  • The S96P substitution improves TIM catalysis by stabilizing transition states and enhancing enzyme-substrate complex formation.
  • This study provides insights into the mechanisms of enzyme evolution and kinetic refinement.

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