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Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions
Published on: April 4, 2014
Heat Capacity Changes for Transition-State Analogue Binding and Catalysis with Human 5'-Methylthioadenosine
Ross S Firestone1, Scott A Cameron1, Jerome M Karp1
1Department of Biochemistry, Albert Einstein College of Medicine , 1300 Morris Park Avenue, Bronx, New York 10461, United States.
Abstract:
Human 5'-methylthioadenosine phosphorylase (MTAP) catalyzes the phosphorolysis of 5'-methylthioadenosine (MTA). Its action regulates cellular MTA and links polyamine synthesis to S-adenosylmethionine (AdoMet) salvage. Transition state analogues with picomolar dissociation constants bind to MTAP in an entropically driven process at physiological temperatures, suggesting increased hydrophobic character or dynamic structure for the complexes. Inhibitor binding exhibits a negative heat capacity change (-ΔCp), and thus the changes in enthalpy and entropy upon binding are strongly temperature-dependent. The ΔCp of inhibitor binding by isothermal titration calorimetry does not follow conventional trends and is contrary to that expected from the hydrophobic effect. Thus, ligands of increasing hydrophobicity bind with increasing values of ΔCp. Crystal structures of MTAP complexed to transition-state analogues MT-DADMe-ImmA, BT-DADMe-ImmA, PrT-ImmA, and a substrate analogue, MT-tubercidin, reveal similar active site contacts and overall protein structural parameters, despite large differences in ΔCp for binding. In addition, ΔCp values are not correlated with Kd values. Temperature dependence of presteady state kinetics revealed the chemical step for the MTAP reaction to have a negative heat capacity for transition state formation (-ΔCp‡). A comparison of the ΔCp‡ for MTAP presteady state chemistry and ΔCp for inhibitor binding revealed those transition-state analogues most structurally and thermodynamically similar to the transition state. Molecular dynamics simulations of MTAP apoenzyme and complexes with MT-DADMe-ImmA and MT-tubercidin show small, but increased dynamic motion in the inhibited complexes. Variable temperature CD spectroscopy studies for MTAP-inhibitor complexes indicate remarkable protein thermal stability (to Tm = 99 °C) in complexes with transition-state analogues.
Insights
Human 5'-methylthioadenosine phosphorylase (MTAP) enzyme activity was studied using transition state analogues. Inhibitor binding thermodynamics and structural data reveal insights into MTAP
Area of Science:
- Biochemistry
- Enzymology
- Structural Biology
Background:
- Human 5'-methylthioadenosine phosphorylase (MTAP) is crucial for regulating cellular MTA levels and linking polyamine synthesis to S-adenosylmethionine (AdoMet) salvage.
- Understanding MTAP's mechanism is vital for developing targeted therapeutics.
Purpose of the Study:
- To investigate the binding thermodynamics and structural basis of transition state analogue interactions with human MTAP.
- To elucidate the relationship between inhibitor binding, enzyme dynamics, and thermal stability.
Main Methods:
- Isothermal titration calorimetry (ITC) to determine binding thermodynamics (ΔCp).
- X-ray crystallography to obtain high-resolution structures of MTAP-inhibitor complexes.
- Presteady-state kinetics and molecular dynamics simulations to probe reaction mechanisms and enzyme dynamics.
- Variable temperature circular dichroism (CD) spectroscopy to assess protein thermal stability.
Main Results:
- Transition state analogues bind to MTAP with high affinity (picomolar Kd) via an entropically driven process.
- Inhibitor binding exhibits a negative heat capacity change (ΔCp) that is not correlated with hydrophobicity or Kd.
- Crystal structures reveal conserved active site interactions despite varying ΔCp values.
- MTAP-inhibitor complexes display remarkable thermal stability (Tm up to 99 °C).
Conclusions:
- The observed thermodynamic and structural data provide a deeper understanding of MTAP inhibition.
- Transition state analogues that are structurally and thermodynamically similar to the transition state are identified.
- MTAP inhibitors enhance the enzyme's thermal stability, suggesting potential for drug development.
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