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.

ACS Chemical Biology
|December 28, 2016
PubMed

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.

Related Concept Videos

Introduction to Mechanisms of Enzyme Catalysis01:13

Introduction to Mechanisms of Enzyme Catalysis

For many years, scientists thought that enzyme-substrate binding took place in a simple "lock-and-key" fashion. This model stated that the enzyme and substrate fit together perfectly in one instantaneous step. However, current research supports a more refined view scientists call induced fit. The induced-fit model expands upon the lock-and-key model by describing a more dynamic interaction between enzyme and substrate. As the enzyme and substrate come together, their interaction causes...
11.1K
Allosteric Proteins-ATCase01:19

Allosteric Proteins-ATCase

Binding sites linkages can regulate a protein's function.  For example, enzyme activity is often regulated through a feedback mechanism where the end product of the biochemical process serves as an inhibitor.
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to  N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis...
6.8K
Induced-fit Model01:13

Induced-fit Model

Most chemical reactions in cells require enzymes—biological catalysts that speed up the reaction without being consumed or permanently changed. They reduce the activation energy needed to convert the reactants into products. Enzymes are proteins, that usually work by binding to a substrate—a reactant molecule that they act upon.
Enzymes exhibit substrate specificity, meaning that they can only bind to certain substrates. This is mainly determined by the shape and chemical...
91.0K
Enzymes and Activation Energy01:13

Enzymes and Activation Energy

The activation energy (or free energy of activation), abbreviated as Ea, is the small amount of energy input necessary for all chemical reactions to occur. During chemical reactions, certain chemical bonds break, and new ones form. For example, when a glucose molecule breaks down, bonds between the molecule's carbon atoms break. Since these are energy-storing bonds, they release energy when broken. However, the molecule must be somewhat contorted to get into a state that allows the bonds to...
24.5K
Ligand Binding and Linkage00:49

Ligand Binding and Linkage

Allosteric proteins have more than one ligand binding site; the binding of a ligand to any of these sites influences the binding of ligands to the other sites. When a protein is allosteric, its binding sites are called coupled or linked.  In the case of enzymes, the site that binds to the substrate is known as the active site and the other site is known as the regulatory site. When a ligand binds to the regulatory site, this leads to conformational changes in the protein that can influence...
5.8K
Cooperative Allosteric Transitions01:58

Cooperative Allosteric Transitions

2.8K