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Assessing Cellular Target Engagement by SHP2 (PTPN11) Phosphatase Inhibitors
Published on: July 17, 2020
Mechanism of influence of phosphorylation on serine 124 on a decrease of catalytic activity of human thymidylate
Adam Jarmuła1, Tomasz Fraczyk, Piotr Cieplak
1Nencki Institute of Experimental Biology, Polish Academy of Sciences, 3 Pasteur St., 02-093 Warszawa, Poland. a.jarmula@nencki.gov.pl
Abstract:
Regulation by phosphorylation is a well-established mechanism for controlling biological activity of proteins. Recently, phosphorylation of serine 124 in human thymidylate synthase (hTS) has been shown to lower the catalytic activity of the enzyme. To clarify a possible mechanism of the observed influence, molecular dynamics (MD), essential dynamics (ED) and MM-GBSA studies were undertaken. Structures derived from the MD trajectories reveal incorrect binding alignment between the pyrimidine ring of the substrate, dUMP, and the pterine ring of the cofactor analogue, THF, in the active site of the phosphorylated enzyme. The ED analysis indicates changes in the behavior of collective motions in the phosphorylated enzyme, suggesting that the formation of the closed ternary complex is hindered. Computed free energies, in agreement with structural analysis, predict that the binding of dUMP and THF to hTS is favored in the native compared to phosphorylated state of the enzyme. The paper describes at the structural level how phosphorylation at the distant site influences the ligand binding. We propose that the 'phosphorylation effect' is transmitted from the outside loop of Ser 124 into the active site via a subtle mechanism initiated by the long-range electrostatic repulsion between the phosphate groups of dUMP and Ser124. The mechanism can be described in terms of the interplay between the two groups of amino acids: the link (residues 125-134) and the patch (residues 189-192), resulting in the change of orientation of the pyrimidine ring of dUMP, which, in turn, prevents the correct alignment between the latter ring and the pterin ring of THF.
Insights
Phosphorylation of serine 124 in human thymidylate synthase (hTS) hinders enzyme activity by disrupting substrate and cofactor binding. This occurs through electrostatic repulsion and altered protein dynamics, affecting ligand alignment in the active site.
Area of Science:
- Biochemistry
- Structural Biology
- Enzyme Kinetics
Background:
- Phosphorylation is a key regulatory mechanism controlling protein function.
- Phosphorylation of serine 124 in human thymidylate synthase (hTS) reduces its catalytic activity.
- Understanding the structural basis of this regulation is crucial for enzyme mechanism studies.
Purpose of the Study:
- To elucidate the molecular mechanism by which serine 124 phosphorylation affects hTS activity.
- To investigate the structural and dynamic changes induced by phosphorylation in hTS.
- To clarify how phosphorylation influences substrate (dUMP) and cofactor (THF) binding.
Main Methods:
- Molecular Dynamics (MD) simulations to observe enzyme behavior over time.
- Essential Dynamics (ED) analysis to study collective motions within the enzyme.
- MM-GBSA calculations to predict binding free energies.
- Structural analysis of enzyme-ligand interactions.
Main Results:
- MD simulations revealed incorrect binding alignment of dUMP and THF in the phosphorylated hTS active site.
- ED analysis showed altered collective motions, hindering ternary complex formation.
- MM-GBSA results indicated reduced binding affinity for dUMP and THF in the phosphorylated enzyme.
- A mechanism involving electrostatic repulsion between phosphorylated Ser124 and dUMP was proposed.
Conclusions:
- Phosphorylation at Ser124 allosterically inhibits hTS activity by disrupting active site ligand binding.
- The 'phosphorylation effect' is transmitted via electrostatic interactions and conformational changes involving specific amino acid residues.
- This study provides a structural explanation for how distant phosphorylation impacts enzyme catalysis.
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