Structure of human thymidylate synthase suggests advantages of chemotherapy with noncompetitive inhibitors

J Phan1, D J Steadman, S Koli

  • 1Departments of Chemistry and Biochemistry, University of South Carolina, Columbia 92908, USA.

Insights

Thymidylate synthase (TS) inhibition strategies may overcome drug resistance in cancer. Stabilizing the inactive TS conformation could offer a novel therapeutic approach with reduced resistance.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cancer Research

Background:

  • Thymidylate synthase (TS) is a key target in colorectal cancer chemotherapy.
  • Drug resistance in cancer often arises from increased TS levels due to feedback regulation or enhanced complex stability.
  • Human TS (hTS) exhibits a unique active site loop conformation, distinct from bacterial counterparts.

Purpose of the Study:

  • To investigate the functional implications of the inactive hTS conformation.
  • To explore novel TS inhibition strategies targeting enzyme conformation.
  • To assess the potential of stabilizing the inactive hTS form to overcome drug resistance.

Main Methods:

  • High-resolution crystallographic analysis (2.0 A) to determine ordered solvent structure.
  • Fluorescence studies to analyze enzyme conformations in solution.
  • Investigating the effects of phosphate and dUMP binding on TS conformation equilibrium.

Main Results:

  • The inactive hTS loop conformation appears to promote mRNA binding and enzyme degradation.
  • Both active and inactive hTS forms exist in solution, with equilibrium influenced by ligand binding.
  • Phosphate binding favors the inactive conformation; dUMP binding shifts equilibrium to the active form.

Conclusions:

  • Stabilizing the inactive TS conformation presents a potential therapeutic strategy to circumvent drug resistance.
  • Targeting the inactive conformation may be more effective than current substrate-analog drugs that stabilize the active form.
  • N-terminal extensions on native hTS do not significantly impact kinetic properties or crystal structure.

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