Monitoring tumor cell proliferation by targeting DNA synthetic processes with thymidine and thymidine analogs

Jeffrey L Schwartz1, Yasuko Tamura, Robert Jordan

  • 1Department of Radiation Oncology, University of Washington School of Medicine, Seattle, Washington 98195-6069, USA. jschwart@u.washington.edu

Abstract

Insights

Radiolabeled thymidine (TdR) and fluorothymidine (FLT) PET tracers accurately measure tumor cell proliferation when it depends on thymidine kinase-1 (TK1) activity. However, their accuracy varies, with TdR showing a stronger correlation than FLT.

Area of Science:

  • Biomedical imaging
  • Molecular oncology
  • Cellular kinetics

Background:

  • Positron emission tomography (PET) tracers like radiolabeled thymidine (TdR) and its analogs are used to assess tumor growth rates.
  • The efficacy of these tracers relies on the assumption that their uptake, primarily driven by thymidine kinase-1 (TK1) activity, accurately reflects active cell proliferation.

Purpose of the Study:

  • To validate the hypothesis that TdR and thymidine analog uptake accurately measures tumor cell proliferation.
  • To determine the correlation between PET tracer uptake and changes in tumor cell proliferation rates.

Main Methods:

  • Assessed TK1 activity, S-phase fraction, and uptake of TdR, 3'-deoxy-3'-fluorothymidine (FLT), and 2'-fluoro-5-methyl-1-(beta-D-2-arabino-furanosyl) uracil (FMAU).
  • Experiments were conducted on human and murine tumor cell lines in both plateau-phase and exponentially growing states.

Main Results:

  • TK1 activity and S-phase fraction increased with transition from plateau to exponential growth across all cell lines.
  • Some cell lines exhibited high TK1 activity and S-phase fraction in plateau phase, indicating compromised cell cycle control.
  • TdR and FLT uptake correlated with TK1 activity, with TdR showing a significantly stronger relationship than FLT and FMAU.

Conclusions:

  • In tumors where proliferation is TK1-dependent, TdR and FLT phosphorylation accurately reflect changes in TK1 enzyme activity.
  • The study highlights the variable reliance of tumor proliferation on TK1 and the differential sensitivity of tracers.

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