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Updated: Aug 29, 2026

Immunofluorescent Detection of Two Thymidine Analogues (CldU and IdU) in Primary Tissue
Published on: December 7, 2010
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
Unlabelled:
The use of radiolabeled thymidine (TdR) and thymidine analogs as PET-based tracers of tumor growth rate is based on the assumption that measurement of uptake of these nucleosides, a function primarily of thymidine kinase-1 (TK(1)) activity, provides an accurate measure of active cell proliferation in tumors. The goal of this study was to test this hypothesis and determine how well these tracers track changes in proliferation of tumor cells.
Methods:
TK(1) 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) were determined in plateau-phase and exponentially growing cultures of 3 human and 3 murine tumor cell lines.
Results:
TK(1) activity and S-phase fraction increased in all cell lines as cells moved from plateau-phase conditions to exponential growth. Some cell lines had relatively large TK(1) activities and S-phase fractions under plateau-phase conditions, consistent with a loss of normal cell cycle checkpoint control in these cells. There were also 2 cell lines in which TK(1) activity changed little as cells moved from the plateau phase to exponential growth, suggesting that in these cell lines, de novo nucleotide synthesis pathways predominate over salvage pathways. Both TdR and FLT detected changes in TK(1) activity. The slope of the relationship between TdR uptake and TK(1) activity was nearly twice that for FLT and more than 40-fold that for FMAU.
Conclusion:
Although not all tumors show a strong TK(1) dependence of proliferation, in all cell lines for which proliferation is highly TK(1) dependent, phosphorylation of TdR or FLT accurately reflects changes in TK(1) enzyme activity.
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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