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Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA

Trifluridine (FTD) and 2′-deoxy-5-fluorouridine (FdUrd), a derivative of 5-fluorouracil (5-FU), are antitumor agents that inhibit thymidylate synthase activity and their nucleotides are incorporated into DNA. However, it is evident that several differences occur in the underlying antitumor mechanism...

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Autores principales: SAKAMOTO, KAZUKI, YOKOGAWA, TATSUSHI, UENO, HIROYUKI, OGUCHI, KEI, KAZUNO, HIROMI, ISHIDA, KEIJI, TANAKA, NOZOMU, OSADA, AKIKO, YAMADA, YUKARI, OKABE, HIROYUKI, MATSUO, KENICHI
Formato: Online Artículo Texto
Lenguaje:English
Publicado: D.A. Spandidos 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4441292/
https://www.ncbi.nlm.nih.gov/pubmed/25901475
http://dx.doi.org/10.3892/ijo.2015.2974
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author SAKAMOTO, KAZUKI
YOKOGAWA, TATSUSHI
UENO, HIROYUKI
OGUCHI, KEI
KAZUNO, HIROMI
ISHIDA, KEIJI
TANAKA, NOZOMU
OSADA, AKIKO
YAMADA, YUKARI
OKABE, HIROYUKI
MATSUO, KENICHI
author_facet SAKAMOTO, KAZUKI
YOKOGAWA, TATSUSHI
UENO, HIROYUKI
OGUCHI, KEI
KAZUNO, HIROMI
ISHIDA, KEIJI
TANAKA, NOZOMU
OSADA, AKIKO
YAMADA, YUKARI
OKABE, HIROYUKI
MATSUO, KENICHI
author_sort SAKAMOTO, KAZUKI
collection PubMed
description Trifluridine (FTD) and 2′-deoxy-5-fluorouridine (FdUrd), a derivative of 5-fluorouracil (5-FU), are antitumor agents that inhibit thymidylate synthase activity and their nucleotides are incorporated into DNA. However, it is evident that several differences occur in the underlying antitumor mechanisms associated with these nucleoside analogues. Recently, TAS-102 (composed of FTD and tipiracil hydrochloride, TPI) was shown to prolong the survival of patients with colorectal cancer who received a median of 2 prior therapies, including 5-FU. TAS-102 was recently approved for clinical use in Japan. These data suggest that the antitumor activities of TAS-102 and 5-FU proceed via different mechanisms. Thus, we analyzed their properties in terms of thymidine salvage pathway utilization, involving membrane transporters, a nucleoside kinase, a nucleotide-dephosphorylating enzyme, and DNA polymerase α. FTD incorporated into DNA with higher efficiency than FdUrd did. Both FTD and FdUrd were transported into cells by ENT1 and ENT2 and were phosphorylated by thymidine kinase 1, which showed a higher catalytic activity for FTD than for FdUrd. deoxyUTPase (DUT) did not recognize dTTP and FTD-triphosphate (F(3)dTTP), whereas deoxyuridine-triphosphate (dUTP) and FdUrd-triphosphate (FdUTP) were efficiently degraded by DUT. DNA polymerase α incorporated both F(3)dTTP and FdUTP into DNA at sites aligned with adenine on the opposite strand. FTD-treated cells showed differing nuclear morphologies compared to FdUrd-treated cells. These findings indicate that FTD and FdUrd are incorporated into DNA with different efficiencies due to differences in the substrate specificities of TK1 and DUT, causing abundant FTD incorporation into DNA.
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spelling pubmed-44412922015-05-29 Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA SAKAMOTO, KAZUKI YOKOGAWA, TATSUSHI UENO, HIROYUKI OGUCHI, KEI KAZUNO, HIROMI ISHIDA, KEIJI TANAKA, NOZOMU OSADA, AKIKO YAMADA, YUKARI OKABE, HIROYUKI MATSUO, KENICHI Int J Oncol Articles Trifluridine (FTD) and 2′-deoxy-5-fluorouridine (FdUrd), a derivative of 5-fluorouracil (5-FU), are antitumor agents that inhibit thymidylate synthase activity and their nucleotides are incorporated into DNA. However, it is evident that several differences occur in the underlying antitumor mechanisms associated with these nucleoside analogues. Recently, TAS-102 (composed of FTD and tipiracil hydrochloride, TPI) was shown to prolong the survival of patients with colorectal cancer who received a median of 2 prior therapies, including 5-FU. TAS-102 was recently approved for clinical use in Japan. These data suggest that the antitumor activities of TAS-102 and 5-FU proceed via different mechanisms. Thus, we analyzed their properties in terms of thymidine salvage pathway utilization, involving membrane transporters, a nucleoside kinase, a nucleotide-dephosphorylating enzyme, and DNA polymerase α. FTD incorporated into DNA with higher efficiency than FdUrd did. Both FTD and FdUrd were transported into cells by ENT1 and ENT2 and were phosphorylated by thymidine kinase 1, which showed a higher catalytic activity for FTD than for FdUrd. deoxyUTPase (DUT) did not recognize dTTP and FTD-triphosphate (F(3)dTTP), whereas deoxyuridine-triphosphate (dUTP) and FdUrd-triphosphate (FdUTP) were efficiently degraded by DUT. DNA polymerase α incorporated both F(3)dTTP and FdUTP into DNA at sites aligned with adenine on the opposite strand. FTD-treated cells showed differing nuclear morphologies compared to FdUrd-treated cells. These findings indicate that FTD and FdUrd are incorporated into DNA with different efficiencies due to differences in the substrate specificities of TK1 and DUT, causing abundant FTD incorporation into DNA. D.A. Spandidos 2015-04-20 /pmc/articles/PMC4441292/ /pubmed/25901475 http://dx.doi.org/10.3892/ijo.2015.2974 Text en Copyright © 2015, Spandidos Publications http://creativecommons.org/licenses/by/3.0 This is an open-access article licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported License. The article may be redistributed, reproduced, and reused for non-commercial purposes, provided the original source is properly cited.
spellingShingle Articles
SAKAMOTO, KAZUKI
YOKOGAWA, TATSUSHI
UENO, HIROYUKI
OGUCHI, KEI
KAZUNO, HIROMI
ISHIDA, KEIJI
TANAKA, NOZOMU
OSADA, AKIKO
YAMADA, YUKARI
OKABE, HIROYUKI
MATSUO, KENICHI
Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA
title Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA
title_full Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA
title_fullStr Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA
title_full_unstemmed Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA
title_short Crucial roles of thymidine kinase 1 and deoxyUTPase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into DNA
title_sort crucial roles of thymidine kinase 1 and deoxyutpase in incorporating the antineoplastic nucleosides trifluridine and 2′-deoxy-5-fluorouridine into dna
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4441292/
https://www.ncbi.nlm.nih.gov/pubmed/25901475
http://dx.doi.org/10.3892/ijo.2015.2974
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