TY - JOUR
T1 - ITPA protein, an enzyme that eliminates deaminated purine nucleoside triphosphates in cells
AU - Sakumi, Kunihiko
AU - Abolhassani, Nona
AU - Behmanesh, Mehrdad
AU - Iyama, Teruaki
AU - Tsuchimoto, Daisuke
AU - Nakabeppu, Yusaku
N1 - Funding Information:
This work was supported by grants from the Ministry of Education, Culture, Sports, Science and Technology of Japan [20013034 to YN, 20012038 to KS]; the Japan Society for the Promotion of Science [19390114 to DT, 08J03650 to TI] and the Kyushu University Global COE program [YN].
PY - 2010/11/28
Y1 - 2010/11/28
N2 - Inosine triphosphate pyrophosphatase (ITPA protein) (EC 3.6.1.19) hydrolyzes deaminated purine nucleoside triphosphates, such as ITP and dITP, to their corresponding purine nucleoside monophosphate and pyrophosphate. In mammals, this enzyme is encoded by the Itpa gene. Using the Itpa gene-disrupted mouse as a model, we have elucidated the biological significance of the ITPA protein and its substrates, ITP and dITP. Itpa-/- mice exhibited peri- or post-natal lethality dependent on the genetic background. The heart of the Itpa-/- mouse was found to be structurally and functionally abnormal. Significantly higher levels of deoxyinosine and inosine were detected in nuclear DNA and RNA prepared from Itpa-/- embryos compared to wild type embryos. In addition, an accumulation of ITP was observed in the erythrocytes of Itpa-/- mice. We found that Itpa-/- primary mouse embryonic fibroblasts (MEFs), which have no detectable ability to generate IMP from ITP in whole cell extracts, exhibited a prolonged population-doubling time, increased chromosome abnormalities and accumulation of single-strand breaks in their nuclear DNA, in comparison to primary MEFs prepared from wild type embryos. These results revealed that (1) ITP and dITP are spontaneously produced in vivo and (2) accumulation of ITP and dITP is responsible for the harmful effects observed in the Itpa-/- mouse. In addition to its effect as the precursor nucleotide for RNA transcription, ITP has the potential to influence the activity of ATP/GTP-binding proteins. The biological significance of ITP and dITP in the nucleotide pool remains to be elucidated.
AB - Inosine triphosphate pyrophosphatase (ITPA protein) (EC 3.6.1.19) hydrolyzes deaminated purine nucleoside triphosphates, such as ITP and dITP, to their corresponding purine nucleoside monophosphate and pyrophosphate. In mammals, this enzyme is encoded by the Itpa gene. Using the Itpa gene-disrupted mouse as a model, we have elucidated the biological significance of the ITPA protein and its substrates, ITP and dITP. Itpa-/- mice exhibited peri- or post-natal lethality dependent on the genetic background. The heart of the Itpa-/- mouse was found to be structurally and functionally abnormal. Significantly higher levels of deoxyinosine and inosine were detected in nuclear DNA and RNA prepared from Itpa-/- embryos compared to wild type embryos. In addition, an accumulation of ITP was observed in the erythrocytes of Itpa-/- mice. We found that Itpa-/- primary mouse embryonic fibroblasts (MEFs), which have no detectable ability to generate IMP from ITP in whole cell extracts, exhibited a prolonged population-doubling time, increased chromosome abnormalities and accumulation of single-strand breaks in their nuclear DNA, in comparison to primary MEFs prepared from wild type embryos. These results revealed that (1) ITP and dITP are spontaneously produced in vivo and (2) accumulation of ITP and dITP is responsible for the harmful effects observed in the Itpa-/- mouse. In addition to its effect as the precursor nucleotide for RNA transcription, ITP has the potential to influence the activity of ATP/GTP-binding proteins. The biological significance of ITP and dITP in the nucleotide pool remains to be elucidated.
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U2 - 10.1016/j.mrgentox.2010.06.009
DO - 10.1016/j.mrgentox.2010.06.009
M3 - Review article
C2 - 20601097
AN - SCOPUS:78549234306
SN - 1383-5718
VL - 703
SP - 43
EP - 50
JO - Mutation Research - Genetic Toxicology and Environmental Mutagenesis
JF - Mutation Research - Genetic Toxicology and Environmental Mutagenesis
IS - 1
ER -