TY - JOUR
T1 - Dynamics of the nucleoside diphosphate kinase protein DYNAMO2 correlates with the changes in the global GTP level during the cell cycle of Cyanidioschyzon merolae
AU - Imoto, Yuuta
AU - Abe, Yuichi
AU - Okumoto, Kanji
AU - Ohnuma, Mio
AU - Kuroiwa, Haruko
AU - Kuroiwa, Tsuneyoshi
AU - Fujiki, Yukio
N1 - Funding Information:
This work was supported in part by grants from the Japan Society for the Promotion of Science Fellowships (no. 14J04556 to Y.I.); MEXT-Supported Program for the Strategic Research Foundation at Private Universities (no. JWU2014-1018 to T.K.); Core Research for Evolutional Science and Technology Program of Japan Science and Technology Agency (to T.K.); Ministry of Education, Culture, Sports, Science and Technology of Japan Grants-in-Aid for Scientific Research (no. JP16H04813 to T.K; nos. JP24247038, JP25112518, JP25116717, JP26116007, JP15K14511, and JP15K21743 to Y.F.); and the Takeda Science Foundation (to Y.F.), Naito Foundation (to Y.F.), and Japan Foundation for Applied Enzymology and Novartis Foundation (Japan) for the Promotion of Science (to Y.F.). We thank O. Misumi (Yamaguchi University) and F. Yagisawa (Ryukyu University) for providing C. merolae 10D and K. Itoh (Johns Hopkins University) for study discussion and manuscript preparation.
Publisher Copyright:
© 2019 The Japan Academy.
PY - 2019
Y1 - 2019
N2 - GTP is an essential source of energy that supports a large array of cellular mechanochemical structures ranging from protein synthesis machinery to cytoskeletal apparatus for maintaining the cell cycle. However, GTP regulation during the cell cycle has been difficult to investigate because of heterogenous levels of GTP in asynchronous cell cycles and genetic redundancy of the GTP-generating enzymes. Here, in the unicellular red algae Cyanidioschyzon merolae, we demonstrated that the ATP-GTP-converting enzyme DYNAMO2 is an essential regulator of global GTP levels during the cell cycle. The cell cycle of C. merolae can be highly synchronized by light/dark stimulations to examine GTP levels at desired time points. Importantly, the genome of C. merolae encodes only two isoforms of the ATP-GTP-converting enzyme, namely DYNAMO1 and DYNAMO2. DYNAMO1 regulates organelle divisions, whereas DYNAMO2 is entirely localized in the cytoplasm. DYNAMO2 protein levels increase during the S-M phases, and changes in GTP levels are correlated with these DYNAMO2 protein levels. These results indicate that DYNAMO2 is a potential regulator of global GTP levels during the cell cycle.
AB - GTP is an essential source of energy that supports a large array of cellular mechanochemical structures ranging from protein synthesis machinery to cytoskeletal apparatus for maintaining the cell cycle. However, GTP regulation during the cell cycle has been difficult to investigate because of heterogenous levels of GTP in asynchronous cell cycles and genetic redundancy of the GTP-generating enzymes. Here, in the unicellular red algae Cyanidioschyzon merolae, we demonstrated that the ATP-GTP-converting enzyme DYNAMO2 is an essential regulator of global GTP levels during the cell cycle. The cell cycle of C. merolae can be highly synchronized by light/dark stimulations to examine GTP levels at desired time points. Importantly, the genome of C. merolae encodes only two isoforms of the ATP-GTP-converting enzyme, namely DYNAMO1 and DYNAMO2. DYNAMO1 regulates organelle divisions, whereas DYNAMO2 is entirely localized in the cytoplasm. DYNAMO2 protein levels increase during the S-M phases, and changes in GTP levels are correlated with these DYNAMO2 protein levels. These results indicate that DYNAMO2 is a potential regulator of global GTP levels during the cell cycle.
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U2 - 10.2183/pjab.95.007
DO - 10.2183/pjab.95.007
M3 - Article
C2 - 30745504
AN - SCOPUS:85061398320
SN - 0386-2208
VL - 95
SP - 75
EP - 85
JO - Proceedings of the Japan Academy Series B: Physical and Biological Sciences
JF - Proceedings of the Japan Academy Series B: Physical and Biological Sciences
IS - 2
ER -