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\n \n\n \n \n Brozovic, M., Martin, C., Dantec, C., Dauga, D., Mendez, M., Simion, P., Percher, M., Laporte, B., Scornavacca, C., Di Gregorio, A., Fujiwara, S., Gineste, M., Lowe, E. K., Piette, J., Racioppi, C., Ristoratore, F., Sasakura, Y., Takatori, N., Brown, T. C., Delsuc, F., Douzery, E., Gissi, C., McDougall, A., Nishida, H., Sawada, H., Swalla, B. J., Yasuo, H., & Lemaire, P.\n\n\n \n \n \n \n \n ANISEED 2015: a digital framework for the comparative developmental biology of ascidians.\n \n \n \n \n\n\n \n\n\n\n Nucleic Acids Research, 44(D1): D808–D818. January 2016.\n \n\n\n\n
\n\n\n\n \n \n \"ANISEEDPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{brozovic_aniseed_2016,\n\ttitle = {{ANISEED} 2015: a digital framework for the comparative developmental biology of ascidians},\n\tvolume = {44},\n\tissn = {0305-1048, 1362-4962},\n\tshorttitle = {{ANISEED} 2015},\n\turl = {https://academic.oup.com/nar/article-lookup/doi/10.1093/nar/gkv966},\n\tdoi = {10.1093/nar/gkv966},\n\tlanguage = {en},\n\tnumber = {D1},\n\turldate = {2021-07-27},\n\tjournal = {Nucleic Acids Research},\n\tauthor = {Brozovic, Matija and Martin, Cyril and Dantec, Christelle and Dauga, Delphine and Mendez, Mickaël and Simion, Paul and Percher, Madeline and Laporte, Baptiste and Scornavacca, Céline and Di Gregorio, Anna and Fujiwara, Shigeki and Gineste, Mathieu and Lowe, Elijah K. and Piette, Jacques and Racioppi, Claudia and Ristoratore, Filomena and Sasakura, Yasunori and Takatori, Naohito and Brown, Titus C. and Delsuc, Frédéric and Douzery, Emmanuel and Gissi, Carmela and McDougall, Alex and Nishida, Hiroki and Sawada, Hitoshi and Swalla, Billie J. and Yasuo, Hitoyoshi and Lemaire, Patrick},\n\tmonth = jan,\n\tyear = {2016},\n\tpages = {D808--D818},\n}\n\n
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\n \n\n \n \n Ogura, Y., & Sasakura, Y.\n\n\n \n \n \n \n \n Cell-cycle compensation coupled with developmental patterning.\n \n \n \n \n\n\n \n\n\n\n Cell Cycle, 15(20): 2685–2686. October 2016.\n \n\n\n\n
\n\n\n\n \n \n \"Cell-cyclePaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 7 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{ogura_cell-cycle_2016,\n\ttitle = {Cell-cycle compensation coupled with developmental patterning},\n\tvolume = {15},\n\tissn = {1538-4101, 1551-4005},\n\turl = {https://www.tandfonline.com/doi/full/10.1080/15384101.2016.1204859},\n\tdoi = {10.1080/15384101.2016.1204859},\n\tlanguage = {en},\n\tnumber = {20},\n\turldate = {2021-07-27},\n\tjournal = {Cell Cycle},\n\tauthor = {Ogura, Yosuke and Sasakura, Yasunori},\n\tmonth = oct,\n\tyear = {2016},\n\tpages = {2685--2686},\n}\n\n
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\n \n\n \n \n Ogura, Y., & Sasakura, Y.\n\n\n \n \n \n \n \n Developmental Control of Cell-Cycle Compensation Provides a Switch for Patterned Mitosis at the Onset of Chordate Neurulation.\n \n \n \n \n\n\n \n\n\n\n Developmental Cell, 37(2): 148–161. April 2016.\n \n\n\n\n
\n\n\n\n \n \n \"DevelopmentalPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 7 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{ogura_developmental_2016,\n\ttitle = {Developmental {Control} of {Cell}-{Cycle} {Compensation} {Provides} a {Switch} for {Patterned} {Mitosis} at the {Onset} of {Chordate} {Neurulation}},\n\tvolume = {37},\n\tissn = {15345807},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S1534580716301587},\n\tdoi = {10.1016/j.devcel.2016.03.013},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Cell},\n\tauthor = {Ogura, Yosuke and Sasakura, Yasunori},\n\tmonth = apr,\n\tyear = {2016},\n\tpages = {148--161},\n}\n\n
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\n \n\n \n \n Sasakura, Y., Ogura, Y., Treen, N., Yokomori, R., Park, S., Nakai, K., Saiga, H., Sakuma, T., Yamamoto, T., Fujiwara, S., & Yoshida, K.\n\n\n \n \n \n \n \n Transcriptional regulation of a horizontally transferred gene from bacterium to chordate.\n \n \n \n \n\n\n \n\n\n\n Proceedings of the Royal Society B: Biological Sciences, 283(1845): 20161712. December 2016.\n \n\n\n\n
\n\n\n\n \n \n \"TranscriptionalPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n  \n \n 7 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{sasakura_transcriptional_2016,\n\ttitle = {Transcriptional regulation of a horizontally transferred gene from bacterium to chordate},\n\tvolume = {283},\n\tissn = {0962-8452, 1471-2954},\n\turl = {https://royalsocietypublishing.org/doi/10.1098/rspb.2016.1712},\n\tdoi = {10.1098/rspb.2016.1712},\n\tabstract = {The horizontal transfer of genes between distantly related organisms is undoubtedly a major factor in the evolution of novel traits. Because genes are functionless without expression, horizontally transferred genes must acquire appropriate transcriptional regulations in their recipient organisms, although the evolutionary mechanism is not known well. The defining characteristic of tunicates is the presence of a cellulose containing tunic covering the adult and larval body surface. Cellulose synthase was acquired by horizontal gene transfer from Actinobacteria. We found that acquisition of the binding site of AP-2 transcription factor was essential for tunicate cellulose synthase to gain epidermal-specific expression. Actinobacteria have very GC-rich genomes, regions of which are capable of inducing specific expression in the tunicate epidermis as the AP-2 binds to a GC-rich region. Therefore, the actinobacterial cellulose synthase could have been potentiated to evolve its new function in the ancestor of tunicates with a higher probability than the evolution depending solely on a spontaneous event.},\n\tlanguage = {en},\n\tnumber = {1845},\n\turldate = {2021-07-27},\n\tjournal = {Proceedings of the Royal Society B: Biological Sciences},\n\tauthor = {Sasakura, Yasunori and Ogura, Yosuke and Treen, Nicholas and Yokomori, Rui and Park, Sung-Joon and Nakai, Kenta and Saiga, Hidetoshi and Sakuma, Tetsushi and Yamamoto, Takashi and Fujiwara, Shigeki and Yoshida, Keita},\n\tmonth = dec,\n\tyear = {2016},\n\tpages = {20161712},\n}\n\n
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\n The horizontal transfer of genes between distantly related organisms is undoubtedly a major factor in the evolution of novel traits. Because genes are functionless without expression, horizontally transferred genes must acquire appropriate transcriptional regulations in their recipient organisms, although the evolutionary mechanism is not known well. The defining characteristic of tunicates is the presence of a cellulose containing tunic covering the adult and larval body surface. Cellulose synthase was acquired by horizontal gene transfer from Actinobacteria. We found that acquisition of the binding site of AP-2 transcription factor was essential for tunicate cellulose synthase to gain epidermal-specific expression. Actinobacteria have very GC-rich genomes, regions of which are capable of inducing specific expression in the tunicate epidermis as the AP-2 binds to a GC-rich region. Therefore, the actinobacterial cellulose synthase could have been potentiated to evolve its new function in the ancestor of tunicates with a higher probability than the evolution depending solely on a spontaneous event.\n
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