Tsuyoshi Mizoguchi
International Christian University
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Featured researches published by Tsuyoshi Mizoguchi.
Current Genomics | 2008
Chiaki Matsukura; K. Aoki; N. Fukuda; Tsuyoshi Mizoguchi; Erika Asamizu; Takeshi Saito; D. Shibata; Hiroshi Ezura
Tomato (Solanum lycopersicum L., Solanaceae) is an excellent model plant for genomic research of solanaceous plants, as well as for studying the development, ripening, and metabolism of fruit. In 2003, the International Solanaceae Project (SOL, www.sgn.cornell.edu ) was initiated by members from more than 30 countries, and the tomato genome-sequencing project is currently underway. Genome sequence of tomato obtained by this project will provide a firm foundation for forthcoming genomic studies such as the comparative analysis of genes conserved among the Solanaceae species and the elucidation of the functions of unknown tomato genes. To exploit the wealth of the genome sequence information, there is an urgent need for novel resources and analytical tools for tomato functional genomics. Here, we present an overview of the development of genetic and genomic resources of tomato in the last decade, with a special focus on the activities of Japan SOL and the National Bio-Resource Project in the development of functional genomic resources of a model cultivar, Micro-Tom.
Plant Signaling & Behavior | 2018
Ryosuke Hayama; Tsuyoshi Mizoguchi; George Coupland
ABSTRACT The circadian clock is synchronized by the day-night cycle to allow plants to anticipate daily environmental changes and to recognize annual changes in day length enabling seasonal flowering. This clock system has been extensively studied in Arabidopsis thaliana and was found to be reset by the dark to light transition at dawn. By contrast, studies on photoperiodic flowering of Pharbitis nil revealed the presence of a clock system reset by the transition from light to dark at dusk to measure the duration of the night. However, a Pharbitis photosynthetic gene was also shown to be insensitive to this dusk transition and to be set by dawn. Thus Pharbitis appeared to have two clock systems, one set by dusk that controls photoperiodic flowering and a second controlling photosynthetic gene expression similar to that of Arabidopsis. Here, we show that circadian mRNA expression of Pharbitis homologs of a series of Arabidopsis clock or clock-controlled genes are insensitive to the dusk transition. These data further define the presence in Pharbitis of a clock system that is analogous to the Arabidopsis system, which co-exists and functions with the dusk-set system dedicated to the control of photoperiodic flowering.
Plant Signaling & Behavior | 2013
Masahide Takase; Tsuyoshi Mizoguchi; Toshiaki Kozuka; Hirokazu Tsukaya
Plant Biotechnology | 2016
Atsuko Tsukamoto; Tadayoshi Hirai; Dong Poh Chin; Masahiro Mii; Tsuyoshi Mizoguchi; Daiki Mizuta; Hideo Yoshida; Jorunn E. Olsen; Hiroshi Ezura; Naoya Fukuda
Plant Biotechnology | 2016
Syunji Suzuki; Kana Miyata; Miyuki Hara; Kanae Niinuma; Hirokazu Tsukaya; Masahide Takase; Ryosuke Hayama; Tsuyoshi Mizoguchi
Plant Biotechnology | 2014
Kohei Aihara; Satoshi Naramoto; Miyuki Hara; Tsuyoshi Mizoguchi
Plant Biotechnology | 2014
Miyuki Hara; Hiroshi Kamada; Tsuyoshi Mizoguchi
Plant Biotechnology | 2016
Kiwako Yamamoto; Kei Takahashi; Miyuki Hara; Kana Miyata; Ryosuke Hayama; Tsuyoshi Mizoguchi
Plant Biotechnology | 2014
Yosuke Mizuno; Shunsuke Okamoto; Miyuki Hara; Tsuyoshi Mizoguchi
Plant Biotechnology | 2018
Seung-won Choi; Ken Hoshikawa; Satoshi Fujita; Dung Pham Thi; Tsuyoshi Mizoguchi; Hiroshi Ezura; Emi Ito