Osaka Kyoiku University Researcher Information
日本語 | English
研究者業績
基本情報
- 所属
- 大阪教育大学 理事・副学長
- 学位
- 修士(農学)(東北大学)Ph. Doctor(Agriculture)(Tohoku University)博士(農学)(東北大学)
- 研究者番号
- 10314444
- J-GLOBAL ID
- 200901081252736172
- researchmap会員ID
- 1000248485
- 外部リンク
経歴
8-
2020年4月 - 2024年3月
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2022年4月
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2008年4月 - 2016年3月
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2014年4月
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2007年4月 - 2014年3月
学歴
2-
1996年4月 - 1999年3月
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- 1994年
委員歴
1-
2007年
受賞
3-
2005年8月
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2001年
論文
91-
Scientific Reports 14(1) 9656 2024年4月26日 査読有りAbstract Weedy rice is a major problem in paddy fields around the world. It is well known that weedy rice appears to grow faster and mature earlier than cultivated rice. It is possible that differences in the root microbial genetics are correlated with this characteristic. This study incorporated 16S rRNA amplicon sequencing to study the microbial composition in the rhizosphere and endosphere of rice root. No significant difference was found between the microbiota associated with weedy and cultivated rice lines grown in the same field. It was found that the endosphere had less microbial diversity compared to the rhizosphere. The major groups of bacteria found in the endosphere are from the phylum Proteobacteria, Myxococcota, Chloroflexota, and Actinobacteria. In addition, by analyzing the microbiome of japonica rice grown in the field in a temperate climate, we found that despite differences in genotype and location, some bacterial taxa were found to be common and these members of the putative rice core microbiome can also be detected by in situ hybridization. The delineation of a core microbiome in the endosphere of rice suggests that these bacterial taxa might be important in the life cycle of a wide range of rice types.
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Plant Reproduction 2023年4月26日Abstract Key message S29 haplotype does not require the MLPK function for self-incompatibility in Brassica rapa. Abstract Self-incompatibility (SI) in Brassicaceae is regulated by the self-recognition mechanism, which is based on the S-haplotype-specific direct interaction of the pollen-derived ligand, SP11/SCR, and the stigma-side receptor, SRK. M locus protein kinase (MLPK) is known to be one of the positive effectors of the SI response. MLPK directly interacts with SRK, and is phosphorylated by SRK in Brassica rapa. In Brassicaceae, MLPK was demonstrated to be essential for SI in B. rapa and Brassica napus, whereas it is not essential for SI in Arabidopsis thaliana (with introduced SRK and SP11/SCR from related SI species). Little is known about what determines the need for MLPK in SI of Brassicaceae. In this study, we investigated the relationship between S-haplotype diversity and MLPK function by analyzing the SI phenotypes of different S haplotypes in a mlpk/mlpk mutant background. The results have clarified that in B. rapa, all the S haplotypes except the S29 we tested need the MLPK function, but the S29 haplotype does not require MLPK for the SI. Comparative analysis of MLPK-dependent and MLPK-independent S haplotype might provide new insight into the evolution of S-haplotype diversity and the molecular mechanism of SI in Brassicaceae.
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Plants (Basel) 10 2467 2021年11月15日 査読有り
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Genes and Genetic Systems 96 129-139 2021年6月18日 査読有り
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Nature Communications 11(1) 4916 2020年10月1日 査読有り
MISC
31-
日本植物生理学会年会要旨集 52nd 170-0236 2011年3月11日多くの植物は、受粉から受精に至る生殖過程において、自己と非自己の花粉を識別し、自殖を抑制する自家不和合性と呼ばれる性質を持つ。S遺伝子座上にコードされる多型性の花粉因子S-locus protein 11 (SP11/SCR)と、雌ずい因子S-receptor kinase (SRK)を介して行われており、受粉の際、同じSハプロタイプのSP11がSRKに出会うとSRKが活性化され、不和合反応が誘起される。花粉因子SP11は、花粉(n)ではなく葯タペート組織(2n)で作られる花粉の成熟に伴って花粉表層に移行する。従って、2種類のSハプロタイプを持つヘテロ株の花粉は、花粉親の2種類のSハプロタイプの形質を併せ持つが(共優性)、Sハプロタイプの組合せによっては、優劣の関係が生じ、片側のSハプロタイプの形質しか示さない花粉が作られる場合がある。これまでの研究から、優性/劣性ヘテロ株において、劣性側のSP11遺伝子プロモーター領域が、その発現が始まる直前に葯タペート組織特異的にメチル化され、発現が抑制されることが明らかとなっている。今回、我々は、劣性側のSP11遺伝子プロモーター領域の特異的なメチル化が、優性側のSP11遺伝子近傍から産出されるトランス作用性のsmall RNAによって制御されていることを明らかにしたので報告する。
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GENES & GENETIC SYSTEMS 85(5) 297-310 2010年10月 査読有りIn the last decade, a variety of innovations of emerging technologies in science have been accomplished. Advanced research environment in plant science has made it possible to obtain whole genome sequence in plant species. But now we recognize this by itself is not sufficient to understand the overall biological significance. Since Gregor Mendel established a principle of genetics, known as Mendel's Laws of Inheritance, genetics plays a prominent role in life science, and this aspect is indispensable even in modern plant biology. In this review, we focus on achievements of genetics on plant sexual reproduction research in the last decade and discuss the role of genetics for the coming decade. It is our hope that this will shed light on the importance of genetics in plant biology and provide valuable information to plant biologists.
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PLANT AND CELL PHYSIOLOGY 50(11) 1857-1864 2009年11月 査読有りSexual reproduction is an important biological event not only for evolution but also for breeding in plants. It is a well known fact that Charles Darwin (18091882) was interested in the reproduction system of plants as part of his concept of species and evolution. His keen observation and speculation is timeless even in the current post-genome era. In the Darwin anniversary year of 2009, I have summarized recent molecular genetic studies of plant reproduction, focusing especially on male gametophyte development, pollination and fertilization. We are just beginning to understand the molecular mechanisms of the elaborate reproduction system in flowering plants, which have been a mystery for 100 years.
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Floriculture Ornamental and Plant Biotechnology 1 552-555 2006年
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Plant Biotechnology 16(4) 263-272 1999年 査読有りMany angiosperm plants express self- incompatibility (SI), through which they can recognize selfpollen and restrict fertilization to non-self-pollen. In species of Brassica, SI is sporophytically expressed, regulated by a single locus, S, with multiple alleles. Two stigma- specific genes, SLG and SRK, both of which locate at the S locus, are believed to play a role in the recognition reaction on the stigma side. Reviewed here are findings about SLG and SRK genes, the molecular characterization of Smultigene family, the genomic structure of S locus, and some aspects on signal transfer by the proteins encoded by these genes.
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Recent Research Developments in Agricultural and Biological Chemistry. 1 235-242 1997年 査読有り
書籍等出版物
6-
Springer-Verlag 2008年 (ISBN: 9783540684862)
共同研究・競争的資金等の研究課題
25-
日本学術振興会 科学研究費助成事業 2020年4月 - 2023年3月
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日本学術振興会 科学研究費助成事業 2016年6月 - 2021年3月
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日本学術振興会 科学研究費助成事業 2014年4月 - 2017年3月
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日本学術振興会 科学研究費助成事業 2013年4月 - 2017年3月
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2013年 - 2017年