研究者業績
基本情報
- 所属
- 上智大学 理工学部物質生命理工学科 教授
- 学位
- 学士(東京大学)修士(東京大学)博士(農学)(東京大学)
- 研究者番号
- 90332345
- J-GLOBAL ID
- 200901000526942076
- researchmap会員ID
- 5000099166
微生物 (共生体オルガネラ) の分化・形態形成に惹かれ研究をしてきた。
1994–1997年 糸状菌の形態形成におけるキチン合成酵素の役割に関する分子遺伝学的研究
1997–2000年 葉緑体RNAポリメラーゼσ因子に関する研究
2000–2010年 葉緑体分裂制御に関する研究
2010– (現在) 植物オルガネラの形態ダイナミクス
(研究テーマ) 色素体の細胞生物学、緑藻類の細胞形態学
研究キーワード
4受賞
1論文
73-
Bio-protocol 15(11) e5333 2025年6月 査読有り招待有り筆頭著者責任著者
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Cytologia 90(2) 77-78 2025年6月 査読有り招待有り筆頭著者責任著者
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Frontiers in Plant Science 15 2024年9月 査読有り最終著者責任著者Pre-mRNA splicing is a fundamental process in eukaryotic gene expression, and the mechanism of intron definition, involving the recognition of the canonical GU (5’-splice site) and AG (3’-splice site) dinucleotides by splicing factors, has been postulated for most cases of splicing initiation in plants. Splice site mutations have played crucial roles in unraveling the mechanism of pre-mRNA splicing in planta. Typically, splice site mutations abolish splicing events or activate one or more cryptic splice sites surrounding the mutated region. In this report, we investigated the splicing pattern of the EGY1 gene in an Ar-ion-induced egy1-4 allele of Arabidopsis thaliana. egy1-4 has an AG-to-AC mutation in the 3′-end of intron 3, along with 4-bp substitutions and a 5-bp deletion in adjacent exon 4. RT-PCR, cDNA cloning, and amplicon sequencing analyses of EGY1 revealed that while most wild-type EGY1 mRNAs had a single splicing pattern, egy1-4 mRNAs had multiple splicing defects. Almost half of EGY1 transcripts showed ‘intron retention’ at intron 3, while the other half exhibited activation of 3’ cryptic splice sites either upstream or downstream of the original 3’-splice site. Unexpectedly, around 8% of EGY1 transcripts in egy1-4 exhibited activation of cryptic 5′-splice sites positioned upstream of the authentic 5’-splice site of intron 3. Whole genome resequencing of egy1-4 indicated that it has no other known impactful mutations. These results may provide a rare, but real case of activation of cryptic 5’-splice sites by downstream 3’-splice site/exon mutations in planta.
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Plant Physiology 2024年9月 査読有り筆頭著者責任著者
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RIKEN Accelerator Progress Report 56 190 2024年1月 査読有り最終著者責任著者
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International Journal of Plant Biology 2024年1月 査読有り
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Chemistry – A European Journal 29(8) e202203396 2023年2月7日 査読有り責任著者Foeniculoxin is a major phytotoxin produced by Italian strains of Phomopsis foeniculi. The first total synthesis is described utilizing the ene reaction and Sonogashira cross-coupling reaction as key steps. The absolute configuration of the C6' was determined using chiral separation and advanced Mosher's method. The phytotoxicity of the synthesized compound was demonstrated via syringe-based infiltration into Chenopodium album and Arabidopsis thaliana leaves. Synthetic foeniculoxin induced various defects in A. thaliana leaf cells before lesion formation, including protein leakage into the cytoplasm from both chloroplasts and mitochondria and mitochondrial rounding and swelling. Furthermore, foeniculoxin and the antibiotic hygromycin B caused similar agglomeration of mitochondria around chloroplasts, highlighting this event as a common component in the early stages of plant cell death.
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RIKEN Accelerator Progress Report 55 S30 2022年12月 査読有り最終著者責任著者
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RIKEN Accelerator Progress Report 54 178 2021年10月 査読有り最終著者責任著者
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Plant Journal 107(1) 237-255 2021年7月 査読有り最終著者
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Plants (Basel) 10(6) 1254-1254 2021年6月 査読有り最終著者責任著者
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Plants (Basel) 10(5) 848-848 2021年5月 査読有り最終著者責任著者Argon-ion beam is an effective mutagen capable of inducing a variety of mutation types. In this study, an argon ion-induced pale green mutant of Arabidopsis thaliana was isolated and characterized. The mutant, designated Ar50-33-pg1, exhibited moderate defects of growth and greening and exhibited rapid chlorosis in photosynthetic tissues. Fluorescence microscopy confirmed that mesophyll chloroplasts underwent substantial shrinkage during the chlorotic process. Genetic and whole-genome resequencing analyses revealed that Ar50-33-pg1 contained a large 940 kb deletion in chromosome V that encompassed more than 100 annotated genes, including 41 protein-coding genes such as TYRAAt1/TyrA1, EGY1, and MBD12. One of the deleted genes, EGY1, for a thylakoid membrane-localized metalloprotease, was the major contributory gene responsible for the pale mutant phenotype. Both an egy1 mutant and F1 progeny of an Ar50-33-pg1 × egy1 cross-exhibited chlorotic phenotypes similar to those of Ar50-33-pg1. Furthermore, ultrastructural analysis of mesophyll cells revealed that Ar50-33-pg1 and egy1 initially developed wild type-like chloroplasts, but these were rapidly disassembled, resulting in thylakoid disorganization and fragmentation, as well as plastoglobule accumulation, as terminal phenotypes. Together, these data support the utility of heavy-ion mutagenesis for plant genetic analysis and highlight the importance of EGY1 in the structural maintenance of grana in mesophyll chloroplasts.
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Frontiers in Plant Science 10 1665-1665 2020年1月 査読有り
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Frontiers in Plant Science 10 1403-1403 2019年10月 査読有り筆頭著者責任著者
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Physiologia Plantarum 162(4) 479-494 2018年4月 査読有り最終著者
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PLOS One 13(2) e0192380 2018年2月 査読有り筆頭著者責任著者
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RIKEN Accelerator Progress Report 50 272-272 2017年10月 査読有り
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Bioscience Biotechnology and Biochemistry 81(2) 271-282 2017年2月 査読有り
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Plant Signaling & Behavior 12(7) e1343776 2017年 査読有り筆頭著者責任著者
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Science Journal of Kanagawa University 27 67-71 2016年6月 査読有りIn the klebsormidiophyceae alga Klebsormidium flaccidum, massive oil body formation was detected by light microscopy and Nile Red fluorostaining after a two month or longer culture on agar plates containing inorganic ingredients and vitamins. While the oil bodies occupied most of the cytoplasm, chloroplasts heavily reduced their volume. However, electron microscopic observations revealed that the pyrenoids and thylakoid membranes were maintained. The marked numbers of oil bodies within the cells were tinged yellowish green in colour. Centrifugation (280,000 xg) of lysates of cells accumulating oil bodies resulted in an oil body-rich fraction at the top of the suspension. With containing virtually no thylakoid membranes, this fraction was coloured yellowish green. These observations suggest that the oil bodies, if not all, contain chlorophylls or its derivatives; nevertheless, the reduced chloroplasts still remained in the cells. This suggests that oil body production in K. flaccidum may concomitantly occur with the gradual reduction of chloroplasts.原著2015 年度神奈川大学総合理学研究所共同研究助成論文
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Frontiers in Plant Science 6 823-823 2015年10月 査読有り筆頭著者
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Cytologia 80(2) 131-131 2015年6月 査読有り筆頭著者責任著者
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PLoS ONE 10(3) 2015年3月 査読有り最終著者責任著者
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RIKEN Accelerator Progress Report 46 264-264 2013年11月 査読有り
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Plant Cell Reports 32(1) 11-19 2013年1月 査読有り
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G3-Genes Genomes Genetics 2(10) 1269-1278 2012年10月 査読有り
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Plant Signaling & Behavior 7(1) 34-7 2012年1月 査読有り筆頭著者責任著者Organelle dynamics in the plant male gametophyte has received attention for its importance in pollen tube growth and cytoplasmic inheritance. We recently revealed the dynamic behaviors of plastids in living Arabidopsis pollen grains and tubes, using an inherent promoter-driven FtsZ1-green fluorescent protein (GFP) fusion. Here, we further monitored the movement of pollen tube plastids with an actin1 promoter-driven, stroma-targeted yellow fluorescent protein (YFP). In elongating pollen tubes, most plastids localized to the tube shank, where they displayed either retarded and unsteady motion, or fast, directional, and long-distance movement along the tube polarity. Efficient plastid tracking further revealed a population of tip-forwarding plastids that undergo a fluctuating motion(s) before traveling backwards. The behavior of YFP-labeled plastids in pollen basically resembled that of FtsZ1-GFP-labeled plastids, thus validating the use of FtsZ1-GFP for simultaneous visualization of the stroma and the plastid-dividing FtsZ ring.
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Plant Signaling & Behavior 5(7) 856-9 2010年7月 査読有り最終著者
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Microbiology-SGM 156 1730-1737 2010年6月
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Protoplasma 242(1-4) 19-33 2010年6月 査読有り筆頭著者責任著者
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Physiologia Plantarum 139(2) 144-158 2010年6月 査読有り
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Archives of Microbiology 192(1) 23-31 2010年1月 査読有り
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Bioscience Biotechnology and Biochemistry 73(12) 2632-2639 2009年12月 査読有り
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Bioscience Biotechnology and Biochemistry 73(7) 1693-1697 2009年7月 査読有り筆頭著者責任著者
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Plant & Cell Physiology 50(6) 1116-1126 2009年6月 査読有り筆頭著者責任著者
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Plant & Cell Physiology 50(6) 1127-1141 2009年6月 査読有り
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Plant & Cell Physiology 50(5) 956-969 2009年5月 査読有り
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Plant & Cell Physiology 50(4) 773-788 2009年4月 査読有り
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In Adaptive gene regulations – from microorganisms to organelles 59-74 2008年12月 招待有り筆頭著者責任著者
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RIKEN Accelerator Progress Report 41 225 2008年9月 査読有り
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FEBS Journal 275(11) 2899-2918 2008年6月 査読有り
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Plant & Cell Physiology 49(3) 345-361 2008年3月 査読有り筆頭著者責任著者
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Genes & Genetic Systems 82(6) 555-555 2007年12月 査読有り
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Bioscience Biotechnology and Biochemistry 71(11) 2864-2869 2007年11月 査読有り
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FEBS Journal 274(8) 2054-2069 2007年4月 査読有り
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Molecular Biology and Evolution 24(3) 699-709 2007年3月 査読有り
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In Frontiers in Life Sciences 91-109 2006年7月 招待有り筆頭著者責任著者
書籍等出版物
4-
Research Signpost 2008年12月 (ISBN: 9788130802664)
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秀潤社 2006年4月 (ISBN: 4879622990)色素体核様体とFtsZリング
講演・口頭発表等
54共同研究・競争的資金等の研究課題
17-
日本学術振興会 科学研究費助成事業 2019年4月 - 2023年3月
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上智大学 学術研究特別推進費 自由課題研究 2018年4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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上智大学 理工学部応募制研究費 2015年6月 - 2016年3月