Updated on 2026/06/14

写真a

 
KOSAMI KENICHI
 
Organization
Undergraduate School School of Agriculture Assistant Professor (non-tenured)
Title
Assistant Professor (non-tenured)
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Research Interests

  • 空腹(栄養欠乏)ストレス

  • 鉄欠乏応答

  • 受容体キナーゼ

  • 環状ペプチド

  • ペプチドホルモン

  • 細胞間/器官間コミュニケーション

  • 構造生物学

  • カンキツ

  • イネ

  • ゲノム編集

  • 耐病性応答

  • かんきつかいよう病

  • いもち病

Research Areas

  • Life sciences / Applied biochemistry  / カンキツ イネ 耐病性応答 ゲノム編集技術

Education

  • Osaka University   Graduate School of Science   Department of Chemistry

    2010.4 - 2015.3

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    Country/Region: Japan

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  • Nara Institute of Science and Technology

    2008.4 - 2010.3

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    Country/Region: Japan

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  • Ehime University   Faculty of Science

    2004.4 - 2008.3

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Research History

  • Ehime Research Institute of Agriculture, Forestry and Fisheries, Fruit Tree Research Center   Researcher

    2020.5 - 2026.3

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    Country/Region:Japan

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  • 中国科学院   上海植物逆境生物学研究中心   博士研究員

    2015.4 - 2020.3

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    Country/Region:China

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  • Nara Institute of Science and Technology

    2014.4 - 2015.3

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    Country/Region:Japan

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  • Japan Society for the Promotion of Science

    2012.4 - 2014.3

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    Country/Region:Japan

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Professional Memberships

Papers

  • Verification of Rind Blemish Reduction in Field-Grown ‘Kara Mandarin’ through Gibberellin Spraying Reviewed

    Ken-Ichi Kosami, Hajime Ichiki2a, Hiroaki Ueda, Takuma Moriya, Hideyuki Matsumoto1c, Shinichiro Abe, Yukinori Shigematsu, Toshio Kondo, Tomoka Takahashi3e, Takehiro Kikuchi, Fumitaka Fujiwar

    Hort. Res. (Japan)   24 ( 3 )   257 - 263   2025.7

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    Authorship:Lead author, Corresponding author   Language:Japanese   Publishing type:Research paper (scientific journal)  

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  • An NLR paralog Pit2 generated from tandem duplication of Pit1 fine-tunes Pit1 localization and function. Reviewed International journal

    Yuying Li, Qiong Wang, Huimin Jia, Kazuya Ishikawa, Ken-Ichi Kosami, Takahiro Ueba, Atsumi Tsujimoto, Miki Yamanaka, Yasuyuki Yabumoto, Daisuke Miki, Eriko Sasaki, Yoichiro Fukao, Masayuki Fujiwara, Takako Kaneko-Kawano, Li Tan, Chojiro Kojima, Rod A Wing, Alfino Sebastian, Hideki Nishimura, Fumi Fukada, Qingfeng Niu, Motoki Shimizu, Kentaro Yoshida, Ryohei Terauchi, Ko Shimamoto, Yoji Kawano

    Nature communications   15 ( 1 )   4610 - 4610   2024.5

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    Language:English   Publishing type:Research paper (scientific journal)  

    NLR family proteins act as intracellular receptors. Gene duplication amplifies the number of NLR genes, and subsequent mutations occasionally provide modifications to the second gene that benefits immunity. However, evolutionary processes after gene duplication and functional relationships between duplicated NLRs remain largely unclear. Here, we report that the rice NLR protein Pit1 is associated with its paralogue Pit2. The two are required for the resistance to rice blast fungus but have different functions: Pit1 induces cell death, while Pit2 competitively suppresses Pit1-mediated cell death. During evolution, the suppression of Pit1 by Pit2 was probably generated through positive selection on two fate-determining residues in the NB-ARC domain of Pit2, which account for functional differences between Pit1 and Pit2. Consequently, Pit2 lost its plasma membrane localization but acquired a new function to interfere with Pit1 in the cytosol. These findings illuminate the evolutionary trajectory of tandemly duplicated NLR genes after gene duplication.

    DOI: 10.1038/s41467-024-48943-5

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  • Three highly conserved hydrophobic residues in the predicted α2-helix of rice NLR protein Pit contribute to its localization and immune induction. Reviewed International journal

    Qiong Wang, Yuying Li, Ken-Ichi Kosami, Chaochao Liu, Jing Li, Dan Zhang, Daisuke Miki, Yoji Kawano

    Plant, cell & environment   45 ( 6 )   1876 - 1890   2022.6

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    Nucleotide-binding leucine-rich repeat (NLR) proteins work as crucial intracellular immune receptors. N-terminal domains of NLRs fall into two groups, coiled-coil (CC) and Toll-interleukin 1 receptor domains, which play critical roles in signal transduction and disease resistance. However, the activation mechanisms of NLRs, and how their N-termini function in immune induction, remain largely unknown. Here, we revealed that the CC domain of a rice NLR Pit contributes to self-association. The Pit CC domain possesses three conserved hydrophobic residues that are known to be involved in oligomer formation in two NLRs, barley MLA10 and Arabidopsis RPM1. Interestingly, the function of these residues in Pit differs from that in MLA10 and RPM1. Although three hydrophobic residues are important for Pit-induced disease resistance against rice blast fungus, they do not participate in self-association or binding to downstream signalling molecules. By homology modelling of Pit using the Arabidopsis ZAR1 structure, we tried to clarify the role of three conserved hydrophobic residues and found that they are located in the predicted α2-helix of the Pit CC domain and involved in the plasma membrane localization. Our findings provide novel insights for understanding the mechanisms of NLR activation as well as the relationship between subcellular localization and immune induction.

    DOI: 10.1111/pce.14315

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  • The Small GTPase OsRac1 Forms Two Distinct Immune Receptor Complexes Containing the PRR OsCERK1 and the NLR Pit. Reviewed

    Akira Akamatsu, Masayuki Fujiwara, Satoshi Hamada, Megumi Wakabayashi, Ai Yao, Qiong Wang, Ken-Ichi Kosami, Thu Thi Dang, Takako Kaneko-Kawano, Fumi Fukada, Ko Shimamoto, Yoji Kawano

    Plant & cell physiology   62 ( 11 )   1662 - 1675   2021.12

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    Plants employ two different types of immune receptors, cell surface pattern recognition receptors (PRRs) and intracellular nucleotide-binding and leucine-rich repeat-containing proteins (NLRs), to cope with pathogen invasion. Both immune receptors often share similar downstream components and responses but it remains unknown whether a PRR and an NLR assemble into the same protein complex or two distinct receptor complexes. We have previously found that the small GTPase OsRac1 plays key roles in the signaling of OsCERK1, a PRR for fungal chitin, and of Pit, an NLR for rice blast fungus, and associates directly and indirectly with both of these immune receptors. In this study, using biochemical and bioimaging approaches, we revealed that OsRac1 formed two distinct receptor complexes with OsCERK1 and with Pit. Supporting this result, OsCERK1 and Pit utilized different transport systems for anchorage to the plasma membrane (PM). Activation of OsCERK1 and Pit led to OsRac1 activation and, concomitantly, OsRac1 shifted from a small to a large protein complex fraction. We also found that the chaperone Hsp90 contributed to the proper transport of Pit to the PM and the immune induction of Pit. These findings illuminate how the PRR OsCERK1 and the NLR Pit orchestrate rice immunity through the small GTPase OsRac1.

    DOI: 10.1093/pcp/pcab121

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  • Roles of DEMETER in regulating DNA methylation in vegetative tissues and pathogen resistance. Reviewed International journal

    Wenjie Zeng, Huan Huang, Xueqiang Lin, Chen Zhu, Ken-Ichi Kosami, Chaofeng Huang, Huiming Zhang, Cheng-Guo Duan, Jian-Kang Zhu, Daisuke Miki

    Journal of integrative plant biology   63 ( 4 )   691 - 706   2021.4

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    DNA methylation is an epigenetic mark important for genome stability and gene expression. In Arabidopsis thaliana, the 5-methylcytosine DNA glycosylase/demethylase DEMETER (DME) controls active DNA demethylation during the reproductive stage; however, the lethality of loss-of-function dme mutations has made it difficult to assess DME function in vegetative tissues. Here, we edited DME using clustered regularly interspaced short palindromic repeats (CRISPR) /CRISPR-associated protein 9 and created three weak dme mutants that produced a few viable seeds. We also performed central cell-specific complementation in a strong dme mutant and combined this line with mutations in the other three Arabidopsis demethylase genes to generate the dme ros1 dml2 dml3 (drdd) quadruple mutant. A DNA methylome analysis showed that DME is required for DNA demethylation at hundreds of genomic regions in vegetative tissues. A transcriptome analysis of the drdd mutant revealed that DME and the other three demethylases are important for plant responses to biotic and abiotic stresses in vegetative tissues. Despite the limited role of DME in regulating DNA methylation in vegetative tissues, the dme mutants showed increased susceptibility to bacterial and fungal pathogens. Our study highlights the important functions of DME in vegetative tissues and provides valuable genetic tools for future investigations of DNA demethylation in plants.

    DOI: 10.1111/jipb.13037

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  • Identification of endogenous small peptides involved in rice immunity through transcriptomics- and proteomics-based screening. Reviewed International journal

    Pingyu Wang, Shaolun Yao, Ken-Ichi Kosami, Ting Guo, Jing Li, Yuanyuan Zhang, Yoichiro Fukao, Takako Kaneko-Kawano, Heng Zhang, Yi-Min She, Pengcheng Wang, Weiman Xing, Kousuke Hanada, Renyi Liu, Yoji Kawano

    Plant biotechnology journal   18 ( 2 )   415 - 428   2020.2

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    Small signalling peptides, generated from larger protein precursors, are important components to orchestrate various plant processes such as development and immune responses. However, small signalling peptides involved in plant immunity remain largely unknown. Here, we developed a pipeline using transcriptomics- and proteomics-based screening to identify putative precursors of small signalling peptides: small secreted proteins (SSPs) in rice, induced by rice blast fungus Magnaporthe oryzae and its elicitor, chitin. We identified 236 SSPs including members of two known small signalling peptide families, namely rapid alkalinization factors and phytosulfokines, as well as many other protein families that are known to be involved in immunity, such as proteinase inhibitors and pathogenesis-related protein families. We also isolated 52 unannotated SSPs and among them, we found one gene which we named immune response peptide (IRP) that appeared to encode the precursor of a small signalling peptide regulating rice immunity. In rice suspension cells, the expression of IRP was induced by bacterial peptidoglycan and fungal chitin. Overexpression of IRP enhanced the expression of a defence gene, PAL1 and induced the activation of the MAPKs in rice suspension cells. Moreover, the IRP protein level increased in suspension cell medium after chitin treatment. Collectively, we established a simple and efficient pipeline to discover SSP candidates that probably play important roles in rice immunity and identified 52 unannotated SSPs that may be useful for further elucidation of rice immunity. Our method can be applied to identify SSPs that are involved not only in immunity but also in other plant functions.

    DOI: 10.1111/pbi.13208

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  • Resistance protein Pit interacts with the GEF OsSPK1 to activate OsRac1 and trigger rice immunity. Reviewed International journal

    Qiong Wang, Yuying Li, Kazuya Ishikawa, Ken-Ichi Kosami, Kazumi Uno, Shingo Nagawa, Li Tan, Jiamu Du, Ko Shimamoto, Yoji Kawano

    Proceedings of the National Academy of Sciences of the United States of America   115 ( 49 )   E11551-E11560   2018.12

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    Resistance (R) genes encode intracellular nucleotide-binding/leucine-rich repeat-containing (NLR) family proteins that serve as critical plant immune receptors to induce effector-triggered immunity (ETI). NLR proteins possess a tripartite domain architecture consisting of an N-terminal variable region, a central nucleotide-binding domain, and a C-terminal leucine-rich repeat. N-terminal coiled-coil (CC) or Toll-interleukin 1 receptor (TIR) domains of R proteins appear to serve as platforms to trigger immune responses, because overexpression of the CC or TIR domain of some R proteins is sufficient to induce an immune response. Because direct downstream signaling molecules of R proteins remain obscure, the molecular mechanisms by which R proteins regulate downstream signaling are largely unknown. We reported previously that a rice R protein named Pit triggers ETI through a small GTPase, OsRac1, although how Pit activates OsRac1 is unclear. Here, we identified OsSPK1, a DOCK family guanine nucleotide exchange factor, as an interactor of Pit and activator for OsRac1. OsSPK1 contributes to signaling by two disease-resistance genes, Pit and Pia, against the rice blast fungus Magnaporthe oryzae and facilitates OsRac1 activation in vitro and in vivo. The CC domain of Pit is required for its binding to OsSPK1, OsRac1 activation, and the induction of cell death. Overall, we conclude that OsSPK1 is a direct and key signaling target of Pit-mediated immunity. Our results shed light on how R proteins trigger ETI through direct downstream molecules.

    DOI: 10.1073/pnas.1813058115

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  • In vivo monitoring of plant small GTPase activation using a Förster resonance energy transfer biosensor. Reviewed International journal

    Hann Ling Wong, Akira Akamatsu, Qiong Wang, Masayuki Higuchi, Tomonori Matsuda, Jun Okuda, Ken-Ichi Kosami, Noriko Inada, Tsutomu Kawasaki, Takako Kaneko-Kawano, Shingo Nagawa, Li Tan, Yoji Kawano, Ko Shimamoto

    Plant methods   14   56 - 56   2018

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    BACKGROUND: Small GTPases act as molecular switches that regulate various plant responses such as disease resistance, pollen tube growth, root hair development, cell wall patterning and hormone responses. Thus, to monitor their activation status within plant cells is believed to be the key step in understanding their roles. RESULTS: We have established a plant version of a Förster resonance energy transfer (FRET) probe called Ras and interacting protein chimeric unit (Raichu) that can successfully monitor activation of the rice small GTPase OsRac1 during various defence responses in cells. Here, we describe the protocol for visualizing spatiotemporal activity of plant Rac/ROP GTPase in living plant cells, transfection of rice protoplasts with Raichu-OsRac1 and acquisition of FRET images. CONCLUSIONS: Our protocol should be adaptable for monitoring activation for other plant small GTPases and protein-protein interactions for other FRET sensors in various plant cells.

    DOI: 10.1186/s13007-018-0325-4

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  • The crystal structure of the plant small GTPase OsRac1 reveals its mode of binding to NADPH oxidase. Reviewed International journal

    Ken-ichi Kosami, Izuru Ohki, Minoru Nagano, Kyoko Furuita, Toshihiko Sugiki, Yoji Kawano, Tsutomu Kawasaki, Toshimichi Fujiwara, Atsushi Nakagawa, Ko Shimamoto, Chojiro Kojima

    The Journal of biological chemistry   289 ( 41 )   28569 - 78   2014.10

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    Rac/Rop proteins are Rho-type small GTPases that act as molecular switches in plants. Recent studies have identified these proteins as key components in many major plant signaling pathways, such as innate immunity, pollen tube growth, and root hair formation. In rice, the Rac/Rop protein OsRac1 plays an important role in regulating the production of reactive oxygen species (ROS) by the NADPH oxidase OsRbohB during innate immunity. However, the molecular mechanism by which OsRac1 regulates OsRbohB remains unknown. Here, we report the crystal structure of OsRac1 complexed with the non-hydrolyzable GTP analog guanosine 5'-(β,γ-imido)triphosphate at 1.9 Å resolution; this represents the first active-form structure of a plant small GTPase. To elucidate the ROS production in rice cells, structural information was used to design OsRac1 mutants that displayed reduced binding to OsRbohB. Only mutations in the OsRac1 Switch I region showed attenuated interactions with OsRbohB in vitro. In particular, Tyr(39) and Asp(45) substitutions suppressed ROS production in rice cells, indicating that these residues are critical for interaction with and activation of OsRbohB. Structural comparison of active-form OsRac1 with AtRop9 in its GDP-bound inactive form showed a large conformational difference in the vicinity of these residues. Our results provide new insights into the molecular mechanism of the immune response through OsRac1 and the various cellular responses associated with plant Rac/Rop proteins.

    DOI: 10.1074/jbc.M114.603282

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  • Purification, crystallization and preliminary X-ray crystallographic analysis of a rice Rac/Rop GTPase, OsRac1. Reviewed International journal

    Ken-ichi Kosami, Izuru Ohki, Kokoro Hayashi, Ryo Tabata, Sayaka Usugi, Tsutomu Kawasaki, Toshimichi Fujiwara, Atsushi Nakagawa, Ko Shimamoto, Chojiro Kojima

    Acta crystallographica. Section F, Structural biology communications   70 ( Pt 1 )   113 - 5   2014.1

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    Small GTPases regulate a large variety of key cellular processes. Plant small Rac/Rop GTPases have recently received broad attention as it is becoming clear that these enzymes regulate various plant cellular processes. OsRac1, a rice Rac/Rop protein, is a key regulator of reactive oxygen species (ROS) production and induces immune responses. Although four structures of plant small GTPases have been reported, all of these were of the inactive form. Here, OsRac1 was purified and co-crystallized with the GTP analogue 5'-guanylyl imidodiphosphate (GMPPNP). The crystal belonged to space group P2(1)2(1)2(1) and a complete data set was collected to 1.9 Å resolution.

    DOI: 10.1107/S2053230X13033645

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MISC

  • イネ低分子量G蛋白質OsRac1の結晶構造解析と変異体デザインによるNADPHオキシダーゼOsRbohB制御機構の解明

    小佐見謙一, 大木出, 長野稔, 林こころ, 田畑亮, 薄衣砂弥香, 川崎努, 中川敦史, 藤原敏道, 島本功, 児嶋長次郎, 児嶋長次郎

    日本分子生物学会年会プログラム・要旨集(Web)   35th   2012

  • イネの自然免疫応答に関わる蛋白質,OsRac1の構造学的解析

    小佐見謙一, 大木出, 林こころ, 田畑亮, 薄衣砂弥香, 川崎努, 川崎努, 中川敦史, 藤原敏道, 島本功, 児嶋長次郎, 児嶋長次郎

    日本植物生理学会年会要旨集   53rd   2012

  • 植物の自然免疫応答に関わる低分子量G蛋白質の構造学的解析

    小佐見謙一, 大木出, 林こころ, 田畑亮, 薄衣砂弥香, 川崎努, 中川敦史, 藤原敏道, 島本功, 児嶋長次郎, 児嶋長次郎

    日本蛋白質科学会年会プログラム・要旨集   11th   2011

  • イネの自然免疫応答に関わる低分子G蛋白質OsRac1の構造解析

    小佐見謙一, 大木出, 林こころ, 田畑亮, 薄衣砂弥香, 川崎努, 川崎努, 中川敦史, 藤原敏道, 島本功, 児嶋長次郎, 児嶋長次郎

    日本分子生物学会年会プログラム・要旨集(Web)   34th   2011

  • NMRデータに基づいたGFPの自己会合の抑制

    小佐見謙一, 小佐見謙一, 古板恭子, 古板恭子, 児嶋長次郎, 児嶋長次郎

    日本分光学会年次講演会   2010   2010

  • 緑色蛍光蛋白質GFPの自己会合に関するNMR研究

    小佐見謙一, 児嶋長次郎

    日本蛋白質科学会年会プログラム・要旨集   9th   2009

  • 緑色蛍光蛋白質GFPの自己会合とその抑制変異体のNMR解析

    小佐見謙一, 古板恭子, 児嶋長次郎

    Abstracts. Annual Meeting of the NMR Society of Japan   48th   2009

  • ショウジョウバエの寄生蜂Asobara japonicaの地理的分化と性決定の要因

    和多田正義, 井手尾進介, 小佐見謙一

    日本動物学会大会予稿集   79th   2008

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Research Projects

  • 噴霧接種応答を指標としたカンキツかいよう病抵抗性座位の同定

    Grant number:26K08764  2026.4 - 2029.3

    日本学術振興会  科学研究費助成事業  基盤研究(C)

    小佐見 謙一

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    Grant amount:\4550000 ( Direct Cost: \3500000 、 Indirect Cost:\1050000 )

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  • カンキツの育種年限短縮に向けた DNA メチル化による形質改変技術の開発

    2023.6 - 2024.2

    公益財団法人えひめ産業振興財団  令和5年度公設試験研究機関発起業化シーズ育成支援事業 

    小佐見謙一

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    Authorship:Principal investigator  Grant type:Competitive

    Grant amount:\800000 ( Direct Cost: \800000 )

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  • 時間変調プラズマによる植物細胞の細胞壁除去と分子導入の同時制御技術に関する研究

    Grant number:23K25862  2023.4 - 2027.3

    日本学術振興会  科学研究費助成事業  基盤研究(B)

    池田 善久, 八丈野 孝, 神野 雅文, 岡本 充智, 小佐見 謙一, 本村 英樹, 賀屋 秀隆

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    Grant amount:\18720000 ( Direct Cost: \14400000 、 Indirect Cost:\4320000 )

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  • ゲノム編集を利用した単胚性温州みかん「南柑 20 号」の開発

    2022.6 - 2023.2

    公益財団法人えひめ産業振興財団  令和4年度公設試験研究機関発起業化シーズ育成支援事業 

    小佐見謙一

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    Authorship:Principal investigator  Grant type:Competitive

    Grant amount:\800000 ( Direct Cost: \800000 )

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  • 植物免疫システムの構造生物学

    Grant number:12J01560  2012 - 2013

    日本学術振興会  科学研究費助成事業  特別研究員奨励費

    小佐見 謙一

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    Grant amount:\1800000 ( Direct Cost: \1800000 )

    「イネの病気に対する抵抗性反応を誘導する分子機構の理解」は、作物が持っている病気に対する耐病性機能の強化、病害の軽減、作物の収量の増加に繋がる。そこで本研究ではイネの病気に対する低抗性反応を誘導するメカニズムの解明する事を目的にしている。
    本研究では昨年度に引き続き(i)イネの病気に対する抵抗性反応を制御していると考えられる蛋白質の立体構造決定(ii)蛋白質・蛋白質相互作用の解析をx線結晶構造解析やNMR、生化学的な手法を用いて行った。
    平成25年度の実施状況は以下の通り。(i)のOsRac1の結晶化に関する論文を完成させ、発表した。また、(ii)では昨年度に得られたOsRac1とイネの活性酸素を産生するNADPHオキシダーゼであるOsRbohBとの相互作用実験の結果と(i)で得られたOsRac1の結晶構造決定の結果を合わせて、論文を執筆し、投稿した。
    また、これまでの研究からR蛋白質の一つであるMLA10のCCドメインのdimer形成がR蛋白質による抵抗性反応の誘導に重要であることが報告されている(Cell Host Microbe 9 : 187-199, 2010)。そこでイネのR蛋白質であるPitのCCドメインもMLA10と同様にdimerを形成するかを生化学的な実験を用いて確認した。実験を行う為に、まずPitのCCドメインの発現系の構築を行い、大腸菌を用いて大量に発現する系の構築に成功した。さらに、蛋白質の精製にも成功し、PitのCCドメインがdimerを形成する事を確認した。
    さらに奈良先端科学技術大学院大学の植物遺伝学研究室において、OsRac1と相互作用する蛋白質の候補としてglyceraldehyde-3-phosphate dehydrogenase (GAPDH)が同定された。そこでGAPDHがOsRac1と相互作用するかを確認する為、GAPDHの大腸菌での大量発現系の構築を行い、高純度で精製することに成功した。加えて、GSTを用いたpull-dawn assayの結果、OsRac1がGAPDHと相互作用する事を確認した。

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Academic Activities

  • Review Editor /Frontiers in Plant Science

    Role(s): Peer review

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    Type:Peer review 

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