Curriculum Vitaes
Profile Information
- Affiliation
- Senior Assistant Professor, Center for Medical Science, Fujita Health University
- Degree
- Ph.D.(The University of Tokyo)
- Contact information
- hkeisuke
fujita-hu.ac.jp - Researcher number
- 10508469
- ORCID ID
https://orcid.org/0000-0002-7300-5238- J-GLOBAL ID
- 200901097490734327
- researchmap Member ID
- 6000011163
- External link
The role of ncRNA (microRNA and lncRNA) and enzymes (DUB etc) in skeletal muscle differentiation, hypertrophy, and atrophy.
Research Interests
18Research Areas
3Research History
4Committee Memberships
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Jun, 2023 - Present
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Jan, 2021 - Present
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Sep, 2020 - Present
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Apr, 2020 - Present
Awards
5Papers
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Oxygen, 5(2) 4, Apr 18, 2025 Peer-reviewed
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Cells, 14(7), Apr 3, 2025 Peer-reviewedThe role of a simulated microgravity environment on soybean growth was investigated. The root grew more under simulated microgravity conditions than in the presence of gravity. However, root shortening due to salt stress did not occur in simulated microgravity conditions. To reveal these mechanisms by simulated microgravity environment on soybean root, a proteomic analysis was conducted. Proteomic analysis revealed that among 1547 proteins, the abundances of proteins related to phytohormone, oxidative stress, ubiquitin/proteasome system, cell organization, and cell wall organization were altered under stimulated microgravity compared with gravity. Membrane-localized proteins and redox-related proteins were inversely correlated in protein numbers due to salt stress under gravity and the simulated microgravity condition. Proteins identified by proteomics were validated for protein accumulation by immunoblot analysis. Superoxide dismutase and ascorbate peroxidases, which are reactive oxygen species-scavenging proteins, increased in soybean root under salt stress but not in the simulated microgravity conditions even under stress. The accumulation of 45 kDa aquaporin and 70 kDa calnexin in soybean root under salt stress were increased in the simulated microgravity conditions compared to gravity. These findings suggest that soybean growth under salt stress may be regulated through improved water permeability, mitigation of reactive oxygen species production, and restoration of protein folding under simulated microgravity conditions.
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Journal of Proteome Data and Methods, 7 2, Apr, 2025 Peer-reviewedLead authorCorresponding author
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Protein-Based Mechanism of Wheat Growth Under Salt Stress in Seeds Irradiated with Millimeter Waves.International journal of molecular sciences, 26(1) 253, Dec 30, 2024 Peer-reviewedWheat is one of the most extensively grown crops in the world; however, its productivity is reduced due to salinity. This study focused on millimeter wave (MMW) irradiation to clarify the salt-stress tolerance mechanism in wheat. In the present study, wheat-root growth, which was suppressed to 77.6% of the control level under salt stress, was recovered to the control level by MMW irradiation. To reveal the salt-stress tolerance mechanism of MMW irradiation on wheat, a proteomic analysis was conducted. Proteins related to cell cycle, proliferation, and transport in biological processes, as well as proteins related to the nucleus, cytoskeleton, and cytoplasm within cellular components, were inversely correlated with the number of proteins. The results of the proteomic analysis were verified by immunoblot and other analyses. Among the proteins related to the scavenging reactive-oxygen species, superoxide dismutase and glutathione reductase accumulated under salt stress and further increased in the MMW-irradiated wheat. Among pathogen-related proteins, pathogenesis-related protein 1 and the Bowman-Birk proteinase inhibitor decreased under salt stress and recovered to the control level in the MMW-irradiated wheat. The present results indicate that MMW irradiation of wheat seeds improves plant-growth recovery from salt stress through regulating the reactive oxygen species-scavenging system and the pathogen-related proteins. These genes may contribute to the development of salt-stress-tolerant wheat through marker-assisted breeding and genome editing.
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International journal of molecular sciences, 25(15), Jul 27, 2024 Peer-reviewedSalt stress is a serious problem, because it reduces the plant growth and seed yield of wheat. To investigate the salt-tolerant mechanism of wheat caused by plant-derived smoke (PDS) solution, metabolomic and proteomic techniques were used. PDS solution, which repairs the growth inhibition of wheat under salt stress, contains metabolites related to flavonoid biosynthesis. Wheat was treated with PDS solution under salt stress and proteins were analyzed using a gel-free/label-free proteomic technique. Oppositely changed proteins were associated with protein metabolism and signal transduction in biological processes, as well as mitochondrion, endoplasmic reticulum/Golgi, and plasma membrane in cellular components with PDS solution under salt stress compared to control. Using immuno-blot analysis, proteomic results confirmed that ascorbate peroxidase increased with salt stress and decreased with additional PDS solution; however, H+-ATPase displayed opposite effects. Ubiquitin increased with salt stress and decreased with additional PDS solution; nevertheless, genomic DNA did not change. As part of mitochondrion-related events, the contents of ATP increased with salt stress and recovered with additional PDS solution. These results suggest that PDS solution enhances wheat growth suppressed by salt stress through the regulation of energy metabolism and the ubiquitin-proteasome system related to flavonoid metabolism.
Misc.
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Biomedical Advances, Jul, 2017 InvitedEditors' Picks in Musculoskeletal Disorder, 2017 #9
Books and Other Publications
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The Chemical Biology of Long Noncoding RNAs. RNA Technologies, vol 11. Springer, Cham., Oct, 2020 (ISBN: 9783030447427)
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Myostatin: Structure, Role in Muscle Development and Health Implications. Nova Science publishers, 2016 (ISBN: 9781634852487)
Presentations
75Teaching Experience
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アセンブリII (実験分子医学研究 Nature を読んでみよう) (藤田医科大学)
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生命科学総合講義I (明治大学)
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医学セミナー (藤田保健衛生大学)
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アセンブリⅡ(サイエンスカフェ) (藤田保健衛生大学)
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アセンブリⅠ(インターネットチュートリアル) (藤田保健衛生大学)
Research Projects
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科学研究費助成事業, 日本学術振興会, Apr, 2025 - Mar, 2029
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科学研究費助成事業, 日本学術振興会, Apr, 2024 - Mar, 2027
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科学研究費助成事業, 日本学術振興会, Jun, 2024 - Mar, 2027
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科学研究費助成事業, 日本学術振興会, Apr, 2023 - Mar, 2026
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2024年度 医学系研究奨励, 公益財団法人 武田科学振興財団, Jul, 2024 - Mar, 2026
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2022年度創発的研究支援事業, 国立研究開発法人 科学技術振興機構, Apr, 2023 - Mar, 2026
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令和6年度調査研究助成, 公益財団法人 鈴木謙三記念医科学応用研究財団, Dec, 2024 - Dec, 2025
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科学研究費助成事業 基盤研究(C), 日本学術振興会, Apr, 2022 - Mar, 2025
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (C), Japan Society for the Promotion of Science, Apr, 2020 - Mar, 2023
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (B), Japan Society for the Promotion of Science, Apr, 2019 - Mar, 2023
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2020年度 医学系研究継続助成, 公益財団法人 武田科学振興財団, Nov, 2020 - Nov, 2022
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2021年度 酵素研究助成, 公益財団法人 日本応用酵素協会, May, 2021 - Sep, 2022
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Grants-in-Aid for Scientific Research, Japan Society for the Promotion of Science, Apr, 2019 - Mar, 2022
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2019年度持田記念研究助成, 公益財団法人 持田記念医学薬学振興財団, Dec, 2019 - Dec, 2020
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平成29年度(第30回)研究助成, 公益財団法人 中冨健康科学振興財団, Mar, 2018 - Mar, 2020
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (C), Japan Society for the Promotion of Science, Apr, 2017 - Mar, 2020
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第35回(2018年度)日東学術振興財団研究助成, 公益財団法人 日東学術振興財団, 2019 - 2020
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (C), Japan Society for the Promotion of Science, Apr, 2016 - Mar, 2019
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2017 年度 医学系研究奨励, 公益財団法人 武田科学振興財団, 2017 - 2019
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平成26年度(第24回)研究助成, 公益財団法人 堀科学芸術振興財団, Apr, 2015 - Apr, 2016
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Grants-in-Aid for Scientific Research Grant-in-Aid for Young Scientists (B), Japan Society for the Promotion of Science, Apr, 2013 - Mar, 2016
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平成26年度 国際交流(研究集会)援助, 公益財団法人 ライフサイエンス振興財団, Jul, 2014 - Jul, 2014
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平成24年度(第25回)研究助成, 公益財団法人 中冨健康科学振興財団, 2013 - 2014
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Grants-in-Aid for Scientific Research Grant-in-Aid for Young Scientists (B), Japan Society for the Promotion of Science, 2011 - 2012
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平成22年度 横山臨床薬理研究助成, 財団法人 横山臨床薬理研究助成基金, 2010 - 2011
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (C), Japan Society for the Promotion of Science, 2009 - 2011
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平成18年度東京大学学術研究活動等奨励事業(国外)による学術奨励費, 東京大学, 2006
Industrial Property Rights
1Academic Activities
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Planning, Management, etc., Panel moderator, Session chair, etc.The 47th annual meeting of the Molecular Biology Society of Japan (MBSJ), Nov 29, 2024
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Planning, Management, etc., Panel moderator, Session chair, etc.AOMC-JMS 2024, Sep 13, 2024 - Sep 13, 2024
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Planning, Management, etc., Panel moderator, Session chair, etc.The 46th annual meeting of the Molecular Biology Society of Japan (MBSJ), Dec 7, 2023
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Planning, Management, etc., Panel moderator, Session chair, etc.The 45th annual meeting of the Molecular Biology Society of Japan (MBSJ), Nov 30, 2022
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Planning, Management, etc., Panel moderator, Session chair, etc.The 44th annual meeting of the Molecular Biology Society of Japan (MBSJ), Dec 1, 2021
Social Activities
4Media Coverage
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EurekAlert!, Dec, 2022 Internet
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EurekAlert!, Mar, 2022 Internet
Other
1その他教育活動上特記すべき事項
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件名(英語)2020年 アセンブリ2活動開始年月日(英語)2020/04/01終了年月日(英語)2020/11/30
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件名(英語)2020年度 医学部医学研究演習開始年月日(英語)2020/02/03終了年月日(英語)2021/02/26
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件名(英語)2019年 医療科学部卒業研究指導開始年月日(英語)2019/06/01終了年月日(英語)2019/10/20
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件名(英語)2018年 医療科学部卒業研究指導概要(英語)「ヒトMettl21e相同遺伝子が偽遺伝子に変化した要因の同定」
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件名(英語)藤田保健衛生大学医学部FD講演会概要(英語)「良い講義について ~殿堂入りした教員が教える講義の秘訣~」参加
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件名(英語)藤田保健衛生大学大学院保健学研究科FD研修講演会概要(英語)「鳥取大学医学部における産学連携教育"発明楽"による発想力育成教育の実践」に参加
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件名(英語)2018年 アセンブリ2活動概要(英語)サイエンスカフェ
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件名(英語)2017年 医療科学部卒業研究指導概要(英語)「定量的RT-PCRを用いた骨格筋の肥大・萎縮時における長鎖非コードRNAの発現変動 の解析」
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件名(英語)2017年 医療科学部卒業研究指導概要(英語)「骨格筋細胞を用いた筋量調節に関わる脱ユビキチン化酵素の探索」
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件名(英語)2017年 アセンブリ2活動概要(英語)サイエンスカフェ
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件名(英語)2016年 藤田保健衛生大学総医研・最先端医学研究セミナー・大学院医学研究科医学セミナー概要(英語)転写調節領域由来長鎖ノンコーディングRNAを介した遺伝子発現制御機構の解析
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件名(英語)2016年 アセンブリ1活動概要(英語)インターネットチュートリアル
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件名(英語)2016年 医療科学部卒業研究指導2名概要(英語)「骨格筋の肥大・萎縮における長鎖ノンコーディングRNAの発現探索」
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件名(英語)2016年 基礎医学体験実習指導2名概要(英語)実験の指導
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件名(英語)2015年 医療科学部卒業研究指導2名概要(英語)「医学応用を目指した骨格筋の肥大・萎縮制御に関わる有用分泌因子の探索」
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件名(英語)2015年 アセンブリ1活動概要(英語)インターネットチュートリアル
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件名(英語)藤田保健衛生大学医療科学部第2回FD講演会終了年月日(英語)2015/06/02概要(英語)「高大連結の状況について」に参加
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件名(英語)2014年 サマースチューデント指導概要(英語)医学部大学院生の研究指導
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件名(英語)2014年 基礎医学体験実習指導概要(英語)実験の指導
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件名(英語)2014年 藤田保健衛生大学大学院医学研究科・医学セミナー概要(英語)骨格筋細胞の分化における長鎖非コードRNAによる転写調節機構の解析