Details of the Researcher

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Kota Noritsugu
Section
Graduate School of Pharmaceutical Sciences
Job title
Assistant Professor
Profile

早稲田大学 先進理工学部 化学・生命化学科卒業
早稲田大学大学院 先進理工学研究科 化学・生命化学専攻修士課程修了
理化学研究所 吉田化学遺伝学研究室 研修生
東京大学大学院 農学生命科学研究科 応用生命工学専攻 博士課程修了
東京薬科大学 生命科学部 細胞情報科学研究室 特定助教
東北大学大学院薬学研究科 生命薬学専攻 代謝制御薬学分野 助教

Research History 2

  • 2025/09 - Present
    Tohoku University Graduate School of Pharmaceutical Sciences Division of Bio-Pharmaceutical Science Assistant Professor

  • 2019/04 - 2025/08
    Tokyo University of Pharmacy and Life Sciences Laboratory of cell signaling Postdoc

Education 3

  • The University of Tokyo Department of Biotechnology Department of Biotechnology

    2016/04 - 2019/03

  • Waseda university School of Advanced Science and Engineering Department of Chemistry and Biochemistry

    2014/04 - 2016/03

  • Waseda University School of Advanced Science and Engineering

    2010/04 - 2014/03

Professional Memberships 6

  • 日本毒性学会

    2024/04 - Present

  • 日本生化学会

    2023/06 - Present

  • 日本エピジェネティクス研究会

    2022/05 - Present

  • 日本がん分子標的治療学会

    2021/02 - Present

  • JAPAN SOCIETY FOR BIOSCIENCE, BIOTECHNOLOGY, AND AGROCHEMISTRY

    2017/03 - Present

  • THE MOLECULAR BIOLOGY SOCIETY OF JAPAN

    2015/07 - Present

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Research Interests 10

  • Epigenetics

  • Lysine acylation

  • palmitoylation

  • acetylation

  • Chemical biology

  • Biological chemistry

  • Molecular cell biology

  • Molecular biology

  • long-chain fatty acylation

  • posttranslational modifications

Research Areas 2

  • Life sciences / Cell biology /

  • Life sciences / Molecular biology /

Awards 4

  1. 2024年度「理研桜舞賞」

    2025/03 理化学研究所 リジン長鎖アシル化修飾による新規転写調節機構の解明

  2. POSTER AWARD 3rd Place

    2024/08 FASEB Science Research Conference (SRC) Novel histone lysine acylation derived from sorbic acid

  3. 優秀演題賞

    2021/05 日本がん分子標的治療学会 転写因子TEADの転写活性を制御する新規翻訳後修飾リジン長鎖アシル化の解析

  4. 研究奨励賞

    2018/10 化学生物学研究会

Papers 6

  1. HDAC1 and HDAC2 are bidirectional enzymes that catalyze histone sorbylation to induce epigenetic alterations

    Akihiro Ito, Kota Noritsugu, Yuki Shimizu, Takehiro Suzuki, Komei Aoki, Tamiko Nozaki, Shigehiro Kawashima, Masaya Yamazaki, Kazuya Yamagata, Kota Koike, Kosuke Dodo, Kenji Ogawa, Mikiko Sodeoka, Minoru Yoshida, Naoshi Dohmae, Yoshito Kumagai

    Research Square 2025/01/31

    Publisher: Springer Science and Business Media LLC

    DOI: 10.21203/rs.3.rs-5847857/v1  

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    Abstract <p>Reversible histone acylation is crucial for epigenetic gene expression regulation. Histone acylation is typically mediated by lysine acyltransferases (KATs), which use acyl-CoAs as acyl donors. Here, we revealed the novel role of the histone deacetylases HDAC1 and HDAC2 in histone acylation catalysis. Notably, we show that HDAC1 and HDAC2 directly catalyze sorbylation using sorbic acid, a common food preservative, in addition to facilitating desorbylation. This newly discovered HDAC1/2-driven histone sorbylation function is a distinctive active epigenetic mark that leads to widespread changes in the expression of genes, particularly those involved in cholesterol biosynthesis. Our findings reveal that HDAC1/2 are unique enzymes capable of catalyzing not only the removal but also formation of histone modifications in response to exogenous carboxylic acids such as sorbic acid and benzoic acid. Our results highlight the impact of carboxylic acids found in the environment, such as food additives, on gene expression changes that occur via histone lysine modification regulated by HDAC1 and HDAC2.</p>

  2. GAS41 promotes H2A.Z deposition through recognition of the N terminus of histone H3 by the YEATS domain. International-journal

    Masaki Kikuchi, Shohei Takase, Tsuyoshi Konuma, Kota Noritsugu, Saaya Sekine, Takahisa Ikegami, Akihiro Ito, Takashi Umehara

    Proceedings of the National Academy of Sciences of the United States of America 120 (43) e2304103120 2023/10/24

    DOI: 10.1073/pnas.2304103120  

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    Glioma amplified sequence 41 (GAS41), which has the Yaf9, ENL, AF9, Taf14, and Sas5 (YEATS) domain that recognizes lysine acetylation (Kac), regulates gene expression as a subunit of the SRCAP (SNF2-related CREBBP activator protein) complex that deposits histone H2A.Z at promoters in eukaryotes. The YEATS domains of the proteins AF9 and ENL recognize Kac by hydrogen bonding the aromatic cage to arginine situated just before K9ac or K27ac in the N-terminal tail of histone H3. Curiously, the YEATS domain of GAS41 binds most preferentially to the sequence that contains K14ac of H3 (H3K14ac) but lacks the corresponding arginine. Here, we biochemically and structurally elucidated the molecular mechanism by which GAS41 recognizes H3K14ac. First, stable binding of the GAS41 YEATS domain to H3K14ac required the N terminus of H3 (H3NT). Second, we revealed a pocket in the GAS41 YEATS domain responsible for the H3NT binding by crystallographic and NMR analyses. This pocket is away from the aromatic cage that recognizes Kac and is unique to GAS41 among the YEATS family. Finally, we showed that E109 of GAS41, a residue essential for the formation of the H3NT-binding pocket, was crucial for chromatin occupancy of H2A.Z and GAS41 at H2A.Z-enriched promoter regions. These data suggest that binding of GAS41 to H3NT via its YEATS domain is essential for its intracellular function.

  3. Lysine long-chain fatty acylation regulates the TEAD transcription factor International-journal Peer-reviewed

    Kota Noritsugu, Takehiro Suzuki, Kosuke Dodo, Kenji Ohgane, Yasue Ichikawa, Kota Koike, Satoshi Morita, Takashi Umehara, Kenji Ogawa, Mikiko Sodeoka, Naoshi Dohmae, Minoru Yoshida, Akihiro Ito

    Cell Reports 42 (4) 112388-112388 2023/04

    Publisher: Elsevier BV

    DOI: 10.1016/j.celrep.2023.112388  

    ISSN: 2211-1247

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    TEAD transcription factors are responsible for the transcriptional output of Hippo signaling. TEAD activity is primarily regulated by phosphorylation of its coactivators, YAP and TAZ. In addition, cysteine palmitoylation has recently been shown to regulate TEAD activity. Here, we report lysine long-chain fatty acylation as a posttranslational modification of TEADs. Lysine fatty acylation occurs spontaneously via intramolecular transfer of acyl groups from the proximal acylated cysteine residue. Lysine fatty acylation, like cysteine palmitoylation, contributes to the transcriptional activity of TEADs by enhancing the interaction with YAP and TAZ, but it is more stable than cysteine acylation, suggesting that the lysine fatty-acylated TEAD acts as a "stable active form." Significantly, lysine fatty acylation of TEAD increased upon Hippo signaling activation despite a decrease in cysteine acylation. Our results provide insight into the role of fatty-acyl modifications in the regulation of TEAD activity.

  4. Identification of a derivative of the alkaloid emetine as an inhibitor of the YAP-TEAD interaction and its potential as an anticancer agent. International-journal

    Saaya Sekine, Shohei Takase, Runa Hayase, Kota Noritsugu, Yuki Maemoto, Yasue Ichikawa, Kenji Ogawa, Yasumitsu Kondoh, Hiroyuki Osada, Minoru Yoshida, Akihiro Ito

    Bioscience, biotechnology, and biochemistry 87 (5) 501-510 2023/02/21

    DOI: 10.1093/bbb/zbad022  

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    TEAD is a transcription factor responsible for the output of the tumor suppressor Hippo pathway. The transcriptional activity of TEAD requires molecular interaction with its transcriptional coactivator YAP. Aberrant activation of TEAD is deeply involved in tumorigenesis and is associated with poor prognosis, suggesting that inhibitors targeting the YAP-TEAD system are promising as antitumor agents. In this study, we identified NPD689, an analog of the natural product alkaloid emetine, as an inhibitor of the YAP-TEAD interaction. NPD689 suppressed the transcriptional activity of TEAD and reduced the viability of human malignant pleural mesothelioma and non-small cell lung cancer cells but not the viability of normal human mesothelial cells. Our results suggest that NPD689 is not only a new useful chemical tool for elucidating the biological role of the YAP-TEAD system but also has potential as a starting compound for developing a cancer therapeutic agent that targets the YAP-TEAD interaction.

  5. Improving reactivity of naphthalimide-based GST probe by imparting TPP cation: Development and application for live cell imaging International-journal

    Yuuta Fujikawa, Kenta Terakado, Sayaka Nezu, Kota Noritsugu, Yuki Maemoto, Akihiro Ito, Hideshi Inoue

    Bioorganic &amp; Medicinal Chemistry Letters 80 129109-129109 2023/01

    Publisher: Elsevier BV

    DOI: 10.1016/j.bmcl.2022.129109  

    ISSN: 0960-894X

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    Glutathione S-transferases (GSTs) are a superfamily of multifunctional enzymes comprising multiple classes and subtypes. This paper describes the synthesis and characterization of TPPBN-1, a naphthalimide derivative conjugated with a triphenylphosphonium (TPP) cation. When 4-bromonaphthalimide (BrNaph), a previously characterized GST substrate, was conjugated to a TPP cation, the conjugate showed increased reactivity towards most alpha- and mu-class GSTs, particularly the GSTA2 subtype, compared to the parent compound, but hardly towards Pi-class GSTs. Using this probe with enhanced reactivity, the enzymatic activity of endogenous GSTA1/2 in HepG2 cells was visualized by confocal fluorescence microscopy. The results demonstrated that modification with TPP cations, which are often used as tags for targeting mitochondria, can be used to enhance the reactivity of probes for specific GST subtypes.

  6. Identification of zinc finger transcription factor EGR2 as a novel acetylated protein International-journal Peer-reviewed

    Kota Noritsugu, Akihiro Ito, Yoichi Nakao, Minoru Yoshida

    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS 489 (4) 455-459 2017/08

    DOI: 10.1016/j.bbrc.2017.05.170  

    ISSN: 0006-291X

    eISSN: 1090-2104

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Presentations 18

  1. Epigenetics of histone sorbylation derived from food preservative, sorbic acid

    Kota Noritsugu, Yuki Shimizu, Takehiro Suzuki, Komei Aoki, Naoshi Dohmae, Yoshito Kumagai, Akihiro Ito

    The 19th Annual Meeting of Japanese Society for Chemical Biology 2025/06/06

  2. 脂肪酸付加による転写因子TEADの制御機構

    則次 恒太, 鈴木 健裕, 闐闐 孝介, 小池 晃太, 袖岡 幹子, 堂前 直, 吉田 稔, 伊藤 昭博

    日本毒性学会 付加体科学部会 第2回シンポジウム 2024/10/25

  3. Novel histone lysine acylation derived from sorbic acid

    Kota Noritsugu, Takehiro Suzuki, Naoshi Dohmae, Yoshito Kumagai, Akihiro Ito

    FASEB Science Research Conference (SRC), Biology of Acetylation in Health and Disease 2024/08/06

  4. Post-translational modifications induced by food additives. Invited

    Kota Noritsugu, Takehiro Suzuki, Yoshito Kumagai, Naoshi Dohmae, Akihiro Ito

    The 51st Annual Meeting of the Japanese Society of Toxicology 2024/07/05

  5. Lysine long-chain fatty acylation regulates TEAD transcription factors

    Kota Noritsugu, Takehiro Suzuki, Yasue Ichikawa, Kenji Ogawa, Naoshi Dohmae, Minoru Yoshida, Akihiro Ito

    2023/12/08

  6. Food additive induced post-translational modifications. Invited

    Kota Noritsugu, Akihiro Ito

    The 96th Annual Meeting of the Japanese Biochemical Society 2023/10/31

  7. Lysine long-chain fatty acylation regulates TEAD transcription factors in Hippo signaling pathway

    Kota Noritsugu, Takehiro Suzuki, Yasue Ichikawa, Kenji Ogawa, Naoshi Dohmae, Minoru Yoshida, Akihiro Ito

    FUTURE DRUG DISCOVERY Empowered by Chemical Biology 2023/02/21

  8. Long-chain fatty acylation regulates enzymatic activity of lysine deacetylase SIRT1

    2022/11/30

  9. Long-chain fatty acylation regulates enzymatic activity of lysine deacetylase SIRT1

    2022/11/30

  10. The functional analysis of lysine long-chain fatty acylation regulating TEAD transcription factor

    2022/06/30

  11. Analysis of a novel post-translational modification, lysine long-chain fatty acylation regulating transcriptional activity of Hippo pathway transcription factors TEAD

    2021/05/27

  12. The role of lysine long-chain fatty acylation of TEAD transcription factors for transcriptional output of Hippo signaling pathway

    Kota Noritsugu, Kenji Ogawa, Takehiro Suzuki, Naoshi Dohmae, Minoru Yoshida, Akihiro Ito

    The Reversible Protein Acetylation in Health and Disease Conference 2019/08/07

  13. The regulatory mechanism of transcription by long-chain fatty acylation of TEAD transcription factors

    2019/03/24

  14. The functional analysis of lysine long-chain fatty acylation of TEAD transcription factors

    2018/10/19

  15. The study on the regulatory mechanism of the transcription factor TEAD by lysine long-chain fatty acylation

    2018/03/16

  16. The regulatory mechanism and the functional analysis of lysine long-chain fatty acylation of TEAD transcription factors

    ConBio2017 2017/12/08

  17. Functional analysis of TEAD transcription factors as novel lysine long-chain acylated proteins

    2017/03/19

  18. The functional analysis of early growth response 2 as a novel acetylated protein.

    2015/12/02

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Research Projects 1

  1. Investigation into the novel regulatory mechanism of transcription factor TEAD through lysine acylations

    Noritsugu Kota

    Offer Organization: Japan Society for the Promotion of Science

    System: Grants-in-Aid for Scientific Research

    Category: Grant-in-Aid for Early-Career Scientists

    Institution: Tokyo University of Pharmacy and Life Science

    2020/04/01 - 2022/03/31

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    Recent study showed there are various types of lysine acylation that regulate proteins functions. In these modifications, we focused on lysine long-chain fatty acylation such as myristoylation and palmitoylation. In our proteome analysis, we previously discovered transcription factor TEAD1-4, which are regulated downstream of Hippo signaling pathway, are fatty acylated on their conserved lysine residue. In addition, we also found TEAD are acetylated. So, the aim of this study is to elucidate regulatory mechanism and physiological function of lysine acylation of TEAD. As a result, we successfully revealed that lysine both acetylation and long-chain fatty acylation are stably modified and fatty acylation of TEAD contributed to interaction with transcription coactivator YAP/TAZ even when Hippo pathway is activated due to the high cell density.