研究者詳細

顔写真

ムラカミ シヨウヘイ
村上 昌平
Shohei Murakami
所属
大学院医学系研究科 医科学専攻 生体機能学講座(医化学分野)
職名
講師
学位
  • 医科学(博士) (東北大学大学院医学系研究科)

e-Rad 研究者番号
20746911
Researcher ID

経歴 7

  • 2025年9月 ~ 継続中
    東北大学 大学院医学系研究科 講師

  • 2024年1月 ~ 2025年8月
    東北大学 大学院医学系研究科 助教

  • 2021年4月 ~ 2023年12月
    東北大学 加齢医学研究所 附属環境ストレス老化研究センター 助教

  • 2020年4月 ~ 2021年3月
    東北大学・加齢医学研究所 遺伝子発現制御分野 助教

  • 2017年7月 ~ 2020年3月
    CEA/DSV/iRCM Research Laboratory on repair and Transcription in hematopoietic Stem Cells Postdoc

  • 2017年4月 ~ 2017年6月
    東北大学・加齢医学研究所 遺伝子発現制御分野 分野研究員

  • 2014年4月 ~ 2017年3月
    東北大学・加齢医学研究所 遺伝子発現制御分野 産学官連携研究員

︎全件表示 ︎最初の5件までを表示

学歴 3

  • 東北大学 大学院医学系研究科 医科学専攻(博士課程)

    2010年4月 ~ 2014年3月

  • 東北大学 大学院医学系研究科 医科学専攻(修士課程)

    2008年4月 ~ 2010年3月

  • 東北大学 理学部 化学科

    2004年4月 ~ 2008年3月

所属学協会 4

  • 日本癌学会

  • 日本免疫学会

  • 日本分子生物学会

  • 日本生化学会

研究分野 1

  • ライフサイエンス / 医化学 / 遺伝子発現、造血、幹細胞、増殖、分化

受賞 1

  1. 第21回分子予防環境医学研究会大会 若手優秀発表賞受賞

    2022年2月 造血細胞分化・維持制御における超硫黄分子の役割

論文 21

  1. Regnase-1 Promotes Tumour-Initiating Activity in Non-Small Cell Lung Cancer. 国際誌

    Keito Okazaki, Madoka Kawaguchi, Shohei Murakami, Haruna Takeda, Hiroki Sekine, Osamu Takeuchi, Hozumi Motohashi

    Journal of biochemistry 179 (1) 61-74 2026年1月12日

    DOI: 10.1093/jb/mvaf061  

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    Regnase-1, encoded by the ZC3H12A gene, is a well-known RNase that suppresses inflammation by degrading the mRNAs of inflammatory cytokines. However, its role in cancer pathogenesis, especially in non-small cell lung cancer (NSCLC), remains poorly understood. Through an analysis of public databases, we found that NSCLC patients with higher ZC3H12A expression levels had a worse prognosis than those with lower levels. To explore the function of Regnase-1 in NSCLC, we knocked out the ZC3H12A gene in NSCLC cell lines and compared their transcriptomes with those of parental cells. This analysis identified the SOX2 pathway as a common pathway suppressed by Regnase-1 deficiency. Consistent with the SOX2 contribution to the cancer stemness, Regnase-1 inhibition impaired oncosphere growth and tumour formation of cell lines derived from adenocarcinoma, squamous cell carcinoma and large cell carcinoma. It was also effective for NRF2-activated NSCLC cells, which are highly resistant to most of the therapeutics. Notably, post-tumorigenic suppression of Regnase-1 significantly inhibited tumour growth, suggesting that Regnase-1 could be a promising therapeutic target for post-tumorigenic treatment of NSCLC. Given recent studies describing that Regnase-1 inhibition enhances anti-cancer immunity, we propose that targeting Regnase-1 could be an ideal strategy for controlling intractable cancers by both suppressing cancer cells and activating anti-cancer immunity.

  2. NRF2 signalling in cytoprotection and metabolism. 国際誌

    Shohei Murakami, Yusuke Kusano, Keito Okazaki, Takaaki Akaike, Hozumi Motohashi

    British journal of pharmacology 183 (1) 101-114 2026年1月

    DOI: 10.1111/bph.16246  

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    The KEAP1-NRF2 system plays a central role in cytoprotection in defence mechanisms against oxidative stress. The KEAP1-NRF2 system has been regarded as a sulfur-utilizing cytoprotective mechanism, because KEAP1 serves as a biosensor for electrophiles by using its reactive thiols and NRF2 is a transcriptional factor regulating genes involved in sulfur-mediated redox reactions. NRF2 is a key regulator of cytoprotective genes, such as antioxidant and detoxification genes, and also possesses potent anti-inflammatory activity. Recently NRF2 has been the focus of attention as a regulator of cellular metabolism and mitochondrial function. The NRF2-mediated regulatory mechanisms of metabolites and mitochondria have been considered diverse, but have not yet been fully clarified. This review article provides an overview of molecular mechanisms that regulate NRF2 signalling and its cytoprotective roles, and highlights NRF2 contribution to cellular metabolism, particularly in the context of mitochondrial function and newly-found sulfur metabolism. LINKED ARTICLES: This article is part of a themed issue Recent Innovations in Targeting Redox Biology for Therapeutics. To view the other articles in this section visit http://onlinelibrary.wiley.com/doi/10.1111/bph.v183.1/issuetoc.

  3. Mitochondria regulate the cell fate decisions of megakaryocyte-erythroid progenitors. 国際誌

    Eunkyu Sung, Shohei Murakami, Masanobu Morita, Tomoaki Ida, Takaaki Akaike, Hozumi Motohashi

    Stem cell reports 20 (12) 102720-102720 2025年12月9日

    DOI: 10.1016/j.stemcr.2025.102720  

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    Recent studies highlight the critical role of mitochondria in hematopoiesis, especially in stem cell function and erythroid maturation. To explore mitochondrial contributions to cell lineage commitment of hematopoietic progenitors, we utilized Cars2-mutant mice, an ideal model for this purpose. CARS2, a mitochondrial isoform of cysteinyl-tRNA synthetase, has cysteine persulfide synthase (CPERS) activity. Our new mouse model, with reduced CPERS activity, showed that the Cars2 mutation led to mitochondrial inhibition and anemia by suppressing erythroid commitment in megakaryocyte-erythroid progenitors (MEPs). This suppression was reproduced using mitochondrial electron transport chain inhibitors. We identified two distinct MEP populations based on the mitochondrial content: mitochondria-rich MEPs favored erythroid differentiation, while the mitochondria-poor MEPs favored megakaryocyte differentiation. These findings reveal critical contributions of mitochondria to the MEP lineage selection, acting as a "mitochondrial navigation" for lineage commitment.

  4. Ferroptosis in health and disease. 国際誌

    Carsten Berndt, Hamed Alborzinia, Vera Skafar Amen, Scott Ayton, Uladzimir Barayeu, Alexander Bartelt, Hülya Bayir, Christina M Bebber, Kivanc Birsoy, Jan P Böttcher, Simone Brabletz, Thomas Brabletz, Ashley R Brown, Bernhard Brüne, Giorgia Bulli, Alix Bruneau, Quan Chen, Gina M DeNicola, Tobias P Dick, Ayelén Distéfano, Scott J Dixon, Jan B Engler, Julia Esser-von Bieren, Maria Fedorova, José Pedro Friedmann Angeli, Manuel A Friese, Dominic C Fuhrmann, Ana J García-Sáez, Karolina Garbowicz, Magdalena Götz, Wei Gu, Linda Hammerich, Behrouz Hassannia, Xuejun Jiang, Aicha Jeridi, Yun Pyo Kang, Valerian E Kagan, David B Konrad, Stefan Kotschi, Peng Lei, Marlène Le Tertre, Sima Lev, Deguang Liang, Andreas Linkermann, Carolin Lohr, Svenja Lorenz, Tom Luedde, Axel Methner, Bernhard Michalke, Anna V Milton, Junxia Min, Eikan Mishima, Sebastian Müller, Hozumi Motohashi, Martina U Muckenthaler, Shohei Murakami, James A Olzmann, Gabriela Pagnussat, Zijan Pan, Thales Papagiannakopoulos, Lohans Pedrera Puentes, Derek A Pratt, Bettina Proneth, Lukas Ramsauer, Raphael Rodriguez, Yoshiro Saito, Felix Schmidt, Carina Schmitt, Almut Schulze, Annemarie Schwab, Anna Schwantes, Mariluz Soula, Benedikt Spitzlberger, Brent R Stockwell, Leonie Thewes, Oliver Thorn-Seshold, Shinya Toyokuni, Wulf Tonnus, Andreas Trumpp, Peter Vandenabeele, Tom Vanden Berghe, Vivek Venkataramani, Felix C E Vogel, Silvia von Karstedt, Fudi Wang, Frank Westermann, Chantal Wientjens, Christoph Wilhelm, Michele Wölk, Katherine Wu, Xin Yang, Fan Yu, Yilong Zou, Marcus Conrad

    Redox biology 75 103211-103211 2024年9月

    DOI: 10.1016/j.redox.2024.103211  

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    Ferroptosis is a pervasive non-apoptotic form of cell death highly relevant in various degenerative diseases and malignancies. The hallmark of ferroptosis is uncontrolled and overwhelming peroxidation of polyunsaturated fatty acids contained in membrane phospholipids, which eventually leads to rupture of the plasma membrane. Ferroptosis is unique in that it is essentially a spontaneous, uncatalyzed chemical process based on perturbed iron and redox homeostasis contributing to the cell death process, but that it is nonetheless modulated by many metabolic nodes that impinge on the cells' susceptibility to ferroptosis. Among the various nodes affecting ferroptosis sensitivity, several have emerged as promising candidates for pharmacological intervention, rendering ferroptosis-related proteins attractive targets for the treatment of numerous currently incurable diseases. Herein, the current members of a Germany-wide research consortium focusing on ferroptosis research, as well as key external experts in ferroptosis who have made seminal contributions to this rapidly growing and exciting field of research, have gathered to provide a comprehensive, state-of-the-art review on ferroptosis. Specific topics include: basic mechanisms, in vivo relevance, specialized methodologies, chemical and pharmacological tools, and the potential contribution of ferroptosis to disease etiopathology and progression. We hope that this article will not only provide established scientists and newcomers to the field with an overview of the multiple facets of ferroptosis, but also encourage additional efforts to characterize further molecular pathways modulating ferroptosis, with the ultimate goal to develop novel pharmacotherapies to tackle the various diseases associated with - or caused by - ferroptosis.

  5. PNPO–PLP axis senses prolonged hypoxia in macrophages by regulating lysosomal activity

    Hiroki Sekine, Haruna Takeda, Norihiko Takeda, Akihiro Kishino, Hayato Anzawa, Takayuki Isagawa, Nao Ohta, Shohei Murakami, Hideya Iwaki, Nobufumi Kato, Shu Kimura, Zun Liu, Koichiro Kato, Fumiki Katsuoka, Masayuki Yamamoto, Fumihito Miura, Takashi Ito, Masatomo Takahashi, Yoshihiro Izumi, Hiroyuki Fujita, Hitoshi Yamagata, Takeshi Bamba, Takaaki Akaike, Norio Suzuki, Kengo Kinoshita, Hozumi Motohashi

    Nature Metabolism 2024年5月31日

    DOI: 10.1038/s42255-024-01053-4  

  6. Sulfur metabolic response in macrophage limits excessive inflammatory response by creating a negative feedback loop. 国際誌 査読有り

    Haruna Takeda, Shohei Murakami, Zun Liu, Tomohiro Sawa, Masatomo Takahashi, Yoshihiro Izumi, Takeshi Bamba, Hideyo Sato, Takaaki Akaike, Hiroki Sekine, Hozumi Motohashi

    Redox biology 65 102834-102834 2023年7月29日

    DOI: 10.1016/j.redox.2023.102834  

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    The excessive inflammatory response of macrophages plays a vital role in the pathogenesis of various diseases. The dynamic metabolic alterations in macrophages, including amino acid metabolism, are known to orchestrate their inflammatory phenotype. To explore a new metabolic pathway that regulates the inflammatory response, we examined metabolome changes in mouse peritoneal macrophages (PMs) in response to lipopolysaccharide (LPS) and found a coordinated increase of cysteine and its related metabolites, suggesting an enhanced demand for cysteine during the inflammatory response. Because Slc7a11, which encodes a cystine transporter xCT, was remarkably upregulated upon the pro-inflammatory challenge and found to serve as a major channel of cysteine supply, we examined the inflammatory behavior of Slc7a11 knockout PMs (xCT-KO PMs) to clarify an impact of the increased cysteine demand on inflammation. The xCT-KO PMs exhibited a prolonged upregulation of pro-inflammatory genes, which was recapitulated by cystine depletion in the culture media of wild-type PMs, suggesting that cysteine facilitates the resolution of inflammation. Detailed analysis of the sulfur metabolome revealed that supersulfides, such as cysteine persulfide, were increased in PMs in response to LPS, which was abolished in xCT-KO PMs. Supplementation of N-acetylcysteine tetrasulfide (NAC-S2), a supersulfide donor, attenuated the pro-inflammatory gene expression in xCT-KO PMs. Thus, activated macrophages increase cystine uptake via xCT and produce supersulfides, creating a negative feedback loop to limit excessive inflammation. Our study highlights the finely tuned regulation of macrophage inflammatory response by sulfur metabolism.

  7. Contribution of NRF2 to sulfur metabolism and mitochondrial activity. 国際誌 査読有り

    Md Morshedul Alam, Akihiro Kishino, Eunkyu Sung, Hiroki Sekine, Takaaki Abe, Shohei Murakami, Takaaki Akaike, Hozumi Motohashi

    Redox biology 60 102624-102624 2023年2月2日

    DOI: 10.1016/j.redox.2023.102624  

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    NF-E2-related factor 2 (NRF2) plays a crucial role in the maintenance of cellular homeostasis by regulating various enzymes and proteins that are involved in the redox reactions utilizing sulfur. While substantial impacts of NRF2 on mitochondrial activity have been described, the precise mechanism by which NRF2 regulates mitochondrial function is still not fully understood. Here, we demonstrated that NRF2 increased intracellular persulfides by upregulating the cystine transporter xCT encoded by Slc7a11, a well-known NRF2 target gene. Persulfides have been shown to play an important role in mitochondrial function. Supplementation with glutathione trisulfide (GSSSG), which is a form of persulfide, elevated the mitochondrial membrane potential (MMP), increased the oxygen consumption rate (OCR) and promoted ATP production. Persulfide-mediated mitochondrial activation was shown to require the mitochondrial sulfur oxidation pathway, especially sulfide quinone oxidoreductase (SQOR). Consistently, NRF2-mediated mitochondrial activation was also dependent on SQOR activity. This study clarified that the facilitation of persulfide production and sulfur metabolism in mitochondria by increasing cysteine availability is one of the mechanisms for NRF2-dependent mitochondrial activation.

  8. Establishment of Neh2-Cre:tdTomato reporter mouse for monitoring the exposure history to electrophilic stress. 国際誌 査読有り

    Hiroshi Kitamura, Tetsuya Oishi, Shohei Murakami, Tomoe Yamada-Kato, Isao Okunishi, Masayuki Yamamoto, Yukio Katori, Hozumi Motohashi

    Free radical biology & medicine 193 (Pt 2) 610-619 2022年11月9日

    DOI: 10.1016/j.freeradbiomed.2022.11.004  

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    Cells are often exposed to exogenous and endogenous redox disturbances and exert their protective mechanisms in response to stimuli. The KEAP1-NRF2 system plays pivotal roles in counteracting oxidative damage. Due to the transient nature of NRF2 activation, the identification of cells in which NRF2 is activated in response to systemic stimuli is sometimes not easy. To examine the electrophilic stress response at a single-cell resolution, we aimed to develop a new reporter mouse in this study. A cell-tracing strategy exploiting Cre recombinase-mediated activation of a reporter gene was chosen for stable detection of reporter expression instead of real-time monitoring of the cellular response. We established a transgenic mouse line expressing the Neh2-Cre recombinase fusion protein. As Neh2 is an amino-terminal domain of NRF2 that serves as a degron and mediates KEAP1-dependent degradation and electrophile-inducible stabilization, Neh2-Cre was expected to be activated in response to electrophiles. The Neh2-Cre transgenic mouse was crossed with the ROSA26-loxP-stop-loxP-tdTomato reporter mouse (ROSA-LSL-tdTomato mouse). The compound mutant reporter mice exhibited accumulation of tdTomato-positive cells in various organs after repeated administration of CDDO-Im, one of the NRF2-inducing electrophiles. The mice were also successfully used for the detection of cells that experienced a cisplatin-induced electrophilic stress response.

  9. NRF2 Pathway Activation Attenuates Aging-Related Renal Phenotypes due to α-Klotho Deficiency. 国際誌 査読有り

    Mingyue Zhao, Shohei Murakami, Daisuke Matsumaru, Takeshi Kawauchi, Yo-Ichi Nabeshima, Hozumi Motohashi

    Journal of biochemistry 171 (5) 579-589 2022年2月7日

    出版者・発行元: Oxford University Press (OUP)

    DOI: 10.1093/jb/mvac014  

    ISSN:0021-924X

    eISSN:1756-2651

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    Oxidative stress is one of the major causes of the age-related functional decline in cells and tissues. The KEAP1-NRF2 system plays a central role in the regulation of redox balance, and NRF2 activation exerts antiaging effects by controlling oxidative stress in aged tissues. α-Klotho was identified as an aging suppressor protein based on the premature aging phenotypes of its mutant mice, and its expression is known to gradually decrease during aging. Because α-Klotho has been shown to possess antioxidant function, aging-related phenotypes of α-Klotho mutant mice seem to be attributable to increased oxidative stress at least in part. To examine whether NRF2 activation antagonizes aging-related phenotypes caused by α-Klotho deficiency, we crossed α-Klotho-deficient (Kl-/-) mice with a Keap1-knockdown background, in which the NRF2 pathway is constitutively activated in the whole body. NRF2 pathway activation in Kl-/- mice extended the lifespan and dramatically improved aging-related renal phenotypes. With elevated expression of antioxidant genes accompanied by an oxidative stress decrease, the antioxidant effects of NRF2 seem to make a major contribution to the attenuation of aging-related renal phenotypes of Kl-/- mice. Thus, NRF2 is expected to exert an antiaging function by partly compensating for the functional decline of α-Klotho during physiological aging.

  10. Skeletal muscle-specific Keap1 disruption modulates fatty acid utilization and enhances exercise capacity in female mice. 国際誌 査読有り

    Takahiro Onoki, Yoshihiro Izumi, Masatomo Takahashi, Shohei Murakami, Daisuke Matsumaru, Nao Ohta, Sisca Meida Wati, Nozomi Hatanaka, Fumiki Katsuoka, Mitsuharu Okutsu, Yutaka Yabe, Yoshihiro Hagiwara, Makoto Kanzaki, Takeshi Bamba, Eiji Itoi, Hozumi Motohashi

    Redox biology 43 101966-101966 2021年7月

    DOI: 10.1016/j.redox.2021.101966  

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    Skeletal muscle health is important for the prevention of various age-related diseases. The loss of skeletal muscle mass, which is known as sarcopenia, underlies physical disability, poor quality of life and chronic diseases in elderly people. The transcription factor NRF2 plays important roles in the regulation of the cellular defense against oxidative stress, as well as the metabolism and mitochondrial activity. To determine the contribution of skeletal muscle NRF2 to exercise capacity, we conducted skeletal muscle-specific inhibition of KEAP1, which is a negative regulator of NRF2, and examined the cell-autonomous and non-cell-autonomous effects of NRF2 pathway activation in skeletal muscles. We found that NRF2 activation in skeletal muscles increased slow oxidative muscle fiber type and improved exercise endurance capacity in female mice. We also observed that female mice with NRF2 pathway activation in their skeletal muscles exhibited enhanced exercise-induced mobilization and β-oxidation of fatty acids. These results indicate that NRF2 activation in skeletal muscles promotes communication with adipose tissues via humoral and/or neuronal signaling and facilitates the utilization of fatty acids as an energy source, resulting in increased mitochondrial activity and efficient energy production during exercise, which leads to improved exercise endurance.

  11. Phagocytosis of Wnt inhibitor SFRP4 by late wound macrophages drives chronic Wnt activity for fibrotic skin healing. 国際誌 査読有り

    Denise Gay, Giulia Ghinatti, Christian F Guerrero-Juarez, Rubén A Ferrer, Federica Ferri, Chae Ho Lim, Shohei Murakami, Nathalie Gault, Vilma Barroca, Isabelle Rombeau, Philippe Mauffrey, Lamya Irbah, Elsa Treffeisen, Sandra Franz, Alexandre Boissonnas, Christophe Combadière, Mayumi Ito, Maksim V Plikus, Paul-Henri Romeo

    Science advances 6 (12) eaay3704 2020年3月

    DOI: 10.1126/sciadv.aay3704  

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    Human and murine skin wounding commonly results in fibrotic scarring, but the murine wounding model wound-induced hair neogenesis (WIHN) can frequently result in a regenerative repair response. Here, we show in single-cell RNA sequencing comparisons of semi-regenerative and fibrotic WIHN wounds, increased expression of phagocytic/lysosomal genes in macrophages associated with predominance of fibrotic myofibroblasts in fibrotic wounds. Investigation revealed that macrophages in the late wound drive fibrosis by phagocytizing dermal Wnt inhibitor SFRP4 to establish persistent Wnt activity. In accordance, phagocytosis abrogation resulted in transient Wnt activity and a more regenerative healing. Phagocytosis of SFRP4 was integrin-mediated and dependent on the interaction of SFRP4 with the EDA splice variant of fibronectin. In the human skin condition hidradenitis suppurativa, phagocytosis of SFRP4 by macrophages correlated with fibrotic wound repair. These results reveal that macrophages can modulate a key signaling pathway via phagocytosis to alter the skin wound healing fate.

  12. Nucleomethylin deficiency impairs embryonic erythropoiesis. 国際誌 査読有り

    Shohei Murakami, Takuma Suzuki, Wataru Yokoyama, Satoko Yagi, Keita Matsumura, Yuka Nakajima, Hideo Harigae, Akiyoshi Fukamizu, Hozumi Motohashi

    Journal of biochemistry 163 (5) 413-423 2018年5月1日

    DOI: 10.1093/jb/mvx086  

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    Nucleomethylin (NML) has been shown to contribute to ribosome formation through regulating transcription and post-transcriptional modification of rRNA. Based on the observation that NML-/- mice are frequently embryonic lethal, we analyzed NML-/- embryos to clarify the role of NML in embryogenesis. We found that NML deficiency leads to lethality at the time point between E10.5 and E12.5. Most of E10.5 NML-/- embryos exhibited growth retardation and/or malformation with marked impairment of erythropoiesis. Consistent with a previous study, the m1A in 28S rRNA was dramatically reduced in NML-/- foetal liver (FL) cells. Because the previous study demonstrated p53-dependent apoptosis of NML-knockdown cells, and because we observed upregulation of p21, one of the p53 target genes, in NML-/- FL cells, we tested whether p53 disruption cancelled the NML-deficient phenotypes. Contrary to our expectation, suppression of p53 did not rescue the lethality or impaired erythropoiesis of NML-/- embryos, suggesting that p53-independent mechanisms underlie the NML-deficient phenotypes. These results clarify an essential role of NML during embryogenesis, particularly in erythropoiesis. We surmise that embryonic erythropoiesis is particularly sensitive to impaired protein synthesis, which is caused by the defective methylation of rRNA and consequent failure of ribosome formation.

  13. IL-11 contribution to tumorigenesis in an NRF2 addiction cancer model 査読有り

    H. Kitamura, Y. Onodera, S. Murakami, T. Suzuki, H. Motohashi

    Oncogene 36 (45) 6315-6324 2017年11月9日

    出版者・発行元: Nature Publishing Group

    DOI: 10.1038/onc.2017.236  

    ISSN:1476-5594 0950-9232

  14. NRF2 Activation Impairs Quiescence and Bone Marrow Reconstitution Capacity of Hematopoietic Stem Cells. 国際誌 査読有り

    Shohei Murakami, Takuma Suzuki, Hideo Harigae, Paul-Henri Romeo, Masayuki Yamamoto, Hozumi Motohashi

    Molecular and cellular biology 37 (19) 2017年10月1日

    DOI: 10.1128/MCB.00086-17  

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    Tissue stem cells are maintained in quiescence under physiological conditions but proliferate and differentiate to replenish mature cells under stressed conditions. The KEAP1-NRF2 system plays an essential role in stress response and cytoprotection against redox disturbance. To clarify the role of the KEAP1-NRF2 system in tissue stem cells, we focused on hematopoiesis in this study and used Keap1-deficient mice to examine the effects of persistent activation of NRF2 on long-term hematopoietic stem cells (LT-HSCs). We found that persistent activation of NRF2 due to Keap1 deficiency did not change the number of LT-HSCs but reduced their quiescence in steady-state hematopoiesis. During hematopoietic regeneration after bone marrow (BM) transplantation, persistent activation of NRF2 reduced the BM reconstitution capacity of LT-HSCs, suggesting that NRF2 reduces the quiescence of LT-HSCs and promotes their differentiation, leading to eventual exhaustion. Transient activation of NRF2 by an electrophilic reagent also promotes the entry of LT-HSCs into the cell cycle. Taken together, our findings show that NRF2 drives the cell cycle entry and differentiation of LT-HSCs at the expense of their quiescence and maintenance, an effect that appears to be beneficial for prompt recovery from blood loss. We propose that the appropriate control of NRF2 activity by KEAP1 is essential for maintaining HSCs and guarantees their stress-induced regenerative response.

  15. Systemic Activation of NRF2 Alleviates Lethal Autoimmune Inflammation in Scurfy Mice. 国際誌 査読有り

    Takuma Suzuki, Shohei Murakami, Shyam S Biswal, Shimon Sakaguchi, Hideo Harigae, Masayuki Yamamoto, Hozumi Motohashi

    Molecular and cellular biology 37 (15) 2017年8月1日

    DOI: 10.1128/MCB.00063-17  

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    The transcription factor NRF2 (nuclear factor [erythroid-derived 2]-like 2) plays crucial roles in the defense mechanisms against oxidative stress and mediates anti-inflammatory actions under various pathological conditions. Recent studies showed that the dysfunction of regulatory T cells (Tregs) is directly linked to the initiation and progression of various autoimmune diseases. To determine the Treg-independent impact of NRF2 activation on autoimmune inflammation, we examined scurfy (Sf) mice, which are deficient in Tregs and succumb to severe multiorgan inflammation by 4 weeks of age. We found that systemic activation of NRF2 by Keap1 (Kelch-like ECH-associated protein 1) knockdown ameliorated tissue inflammation and lethality in Sf mice. Activated T cells and their cytokine production were accordingly decreased by Keap1 knockdown. In contrast, NRF2 activation through cell lineage-specific Keap1 disruption (i.e., in T cells, myeloid cells, and dendritic cells) achieved only partial or no improvement in the inflammatory status of Sf mice. Our results indicate that systemic activation of NRF2 suppresses effector T cell activities independently of Tregs and that NRF2 activation in multiple cell lineages appears to be required for sufficient anti-inflammatory effects. This study emphasizes the possible therapeutic application of NRF2 inducers in autoimmune diseases that are accompanied by Treg dysfunction.

  16. Glucocorticoid receptor signaling represses the antioxidant response by inhibiting histone acetylation mediated by the transcriptional activator NRF2. 国際誌 査読有り

    Md Morshedul Alam, Keito Okazaki, Linh Thi Thao Nguyen, Nao Ota, Hiroshi Kitamura, Shohei Murakami, Hiroki Shima, Kazuhiko Igarashi, Hiroki Sekine, Hozumi Motohashi

    The Journal of biological chemistry 292 (18) 7519-7530 2017年5月5日

    DOI: 10.1074/jbc.M116.773960  

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    NRF2 (nuclear factor erythroid 2-related factor 2) is a key transcriptional activator that mediates the inducible expression of antioxidant genes. NRF2 is normally ubiquitinated by KEAP1 (Kelch-like ECH-associated protein 1) and subsequently degraded by proteasomes. Inactivation of KEAP1 by oxidative stress or electrophilic chemicals allows NRF2 to activate transcription through binding to antioxidant response elements (AREs) and recruiting histone acetyltransferase CBP (CREB-binding protein). Whereas KEAP1-dependent regulation is a major determinant of NRF2 activity, NRF2-mediated transcriptional activation varies from context to context, suggesting that other intracellular signaling cascades may impact NRF2 function. To identify a signaling pathway that modifies NRF2 activity, we immunoprecipitated endogenous NRF2 and its interacting proteins from mouse liver and identified glucocorticoid receptor (GR) as a novel NRF2-binding partner. We found that glucocorticoids, dexamethasone and betamethasone, antagonize diethyl maleate-induced activation of NRF2 target genes in a GR-dependent manner. Dexamethasone treatment enhanced GR recruitment to AREs without affecting chromatin binding of NRF2, resulting in the inhibition of CBP recruitment and histone acetylation at AREs. This repressive effect was canceled by the addition of histone deacetylase inhibitors. Thus, GR signaling decreases NRF2 transcriptional activation through reducing the NRF2-dependent histone acetylation. Consistent with these observations, GR signaling blocked NRF2-mediated cytoprotection from oxidative stress. This study suggests that an impaired antioxidant response by NRF2 and a resulting decrease in cellular antioxidant capacity account for the side effects of glucocorticoids, providing a novel viewpoint for the pathogenesis of hypercorticosteroidism.

  17. NRF2 Is a Key Target for Prevention of Noise-Induced Hearing Loss by Reducing Oxidative Damage of Cochlea. 国際誌 査読有り

    Yohei Honkura, Hirotaka Matsuo, Shohei Murakami, Masayuki Sakiyama, Kunio Mizutari, Akihiro Shiotani, Masayuki Yamamoto, Ichiro Morita, Nariyoshi Shinomiya, Tetsuaki Kawase, Yukio Katori, Hozumi Motohashi

    Scientific reports 6 19329-19329 2016年1月18日

    DOI: 10.1038/srep19329  

    詳細を見る 詳細を閉じる

    Noise-induced hearing loss (NIHL) is one of the most common sensorineural hearing deficits. Recent studies have demonstrated that the pathogenesis of NIHL is closely related to ischemia-reperfusion injury of cochlea, which is caused by blood flow decrease and free radical production due to excessive noise. This suggests that protecting the cochlea from oxidative stress is an effective therapeutic approach for NIHL. NRF2 is a transcriptional activator playing an essential role in the defense mechanism against oxidative stress. To clarify the contribution of NRF2 to cochlear protection, we examined Nrf2(-/-) mice for susceptibility to NIHL. Threshold shifts of the auditory brainstem response at 7 days post-exposure were significantly larger in Nrf2(-/-) mice than wild-type mice. Treatment with CDDO-Im, a potent NRF2-activating drug, before but not after the noise exposure preserved the integrity of hair cells and improved post-exposure hearing levels in wild-type mice, but not in Nrf2(-/-) mice. Therefore, NRF2 activation is effective for NIHL prevention. Consistently, a human NRF2 SNP was significantly associated with impaired sensorineural hearing levels in a cohort subjected to occupational noise exposure. Thus, high NRF2 activity is advantageous for cochlear protection from noise-induced injury, and NRF2 is a promising target for NIHL prevention.

  18. Roles of Nrf2 in cell proliferation and differentiation. 国際誌 査読有り

    Shohei Murakami, Hozumi Motohashi

    Free radical biology & medicine 88 (Pt B) 168-178 2015年11月

    DOI: 10.1016/j.freeradbiomed.2015.06.030  

    詳細を見る 詳細を閉じる

    The Keap1-Nrf2 system plays pivotal roles in defense mechanisms by regulating cellular redox homeostasis. Nrf2 is an inducible transcription factor that activates a battery of genes encoding antioxidant proteins and phase II enzymes in response to oxidative stress and electrophilic xenobiotics. The activity of Nrf2 is regulated by Keap1, which promotes the ubiquitination and subsequent degradation of Nrf2 under normal conditions and releases the inhibited Nrf2 activity upon exposure to the stresses. Though an impressive contribution of the Keap1-Nrf2 system to the protection from exogenous and endogenous electrophilic insults has been well established, a line of evidence has suggested that the Keap1-Nrf2 system has various novel functions, particularly in cell proliferation and differentiation. Because the proliferation and differentiation of diverse cell types are often influenced and modulated by the cellular redox balance, Nrf2 has been considered to control these cellular processes by regulating the cellular levels of reactive oxygen species (ROS). In addition, analyses of the genome-wide distribution of Nrf2 have identified new sets of Nrf2 target genes whose products are involved in cell proliferation and differentiation but not necessarily in the regulation of oxidative stress. Considering the most characteristic features of Nrf2 as an inducible transcription factor, a newly emerged concept proposes that the Keap1-Nrf2 system translates environmental stresses into regulatory network signals in cell fate determination. In this review, we introduce the contribution of Nrf2 to lineage-specific differentiation, maintenance and differentiation of stem cells, and proliferation of normal and cancer cells, and we discuss how the response to fluctuating environments modulates cell behavior through the Keap1-Nrf2 system.

  19. Activation of the NRF2 pathway and its impact on the prognosis of anaplastic glioma patients. 国際誌 査読有り

    Masayuki Kanamori, Tsuyoshi Higa, Yukihiko Sonoda, Shohei Murakami, Mina Dodo, Hiroshi Kitamura, Keiko Taguchi, Tatsuhiro Shibata, Mika Watanabe, Hiroyoshi Suzuki, Ichiyo Shibahara, Ryuta Saito, Yoji Yamashita, Toshihiro Kumabe, Masayuki Yamamoto, Hozumi Motohashi, Teiji Tominaga

    Neuro-oncology 17 (4) 555-65 2015年4月

    DOI: 10.1093/neuonc/nou282  

    詳細を見る 詳細を閉じる

    BACKGROUND: Nuclear factor erythroid 2-related factor 2 (NRF2) plays pivotal roles in cytoprotection. We aimed at clarifying the contribution of the NRF2 pathway to malignant glioma pathology. METHODS: NRF2 target gene expression and its association with prognosis were examined in 95 anaplastic gliomas with or without isocitrate dehydrogenase (IDH) 1/2 gene mutations and 52 glioblastomas. To explore mechanisms for the altered activity of the NRF2 pathway, we examined somatic mutations and expressions of the NRF2 gene and those encoding NRF2 regulators, Kelch-like ECH-associated protein 1 (KEAP1) and p62/SQSTSM. To clarify the functional interaction between IDH1 mutations and the NRF2 pathway, we introduced a mutant IDH1 to T98 glioblastoma-derived cells and examined the NRF2 activity in these cells. RESULTS: NRF2 target genes were elevated in 13.7% and 32.7% of anaplastic gliomas and glioblastomas, respectively. Upregulation of NRF2 target genes correlated with poor prognosis in anaplastic gliomas but not in glioblastomas. Neither somatic mutations of NRF2/KEAP1 nor dysregulated expression of KEAP1/p62 explained the increased expression of NRF2 target genes. In most cases of anaplastic glioma with mutated IDH1/2, NRF2 and its target genes were downregulated. This was reproducible in IDH1 R132H-expressing T98 cells. In minor cases of IDH1/2-mutant anaplastic gliomas with increased expression of NRF2 target genes, the clinical outcomes were significantly poor. CONCLUSIONS: The NRF2 activity is increased in a significant proportion of malignant gliomas in general but decreased in the majority of IDH1/2-mutant anaplastic gliomas. It is plausible that the NRF2 pathway plays an important role in tumor progression of anaplastic gliomas with IDH1/2 mutations.

  20. Hematopoietic stem and progenitor cell activation during chronic dermatitis provoked by constitutively active aryl-hydrocarbon receptor driven by Keratin 14 promoter. 国際誌 査読有り

    Shohei Murakami, Masayuki Yamamoto, Hozumi Motohashi

    Toxicological sciences : an official journal of the Society of Toxicology 138 (1) 47-58 2014年3月

    DOI: 10.1093/toxsci/kft273  

    詳細を見る 詳細を閉じる

    Polycyclic aromatic hydrocarbons (PAHs) activate aryl-hydrocarbon receptor (AhR). Because PAHs are known as a risk factor for allergic diseases, PAH-induced AhR activation is expected to be involved in the development of the pathology. We previously generated transgenic mice expressing a constitutively active AhR (AhR-CA) under the control of Keratin 14 (K14) promoter (AhR-CA mouse). The mice develop chronic dermatitis with immune imbalance toward Th2 predominance, indicating that the AhR activation driven by K14 promoter provokes allergic response. Because hematopoietic cells actively participate in the development of allergic inflammation, it is important to understand the hematopoietic status under allergic conditions. To clarify how the K14 promoter-driven AhR activation influences hematopoiesis, we analyzed bone marrow and spleen of AhR-CA mice. We verified that AhR-CA was expressed in keratinocytes and thymic epithelial cells but not in hematopoietic cells. The AhR-CA mice with full-blown dermatitis exhibited leukocytosis and skewed differentiation of hematopoietic progenitor cells toward granulocyte-monocyte lineages. They also showed a significant expansion of short-term hematopoietic stem cells and multipotent progenitors and a subtle reduction in long-term hematopoietic stem cells (LT-HSCs). Their spleens were enlarged and abundantly accumulated hematopoietic stem and progenitor cells. AhR-CA mice at the early stage of dermatitis did not show leukocytosis or splenomegaly but exhibited the granulocyte-monocyte skewing and the reduction in LT-HSCs. Thus, AhR activation driven by K14 promoter already alters the hematopoietic differentiation and reduces LT-HSCs at the initial stage of dermatitis development. These results suggest that nonhematopoietic exposure to PAHs triggers allergic response and concomitantly affects hematopoiesis.

  21. Keap1-Nrf2 system regulates cell fate determination of hematopoietic stem cells. 国際誌 査読有り

    Shohei Murakami, Ritsuko Shimizu, Paul-Henri Romeo, Masayuki Yamamoto, Hozumi Motohashi

    Genes to cells : devoted to molecular & cellular mechanisms 19 (3) 239-53 2014年3月

    DOI: 10.1111/gtc.12126  

    詳細を見る 詳細を閉じる

    Nrf2 is a major transcriptional activator of cytoprotective genes against oxidative/electrophilic stress, and Keap1 negatively regulates Nrf2. Emerging works have also suggested a role for Nrf2 as a regulator of differentiation in various cells, but the contribution of Nrf2 to the differentiation of hematopoietic stem cells (HSCs) remains elusive. Clarifying this point is important to understand Nrf2 functions in the development and/or resolution of inflammation. Here, we established two transgenic reporter mouse lines that allowed us to examine Nrf2 expression precisely in HSCs. Nrf2 was abundantly transcribed in HSCs, but its activity was maintained at low levels due to the Keap1-mediated degradation of Nrf2 protein. When we characterized Keap1-deficient mice, their bone marrow cells showed enhanced granulocyte-monocyte differentiation at the expense of erythroid and lymphoid differentiation. Importantly, Keap1-null HSCs showed lower expression of erythroid and lymphoid genes than did control HSCs, suggesting granulocyte-monocyte lineage priming in Keap1-null HSCs. This abnormal lineage commitment was restored by a concomitant deletion of Nrf2, demonstrating the Nrf2-dependency of the skewing. Analysis of Nrf2-deficient mice revealed that the physiological level of Nrf2 is sufficient to contribute to the lineage commitment. This study unequivocally shows that the Keap1-Nrf2 system regulates the cell fate determination of HSCs.

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MISC 23

  1. ミトコンドリア呼吸鎖複合体の超硫黄化修飾の探索および生理学的意義の検討

    古森龍太郎, 村上昌平, 守田匡伸, 高田剛, 赤池孝章, 本橋ほづみ, 本橋ほづみ

    日本生化学会大会(Web) 97th 2024年

  2. NRF2活性化癌における抗腫瘍免疫応答の特徴

    飯田謙人, 河口まどか, 岡崎慶斗, 武田遥奈, 七野成之, 早坂一希, 早坂一希, 酒井勁, 酒井勁, 岡田克典, 鈴木貴, 村上昌平, 本橋ほづみ

    日本癌学会学術総会抄録集(Web) 82nd 2023年

  3. 炎症性腸疾患モデルでのxCT阻害による抗炎症作用

    岩城英也, 岩城英也, 関根弘樹, 村上昌平, 加藤伸史, 北村洋, 北村洋, 魏范研, 佐藤英世, 福田真嗣, 曽我朋義, 角田洋一, 正宗淳, 本橋ほづみ

    日本生化学会大会(Web) 96th 2023年

  4. 活性化マクロファージがおりなす起炎症反応:システイン代謝から考える

    武田遥奈, 村上昌平, 赤池孝章, 澤智裕, 関根弘樹, 本橋ほづみ

    がんと代謝研究会プログラム&抄録集 9th 2023年

  5. エネルギー代謝におけるKEAP1-NRF2制御系と硫黄代謝の役割 招待有り

    草野佑典, 村上昌平, 本橋ほづみ

    化学と生物 61 (4) 188-195 2023年

  6. NRF2活性化による抗老化作用に関わる分子機構 招待有り

    村上昌平, 成恩圭, 本橋ほづみ

    Geriatric Medicine (老年医学) 61 (1) 55-61 2023年

  7. シスチン/グルタミン酸トランスポーターxCTの阻害による慢性炎症性腸疾患モデルでの抗炎症作用

    岩城 英也, 関根 弘樹, 村上 昌平, 加藤 伸史, 北村 大志, 魏 范研, 福田 真嗣, 曽我 朋義, 角田 洋一, 正宗 淳, 本橋 ほづみ

    日本生化学会大会プログラム・講演要旨集 95回 1T08a-07 2022年11月

    出版者・発行元: (公社)日本生化学会

  8. NRF2によるミトコンドリア機能制御

    成恩圭, 村上昌平, 本橋ほづみ

    医学のあゆみ 281 (12) 1162-1167 2022年6月

  9. マウス胎児線維芽細胞を用いたNRF2活性化腫瘍モデルの作成

    飯田謙人, 岡崎慶斗, 北村大志, 村上昌平, 本橋ほづみ

    日本癌学会学術総会抄録集(Web) 81st 2022年

  10. 超硫黄分子に依存した造血幹細胞機能制御に関わるSingle Cell Multiomics解析

    武田遥奈, 村上昌平, 守田匡伸, 赤池孝章, 本橋ほづみ

    日本生化学会大会(Web) 95th 2022年

  11. 【老化と慢性炎症】老化関連脳疾患におけるNRF2活性化作用

    村上 昌平, 本橋 ほづみ

    別冊Bio Clinica: 慢性炎症と疾患 10 (2) 10-14 2021年10月

    出版者・発行元: (株)北隆館

  12. 【老化、加齢疾患研究を俯瞰し、健康長寿社会実現の夢を開く】Seminar 個体の老化とKEAP1-NRF2制御系

    村上 昌平, 本橋 ほづみ

    Geriatric Medicine 59 (7) 665-670 2021年7月

    出版者・発行元: (株)ライフ・サイエンス

    ISSN: 0387-1088

  13. Klotho欠損マウスの老化様症状はNRF2の欠損により悪化し,その活性化により緩和される

    ZHAO Mingyue, 村上昌平, 松丸大輔, 本橋ほづみ

    日本生化学会大会(Web) 94th 2021年

  14. がんの代謝研究から 新たな創薬標的の可能性 招待有り

    岸野 明洋, 村上 昌平, 赤池 孝章, 本橋 ほづみ

    医薬品医療機器レギュラトリーサイエンス 51 (11) 576-584 2020年11月

    出版者・発行元: (一財)医薬品医療機器レギュラトリーサイエンス財団

    ISSN: 1884-6076

    詳細を見る 詳細を閉じる

    転写因子NRF2の活性化は細胞の恒常性維持に貢献する一方で、癌の悪性化に寄与している。肝臓におけるオートファジーの機能不全は、NRF2活性化と協調することで、腫瘍形成を促進する。また近年、NRF2活性化は硫黄代謝を積極的に利用することによっても癌の増殖に寄与する可能性が示された。癌細胞におけるNRF2の活性化が果たす役割、癌細胞におけるNRF2とオートファジー、NRF2と硫黄代謝との関連、NRF2の創薬標的の可能性について述べた。

  15. Scurfyマウスにおける全身性のNRF2活性化がもたらす炎症抑制作用の解析(Systemic activation of NRF2 alleviates lethal autoimmune inflammation in scurfy mice)

    鈴木 琢磨, 村上 昌平, 張替 秀郎, 本橋 ほづみ

    臨床血液 59 (9) 1515-1515 2018年9月

    出版者・発行元: (一社)日本血液学会-東京事務局

    ISSN: 0485-1439

    eISSN: 1882-0824

  16. 血液・免疫細胞および白血病細胞におけるKEAP1-NRF2制御系の役割 招待有り

    村上 昌平, 本橋 ほづみ

    臨床血液 57 (10) 1860-1868 2016年10月

    出版者・発行元: (一社)日本血液学会-東京事務局

    ISSN: 0485-1439

    eISSN: 1882-0824

  17. オルガネラトキシコロジー NRF2依存性環境ストレス応答 内耳酸化ストレス障害の軽減に対するNRF2の貢献

    本蔵 陽平, 松尾 洋孝, 村上 昌平, 崎山 真幸, 水足 邦雄, 塩谷 彰浩, 山本 雅之, 森田 一郎, 四ノ宮 成祥, 川瀬 哲明, 香取 幸夫, 本橋 ほづみ

    The Journal of Toxicological Sciences 41 (Suppl.) S90-S90 2016年6月

    出版者・発行元: (一社)日本毒性学会

    ISSN: 0388-1350

  18. A stress-responsive transcriptional factor NRF2 activates hematopoietic stem cells 査読有り

    Murakami Shohei, Masayuki Yamamoto, Hozumi Motohashi

    BLOOD 126 (23) 2015年12月

    ISSN: 0006-4971

    eISSN: 1528-0020

  19. NRF2活性化による、強大音曝露に伴う酸化ストレスからの内耳保護効果の解明

    本蔵 陽平, 村上 昌平, 山本 雅之, 川瀬 哲明, 香取 幸夫, 本橋 ほづみ

    日本生化学会大会・日本分子生物学会年会合同大会講演要旨集 88回・38回 [3P1212]-[3P1212] 2015年12月

    出版者・発行元: (公社)日本生化学会

  20. A STRESS-RESPONSIVE TRANSCRIPTIONAL FACTOR NRF2 ACTIVATES HEMATOPOIETIC STEM CELLS 査読有り

    Shohei Murakami, Masayuki Yamantoto, Hozumi Motohashi

    EXPERIMENTAL HEMATOLOGY 43 (9) S82-S82 2015年9月

    ISSN: 0301-472X

    eISSN: 1873-2399

  21. 【ストレス応答性転写因子:その新機能とがん、免疫・代謝・変性疾患との関係】Keap1-Nrf2制御系と疾患の治療戦略 招待有り

    村上 昌平, 本橋 ほづみ

    細胞工学 33 (7) 728-733 2014年6月

    出版者・発行元: (株)学研メディカル秀潤社

    ISSN: 0287-3796

  22. 【活性酸素-基礎から病態解明・制御まで】基礎編 がん細胞におけるKeap1-Nrf2制御系の機能と役割 招待有り

    村上 昌平, 本橋 ほづみ

    医学のあゆみ 247 (9) 811-818 2013年11月

    出版者・発行元: 医歯薬出版(株)

    ISSN: 0039-2359

  23. 【活性酸素シグナル制御とレドックスホメオスタシス】酸化ストレスシグナルとKeap1-Nrf2システムの役割 招待有り

    村上 昌平, 本橋 ほづみ

    細胞工学 31 (2) 144-149 2012年1月

    出版者・発行元: (株)学研メディカル秀潤社

    ISSN: 0287-3796

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講演・口頭発表等 21

  1. 細胞増殖・分化制御におけるミトコンドリア硫黄代謝の役割 招待有り

    村上昌平, Mingyue Zhao, 守田匡伸, 井田智章, 赤池孝章, 本橋ほづみ

    第143回 日本薬学会 2023年3月26日

  2. 造血幹細胞におけるミトコンドリア内超硫黄分子の生理学的役割(採択済)

    村上昌平, Mingyue Zhao, 井田智章, 守田匡伸, 赤池孝章, 本橋ほづみ

    第95回 日本生化学会大会

  3. Physiological function of mitochondrial sulfer metabolism in hematopoietic stem cells(採択済) 招待有り

    Shohei Murakami, Mingyue Zhao, Masanobu Morita, Tomoaki Ida, Takaaki Akaike, Hozumi Motohashi

    The 12th international conference on the Biology, Chemistry, and Therapeutic Applications of Nitric Oxide

  4. ミトコンドリア内超硫黄分子の生理学的役割の解明

    村上昌平, Mingyue Zhao, 井田智章, 守田匡伸, 赤池孝章, 本橋ほづみ

    第88回 日本生化学会東北支部会例会・シンポジウム 2022年5月27日

  5. 造血細胞分化・維持制御における超硫黄分子の役割

    村上昌平, Mingyue Zhao, 守田匡伸, 井田智章, 松永哲郎, 赤池孝章, 本橋ほづみ

    第21回 分子予防環境医学研究会 2022年2月12日

  6. ミトコンドリアに局在するCars2が産生する超硫黄分子の生理学的役割 招待有り

    JST-CREST「多細胞間相互作用」Rising Star Webinar 2021年12月27日

  7. 生体内超硫黄分子の役割と細胞老化との関係性

    村上昌平, 本橋ほづみ

    AMED 個体・臓器老化研究拠点 若手発表会 2021年12月19日

  8. 造血幹細胞における超硫黄分子の役割

    村上昌平, Mingyue Zhao, 守田匡伸, 松永哲郎, 井田智章, 赤池孝章, 本橋ほづみ

    第97回 日本生化学会大会 2021年11月5日

  9. 造血幹細胞における超硫黄分子の役割

    村上昌平, Mingyue Zhao, 守田匡伸, 松永哲郎, 井田智章, 赤池孝章, 本橋ほづみ

    生理研研究会2021 2021年7月31日

  10. 造血幹細胞における超硫黄分子の役割

    村上昌平, Mingyue Zhao, 守田匡伸, 松永哲郎, 井田智章, 赤池孝章, 本橋ほづみ

    第87回 日本生化学会東北支部会例会・シンポジウム 2021年5月29日

  11. Mobilization of JAK2V617F cells is essential for full development of polycythemia vera

    Shohei Murakami, Daniel Lewandowski

    Journées Jeunes Chercheurs en cancérologie (#Meeting of Young Scientists on Cancers) 2019年

  12. Movability of JAK2V617F-positive hematopoietic stem cells is indispensable for polycythemia vera progression

    Shohei Murakami, Barroca Vilma, Villeval Jean-Luc, Perié Leïla, Paul-Henri Romeo, Daniel Lewandowski

    26th Club Hematopoiesis and Oncogenesis meeting 2019年

  13. Analysis of the propagation of JAK2V617F myeloproliferative neoplasms using one leg-irradiated transplantation system

    Shohei Mrakami, Daniel Lewandowski

    Journées Jeunes Chercheurs en cancérologie (#Meeting of Young Scientists on Cancers) 2018年

  14. Keap1-Nrf2制御系による造血幹細胞の増殖・老化制御

    村上昌平

    新学術領域研究 酸素生物学&ダインイングコード 合同若手会議 2016年

  15. A stress-responsive transcriptional factor NRF2 activates hematopoietic stem cells

    Shohei Murakami, Masayuki Yamamoto, Hozumi Motohashi

    57th ASH Annual Meeting and Exposition 2015年

  16. A stress-responsive transcriptional factor NRF2 activates hematopoietic stem cells

    Shohei Murakami, Masayuki Yamamoto, Hozumi Motohashi

    44th Annual Scientific Meeting of the ISEH 2015年

  17. 造血幹細胞におけるKeap1-Nrf2制御系の機能解析 招待有り

    村上昌平

    第24回がん・エピゲノム研究会 2015年4月15日

  18. 造血幹細胞におけるKEAP1−NRF2制御性の機能解析

    村上昌平, 本橋ほづみ, 山本雅之

    日本生化学会東北支部第81回例会・シンポジウム 2015年

  19. Keap1−Nrf2制御系の造血幹細胞における役割の解明

    村上昌平, 山本雅之, 本橋ほづみ

    日本生化学会東北支部第80回例会・シンポジウム 2014年5月10日

  20. Functional analysis of Keap1-Nrf2 system in hematopoietic stem cells

    Shohei Murakami, Masayuki Yamamoto, Hozumi Motohashi

    17th Biennial Meeting of Society for Free Radical Research International 2014年

  21. Functional analysis of Keap1-Nrf2 system in hematopoietic stem cells

    The Environmental Response IV 2014年

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共同研究・競争的資金等の研究課題 7

  1. 呼気凝縮液を用いた呼気オミックス解析による慢性移植肺機能不全の病態解明

    大石 久, 本橋 ほづみ, 村上 昌平, 渡邉 龍秋, 岡田 克典

    2024年4月1日 ~ 2027年3月31日

  2. 巨核球・赤血球前駆細胞におけるミトコンドリア依存的な分化制御機構の解明

    村上 昌平

    2024年4月1日 ~ 2027年3月31日

  3. 造血幹細胞におけるポリスルフィド依存的なミトコンドリア機能の解明

    村上 昌平

    提供機関:Japan Society for the Promotion of Science

    制度名:Grants-in-Aid for Scientific Research Grant-in-Aid for Early-Career Scientists

    研究種目:Grant-in-Aid for Early-Career Scientists

    研究機関:Tohoku University

    2021年4月 ~ 2023年3月

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    本研究では、ミトコンドリア内においてシステインパースルフィド(CysSSH)を産生できなくなるCARS2変異(Cars2 IKO)マウスを用いて、造血幹細胞におけるCysSSHに起因するポリスフィドの役割について解析している。 まず、Cars2 IKOマウスの骨髄細胞を解析したところ、アポトーシスの亢進と共に造血幹細胞が減少しており、赤血球細胞への分化が著しく障害されていることがわかった。そこで、造血幹細胞の競合的連続移植実験を行った結果、Cars2 IKOマウスの造血幹細胞は骨髄ニッチ非依存的、つまり、細胞自律的に幹細胞性を消失していることがわかった。次に、この造血幹細胞のミトコンドリア機能を調べたところ、膜電位の消失と活性酸素種の蓄積が観察された。また、これらミトコンドリア機能障害は全骨髄細胞においても観察され、さらにADP/ATP比および酸素消費量を調べると、Cars2 IKOの骨髄細胞ではADP/ATP比の上昇および酸素消費の低下が観察された。以上のことから、Cars2 IKOマウスで観察される造血幹細胞の機能異常はミトコンドリア機能不全が原因であることが示唆された。 一方、質量分析装置を用いて、細胞内に遊離したシステイン(CysSH)、CysSSH、その他硫黄代謝物を調べたところ、Cars2 IKOマウスの骨髄細胞では予想と反し、CysSHとCysSSHは減少していないことがわかった。Cars2はシステニル-tRNA合成活性を持ち、タンパク質の翻訳と同時にCysSHをCysSSHに変化し、タンパク質のCysSH残基をパースルフィド化することが知られている。ゆえに、上記で観察されたCars2 IKOでの造血幹細胞の機能不全はタンパク質のCysSH残基のパースルフィド化不全が原因であると考えられる。 今後は、より詳細な分子機能の解明を目指す。

  4. Study on behavior of myeloproliferative neoplasms originated from one initial site

    Shohei Murakami, Daniel Lewandowski

    提供機関:Fondation de France

    制度名:Postdoc Fellowship

    研究機関:CEA/DSV/iRCM/LRTS

    2019年7月 ~ 2020年3月

  5. Nrf2誘導剤による造血幹細胞の活性化とその分子機構の解明

    村上 昌平, 鈴木 琢磨

    提供機関:Japan Society for the Promotion of Science

    制度名:Grants-in-Aid for Scientific Research Grant-in-Aid for Young Scientists (B)

    研究種目:Grant-in-Aid for Young Scientists (B)

    研究機関:Tohoku University

    2015年4月 ~ 2017年3月

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    本研究では、ストレス応答的に活性化する転写因子Nrf2の一時的な活性化が造血幹細胞を増加させるかどうかを検討した。Nrf2誘導剤であるCDDO-Imをマウスに投与し、造血幹細胞を調べると、Nrf2の活性化は造血幹細胞の増殖を促進させることが分かった。しかし、骨髄移植実験の結果から、この増加した造血幹細胞は分化し易く、幹細胞機能を維持していないと考えられた。一方、Nrf2が活性化した造血幹細胞は、トロンボポエチン(TPO)存在下で培養すると、巨核球様細胞に分化し易いことが分かった。ゆえに、Nrf2活性化はTPOへの感受性を亢進させることで、造血幹細胞の増殖・分化を誘導していると推察される。

  6. アレルギー疾患における肥満細胞と好塩基球の分化・産生に関わる分子機構の解明と、Keap1-Nrf2制御系を標的とした治療法開発の有効性の検討

    村上昌平

    2014年10月 ~ 2016年3月

  7. 白血病幹細胞における幹細胞性維持と薬剤・放射線耐性に関わるNrf2の役割の解明

    村上 昌平

    提供機関:Japan Society for the Promotion of Science

    制度名:Grants-in-Aid for Scientific Research Grant-in-Aid for JSPS Fellows

    研究種目:Grant-in-Aid for JSPS Fellows

    研究機関:Tohoku University

    2011年4月 ~ 2014年3月

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    1. 長期造血幹細胞におけるNrf2の役割の解明 造血細胞でKeap1を欠損させた(Keap1CKO)マウスを用いて、長期造血幹細胞におけるNrf2活性化の影響を調べた。競合的骨髄移植実験を行うと、Keap1欠損の長期造血幹細胞は生着能が低下していた。 しかし同時に、末梢血細胞への分化が抑制されていた。細胞周期を評価すると、Keap1欠損の長期造血幹細胞では静止期(GO期)細胞が減少していた。ゆえに、Keap1欠損による長期造血幹細胞の機能障害は細胞周期の亢進が一つの原因であると考えられた。これら表現型のNrf2依存性を検討するために、Keap1CKO::Nrf2^<-/->マウスの長期造血幹細胞を用いて移植実験を行った。Keap1CKO::Nrf2^<-/->マウス由来の長期造血幹細胞はControl細胞と同程度の生着率を示し、Keap1欠損細胞で観察された生着能の低下は観察されず、また末梢血細胞への分化抑制も観察されなかった。ゆえに、Keap1欠損で観察された表現型はNrf2依存的であることが示唆された。したがって、長期造血幹細胞における恒常的なNrf2活性化は、幹細胞性を障害すると考えられる。 2. 白血病幹細胞におけるNrf2の役割の解明 誘導的白血病モデルマウス(PtenCKO)由来の骨髄細胞を用いて、白血病幹細胞におけるNrf2の貢献を調べた。PtenCKOマウスの骨髄細胞を競合的にレシピエントマウスへ移植し、その後で白血病誘導を行った。その結果、PtenCKO::Nrf2^<-/->細胞を持つマウスは、PtenCKO::Nrf2^<+/+>細胞を持つマウスと比較して、生存率が良い事が示された。これは、PtenCKO::Nrf2^<-/->由来の白血病幹細胞は維持能が低いために、レシピエントマウスが白血病発症に至らないことを示唆している。ゆえに、Nrf2は白血病幹細胞の維持に重要であると考えられる。

︎全件表示 ︎最初の5件までを表示