研究者詳細

顔写真

ウタガワ ヨシノブ
宇田川 喜信
Yoshinobu Utagawa
所属
未来科学技術共同研究センター 開発研究部 酸素代謝制御プロジェクト
職名
特任助教(研究)
学位
  • 博士(工学) (東北大学)

e-Rad 研究者番号
61039997

経歴 2

  • 2026年4月 ~ 継続中
    東北大学 未来科学技術共同研究センター 酸素代謝制御プロジェクト 特任助教

  • 2024年4月 ~ 2026年3月
    日本学術振興会 特別研究員DC2

学歴 4

  • 東北大学 大学院工学研究科 バイオ工学専攻

    2023年4月 ~ 2026年3月

  • 東北大学 大学院環境科学研究科 先端環境創成学専攻

    2021年4月 ~ 2023年3月

  • 東北大学 工学部 化学・バイオ工学科

    2017年4月 ~ 2021年3月

  • 宮城県仙台第三高等学校 普通科

    2014年4月 ~ 2017年3月

委員歴 5

  • 日本動物実験代替法学会 3Rs啓発委員

    2026年4月 ~ 継続中

  • 分析化学会第75年会 実行委員

    2026年8月 ~ 2026年9月

  • 第20回バイオ関連化学シンポジウム 実行委員

    2026年6月 ~ 2026年9月

  • 化学とマイクロ・ナノシステム学会 第50回研究会 若手企画実行委員

    2024年4月 ~ 2024年11月

  • 化学とマイクロ・ナノシステム学会 第46回研究会 若手企画実行委員

    2022年4月 ~ 2022年11月

所属学協会 5

  • 日本動物実験代替法学会

    2023年 ~ 継続中

  • 日本分析化学会

    2023年 ~ 継続中

  • 化学とマイクロ・ナノシステム学会

    2021年 ~ 継続中

  • 日本生物工学会

    2023年 ~ 2026年3月

  • 電気化学会

    2021年 ~ 2026年3月

受賞 6

  1. 工学研究科長賞

    2026年3月 東北大学

  2. 東北分析化学奨励賞

    2025年12月 日本分析化学会東北支部

  3. 多元物質科学奨励賞

    2024年12月 東北大学 多元物質科学研究所

  4. フロンティア・ラボ賞

    2024年7月 日本分析化学会東北支部

  5. 生物工学学生優秀賞(飛翔賞)

    2023年9月 日本生物工学会

  6. 工学部長賞

    2021年3月 東北大学

︎全件表示 ︎最初の5件までを表示

論文 18

  1. Conductive Fibers of Chitosan/DNA Interfacial Polyelectrolyte Complexation Incorporating Carbon Nanotubes 査読有り

    Yoshinobu Utagawa, Masahiro Takinoue, Shin-ichiro M. Nomura, Yusuke Sato, Hiroaki Onoe, Toshinori Fujie, Hikaru Nakazawa, Mitsuo Umetsu, Hiroya Abe, Hitoshi Shiku, Kosuke Ino

    ACS Applied Materials & Interfaces 18 (15) 22404-22413 2026年4月8日

    出版者・発行元: American Chemical Society (ACS)

    DOI: 10.1021/acsami.6c00347  

    ISSN:1944-8244

    eISSN:1944-8252

  2. Nondestructive In-Situ Measurement of Alkaline Phosphatase Activity of Human Intestinal Organoids in Hydrogel Domes Using Scanning Electrochemical Microscopy 査読有り

    Yoshinobu Utagawa, Ayaka Ogihara, Yasuhiko Shinoda, Fei Li, Hiroya Abe, Hitoshi Shiku, Kosuke Ino

    Analytical Chemistry 98 (12) 8804-8809 2026年3月6日

    出版者・発行元: American Chemical Society (ACS)

    DOI: 10.1021/acs.analchem.5c07602  

    ISSN:0003-2700

    eISSN:1520-6882

  3. Stereolithographic Hydrogel Microfluidic Platform for Monitoring Cellular Respiration via Scanning Electrochemical Microscopy 査読有り

    Taiyo Kanno, Yoshinobu Utagawa, Yusuke Kanno, Fei Li, Hiroya Abe, Hitoshi Shiku, Kosuke Ino

    Electrochemical Science Advances 6 (2) e70020 2026年3月3日

    出版者・発行元: Wiley

    DOI: 10.1002/elsa.70020  

    ISSN:2698-5977

    eISSN:2698-5977

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    ABSTRACT Hydrogel microfluidic devices have garnered significant interest as cell culture platforms owing to the efficient diffusion of nutrients through the hydrogel. Stereolithography, a versatile fabrication technique, has been widely adopted for the rapid prototyping of various microfluidic devices. Although evaluating cellular activity within microchannels during in vitro assays is essential, integrating electrochemical sensors into hydrogel devices remains challenging as these materials often cannot withstand conventional electrode fabrication processes. To address this limitation, scanning electrochemical microscopy was employed to assess cellular activity within hydrogel microfluidic devices, thereby eliminating the requirement for internal electrode fabrication. Initially, a novel hydrogel microfluidic design was developed, featuring accessible regions and thin hydrogel films. As a proof of concept, the respiratory activity of MCF‐7 cells within a hydrogel microchannel was measured. This strategy is expected to facilitate future cell‐based drug‐screening applications.

  4. Electrochemiluminescence microscopy of diffusive biocompounds as co-reactants in cell spheroids with [Ru(bpy)3]2+ 査読有り

    Tomas Mockaitis, Ryota Shikuwa, Yoshinobu Utagawa, Kimiharu Oba, Kaoru Hiramoto, Hiroya Abe, Inga Morkvenaite-Vilkonciene, Hitoshi Shiku, Kosuke Ino

    Sensors and Actuators B: Chemical 441 137944 2025年10月

    出版者・発行元: Elsevier BV

    DOI: 10.1016/j.snb.2025.137944  

    ISSN:0925-4005

  5. Development of a sensor-compatible vascular microphysiological system for metabolic monitoring during drug-induced endothelial injury 査読有り

    Yuning Fu, Ryota Okitsu, Yuji Nashimoto, Yasuhiko Shinoda, Yoshinobu Utagawa, Masateru Yamazaki, Koki Nakaya, Kosuke Ino, Hirokazu Kaji

    Analytical Sciences 41 (10) 1617-1625 2025年7月17日

    出版者・発行元: Springer Science and Business Media LLC

    DOI: 10.1007/s44211-025-00825-6  

    ISSN:0910-6340

    eISSN:1348-2246

  6. In situ electrochemical measurement of alkaline phosphatase activity in engineered gut models using a porous membrane electrode device 査読有り

    Yoshinobu Utagawa, Takeo Miyake, Yasuhiko Shinoda, Masateru Yamazaki, Hiroya Abe, Hitoshi Shiku, Kosuke Ino

    Lab on a Chip 25 (21) 5418-5427 2025年

    出版者・発行元: Royal Society of Chemistry (RSC)

    DOI: 10.1039/d5lc00341e  

    ISSN:1473-0197

    eISSN:1473-0189

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    In situ electrochemical measurements of alkaline phosphatase (ALP) activity in Caco-2 cells were achieved using a porous membrane electrode device, enabling rapid assessment of cellular differentiation.

  7. Electrochemical permeability assays of hydrolyzed acetylsalicylic acid (aspirin) in engineered gut models 査読有り

    Chisato Ito, Kosuke Ino, Yoshinobu Utagawa, Kazuyuki Iwase, Yasuhiko Shinoda, Hiroya Abe, Hitoshi Shiku

    Chemistry Letters 53 (9) 2024年8月30日

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

    DOI: 10.1093/chemle/upae174  

    ISSN:0366-7022

    eISSN:1348-0715

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    Abstract This study presents an electrochemical permeability assay for drugs using an engineered gut model. Caco-2 cells (human colorectal adenocarcinoma cell line) were cultured on porous membranes for 21 d. Acetylsalicylic acid (aspirin), after hydrolysis, was introduced from either the apical or basal sides and incubated for 2 h. The solution from the acceptor side was collected, and cyclic voltammetry was conducted to measure the hydrolyzed acetylsalicylic acid. This electrochemical approach holds promise for drug screening applications in engineered gut models.

  8. Fabrication of Two-Layer Microfluidic Devices with Porous Electrodes Using Printed Sacrificial Layers 査読有り

    Kosuke Ino, An Konno, Yoshinobu Utagawa, Taiyo Kanno, Kazuyuki Iwase, Hiroya Abe, Hitoshi Shiku

    Micromachines 15 (8) 1054 2024年8月22日

    出版者・発行元: MDPI AG

    DOI: 10.3390/mi15081054  

    eISSN:2072-666X

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    Two-layer microfluidic devices with porous membranes have been widely used in bioapplications such as microphysiological systems (MPS). Porous electrodes, instead of membranes, have recently been incorporated into devices for electrochemical cell analysis. Generally, microfluidic channels are prepared using soft lithography and assembled into two-layer microfluidic devices. In addition to soft lithography, three-dimensional (3D) printing has been widely used for the direct fabrication of microfluidic devices because of its high flexibility. However, this technique has not yet been applied to the fabrication of two-layer microfluidic devices with porous electrodes. This paper proposes a novel fabrication process for this type of device. In brief, Pluronic F-127 ink was three-dimensionally printed in the form of sacrificial layers. A porous Au electrode, fabricated by sputtering Au on track-etched polyethylene terephthalate membranes, was placed between the top and bottom sacrificial layers. After covering with polydimethylsiloxane, the sacrificial layers were removed by flushing with a cold solution. To the best of our knowledge, this is the first report on the sacrificial approach-based fabrication of two-layer microfluidic devices with a porous electrode. Furthermore, the device was used for electrochemical assays of serotonin and could successfully measure concentrations up to 5 µM. In the future, this device can be used for MPS applications.

  9. Enzyme-Free In-Situ Electrochemical Measurement Using a Porous Membrane Electrode for Glucose Transport into Cell Spheroids 査読有り

    Yoshinobu Utagawa, Kosuke Ino, Yasuhiko Shinoda, Masateru Yamazaki, Hiroya Abe, Hitoshi Shiku

    ACS Sensors 9 (8) 4248-4255 2024年7月30日

    出版者・発行元: American Chemical Society (ACS)

    DOI: 10.1021/acssensors.4c01230  

    ISSN:2379-3694

    eISSN:2379-3694

  10. Scanning electrochemical microscopy for determining oxygen consumption rates of cells in hydrogel fibers fabricated using an extrusion 3D bioprinter 査読有り

    Kosuke Ino, Mana Wachi, Yoshinobu Utagawa, An Konno, Masahiro Takinoue, Hiroya Abe, Hitoshi Shiku

    Analytica Chimica Acta 1304 342539 2024年5月

    出版者・発行元: Elsevier BV

    DOI: 10.1016/j.aca.2024.342539  

    ISSN:0003-2670

  11. Comprehensive Cell Adhesion Analysis Using Electrochemiluminescence Imaging and Electrochemical Impedance Spectroscopy 査読有り

    Kimiharu OBA, Kosuke INO, Yoshinobu UTAGAWA, Hiroya ABE, Hitoshi SHIKU

    Electrochemistry 92 (2) 022009 2024年2月6日

    出版者・発行元: The Electrochemical Society of Japan

    DOI: 10.5796/electrochemistry.23-68109  

    ISSN:1344-3542

    eISSN:2186-2451

  12. Vasculature-on-a-Chip with a Porous Membrane Electrode for In Situ Electrochemical Detection of Nitric Oxide Released from Endothelial Cells 査読有り

    Yoshinobu Utagawa, Kosuke Ino, Kaoru Hiramoto, Kazuyuki Iwase, Yuji Nashimoto, Itaru Honma, Hitoshi Shiku

    Analytical Chemistry 95 (49) 18158-18165 2023年11月28日

    出版者・発行元: American Chemical Society (ACS)

    DOI: 10.1021/acs.analchem.3c03684  

    ISSN:0003-2700

    eISSN:1520-6882

  13. Fabrication and Cell Culture Applications of Core‐Shell Hydrogel Fibers Composed of Chitosan/DNA Interfacial Polyelectrolyte Complexation and Calcium Alginate: Straight and Beaded Core Variations 査読有り

    Yoshinobu Utagawa, Kosuke Ino, Masahiro Takinoue, Hitoshi Shiku

    Advanced Healthcare Materials 12 (31) e2302011 2023年8月3日

    出版者・発行元: Wiley

    DOI: 10.1002/adhm.202302011  

    ISSN:2192-2640

    eISSN:2192-2659

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    Abstract Core‐shell hydrogel fibers are widely used in cell culture applications. A simple and rapid method is presented for fabricating core‐shell hydrogel fibers, consisting of straight or beaded core fibers, for cell culture applications. The core fibers are prepared using interfacial polyelectrolyte complexation (IPC) with chitosan and DNA. Briefly, two droplets of chitosan and DNA are brought in contact to form an IPC film, which is dragged to prepare an IPC fiber. The incubation time and DNA concentration are adjusted to prepare straight and beaded IPC fibers. The fibers with Ca 2+ are immersed in an alginate solution to form calcium alginate shell hydrogels around the core IPC fibers. To the best of the knowledge, this is the first report of core‐shell hydrogel fibers with IPC fiber cores. To demonstrate cell culture, straight hydrogel fibers are applied to fabricate hepatic models consisting of HepG2 and 3T3 fibroblasts, and vascular models consisting of human umbilical vein endothelial cells and 3T3 fibroblasts. To evaluate the effect of co‐culture, albumin secretion, and angiogenesis are evaluated. Beaded hydrogel fibers are used to fabricate many size‐controlled spheroids for fiber and cloning applications. This method can be widely applied in tissue engineering and cell analysis.

  14. Simple, Rapid, and Large‐Scale Fabrication of Multi‐Branched Hydrogels Based on Viscous Fingering for Cell Culture Applications 査読有り

    Yoshinobu Utagawa, Kosuke Ino, Kaoru Hiramoto, Hitoshi Shiku

    Macromolecular Bioscience 23 (9) 2300069 2023年4月22日

    出版者・発行元: Wiley

    DOI: 10.1002/mabi.202300069  

    ISSN:1616-5187

    eISSN:1616-5195

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    Abstract Hydrogels are widely used in cell culture applications. For fabricating tissues and organs, it is essential to produce hydrogels with specific structures. For instance, multiple‐branched hydrogels are desirable for the development of network architectures that resemble the biological vascular network. However, existing techniques are inefficient and time‐consuming for this application. To address this issue, a simple, rapid, and large‐scale fabrication method based on viscous fingering is proposed. This approach utilizes only two plates. To produce a thin solution, a high‐viscosity solution is introduced into the space between the plates, and one of the plates is peeled off. During this procedure, the solution's high viscosity results in the formation of multi‐branched structures. Using this strategy, 180 mm × 200 mm multi‐branched Pluronic F‐127 hydrogels are successfully fabricated within 1 min. These structures are used as sacrificial layers for the fabrication of polydimethylsiloxane channels for culturing human umbilical vein endothelial cells (HUVECs). Similarly, multi‐branched Matrigel and calcium (Ca)‐alginate hydrogel structures are fabricated, and HUVECs are successfully cultured inside the hydrogels. Also, the hydrogels are collected from the plate, while maintaining their structures. The proposed fabrication technique will contribute to the development of network architectures such as vascular structures in tissue engineering.

  15. Electrochemical microwell sensor with Fe–N co-doped carbon catalyst to monitor nitric oxide release from endothelial cell spheroids 査読有り

    Kaoru Hiramoto, Kazuyuki Iwase, Yoshinobu Utagawa, Yuji Nashimoto, Itaru Honma, Kosuke Ino, Hitoshi Shiku

    Analytical Sciences 38 (10) 1297-1304 2022年7月27日

    出版者・発行元: Springer Science and Business Media LLC

    DOI: 10.1007/s44211-022-00160-0  

    ISSN:0910-6340

    eISSN:1348-2246

  16. Electrochemiluminescence imaging of cellular adhesion in vascular endothelial cells during tube formation on hydrogel scaffolds 査読有り

    Kosuke Ino, Keika Komatsu, Kaoru Hiramoto, Yoshinobu Utagawa, Yuji Nashimoto, Hitoshi Shiku

    Electrochimica Acta 415 140240 2022年5月

    出版者・発行元: Elsevier BV

    DOI: 10.1016/j.electacta.2022.140240  

    ISSN:0013-4686

  17. Electrochemical Glue for Binding Chitosan–Alginate Hydrogel Fibers for Cell Culture 査読有り

    Yoshinobu Utagawa, Kosuke Ino, Tatsuki Kumagai, Kaoru Hiramoto, Masahiro Takinoue, Yuji Nashimoto, Hitoshi Shiku

    Micromachines 13 (3) 420 2022年3月8日

    出版者・発行元: MDPI AG

    DOI: 10.3390/mi13030420  

    eISSN:2072-666X

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    Three-dimensional organs and tissues can be constructed using hydrogels as support matrices for cells. For the assembly of these gels, chemical and physical reactions that induce gluing should be induced locally in target areas without causing cell damage. Herein, we present a novel electrochemical strategy for gluing hydrogel fibers. In this strategy, a microelectrode electrochemically generated HClO or Ca2+, and these chemicals were used to crosslink chitosan–alginate fibers fabricated using interfacial polyelectrolyte complexation. Further, human umbilical vein endothelial cells were incorporated into the fibers, and two such fibers were glued together to construct “+”-shaped hydrogels. After gluing, the hydrogels were embedded in Matrigel and cultured for several days. The cells spread and proliferated along the fibers, indicating that the electrochemical glue was not toxic toward the cells. This is the first report on the use of electrochemical glue for the assembly of hydrogel pieces containing cells. Based on our results, the electrochemical gluing method has promising applications in tissue engineering and the development of organs on a chip.

  18. Electrochemical Imaging of Endothelial Permeability Using a Large-Scale Integration-Based Device 査読有り

    Kosuke Ino, Hao-Jen Pai, Kaoru Hiramoto, Yoshinobu Utagawa, Yuji Nashimoto, Hitoshi Shiku

    ACS Omega 6 (51) 35476-35483 2021年12月1日

    出版者・発行元: American Chemical Society (ACS)

    DOI: 10.1021/acsomega.1c04931  

    ISSN:2470-1343

    eISSN:2470-1343

︎全件表示 ︎最初の5件までを表示

MISC 5

  1. Porous membranes integrated into electrochemical systems for bioanalysis 査読有り

    Kosuke Ino, Yoshinobu Utagawa, Kaoru Hiramoto, Hiroya Abe, Hitoshi Shiku

    Electrochemical Science Advances 4 (6) e2300026 2024年2月8日

    出版者・発行元: Wiley

    DOI: 10.1002/elsa.202300026  

    ISSN: 2698-5977

    eISSN: 2698-5977

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    Abstract Porous membranes have emerged as promising platforms for bioanalysis because of their unique properties including high surface area, selective permeability, and compatibility with electrochemical techniques. This minireview presents an overview of the development and applications of porous membrane‐based electrochemical systems for bioanalysis. First, we discuss the existing fabrication methods for porous membranes. Next, we summarize electrochemical detection strategies for bioanalysis using porous membranes. Electrochemical biosensors and cell chips fabricated from porous membranes are discussed as well. Furthermore, porous micro‐/nanoneedle devices for bioapplications are described. Finally, the utilization of scanning electrochemical microscopy for cell analysis on porous membranes and electrochemiluminescence sensors is demonstrated. Future perspectives of the described membrane detection strategies and devices are outlined in each section. This work can help enhance the performance of porous membrane‐based electrochemical systems and expand the range of their potential applications.

  2. Microarray-Based Electrochemical Biosensing

    Kosuke Ino, Yoshinobu Utagawa, Hitoshi Shiku

    Advances in Biochemical Engineering/Biotechnology 317-338 2023年6月13日

    出版者・発行元: Springer International Publishing

    DOI: 10.1007/10_2023_229  

    ISSN: 0724-6145

    eISSN: 1616-8542

  3. Electrochemical imaging for cell analysis in microphysiological systems 査読有り

    An Konno, Kosuke Ino, Yoshinobu Utagawa, Hitoshi Shiku

    Current Opinion in Electrochemistry 39 101270 2023年6月

    出版者・発行元: Elsevier BV

    DOI: 10.1016/j.coelec.2023.101270  

    ISSN: 2451-9103

  4. 酵素活性を利用するバイオ計測に向けた電気化学基質とシステム 査読有り

    宇田川喜信, 伊藤健太郎, 井上(安田)久美, 梨本裕司, 伊野浩介, 珠玖仁

    分析化学 71 (3) 109-117 2022年3月5日

    出版者・発行元: Japan Society for Analytical Chemistry

    DOI: 10.2116/bunsekikagaku.71.109  

    ISSN: 0525-1931

  5. In vitro electrochemical assays for vascular cells and organs 査読有り

    Yoshinobu Utagawa, Kaoru Hiramoto, Yuji Nashimoto, Kosuke Ino, Hitoshi Shiku

    Electrochemical Science Advances 2 (5) e2100089 2021年10月9日

    出版者・発行元: Wiley

    DOI: 10.1002/elsa.202100089  

    ISSN: 2698-5977

    eISSN: 2698-5977

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    Abstract Vascular form vascular organs and the walls of blood vessels play a crucial role in transporting nutritive compounds and drugs. Vascular cells also release factors required to maintain the homeostasis of the organs. Since cancer cells travel from tumors to secondary sites during metastasis through the vasculature, it is important to investigate the interactions of vascular and cancer cells. In vitro vascular models, including endothelial cell monolayers, tubular structures in three‐dimensional culture scaffolds, and microfluidic cultures, have been developed to facilitate research on drug discovery and in‐depth disease mechanisms. In addition to the common optical methods proposed for the evaluation of these models, electrochemical assays have been applied for evaluating cell activities and drug effects owing to their numerous advantages such as low invasion, real‐time detection, or high sensitivity and selectivity. The present review focuses on electrochemical assays related to vascular model structure and function. First, we summarize strategies for the electrochemical detection of nitric oxide and reactive oxygen species; assessment of endothelial cell barrier integrity using transepithelial electrical resistance measurements; endothelial permeability measurement using electrochemical tracers; evaluation of respiration activity, topography, and mRNA expression via electrochemical collection. We further discuss the methods for electrochemical cell analysis in detail, along with the variety of electrochemical systems available for these purposes, including microfluidic devices and electrochemical scanning probe microscopes. Finally, we conclude our review and propose perspectives for research that are likely to become relevant in the field.

共同研究・競争的資金等の研究課題 1

  1. ハイドロゲル微小流路デバイスによる小腸モデルの構築と細胞代謝物の電気化学計測

    宇田川 喜信

    2024年4月 ~ 2026年3月

    詳細を見る 詳細を閉じる

    従来の生体模倣システムでは、デバイス内で細胞機能や代謝活性を生きたままリアルタイムで評価できる手法は限られていた。そこで本研究では、代謝や薬剤応答をin situかつリアルタイムで計測可能な電気化学センサを搭載した生体模倣システムの構築を目的とした。 本年度は、多孔膜電極デバイス上での腸管モデルの構築を行った。腸管上皮細胞の3週間にわたる培養に成功し、また分化マーカーであるアルカリホスファターゼ(ALP)活性の電気化学計測に成功した。本システムは、従来のように溶液中に回収せず、デバイス上でin situ計測を行うことで、高感度かつ迅速な測定を実現した。その結果、細胞へのダメージを抑えつつ、同一サンプルを用いた繰り返し評価が可能となった。さらに、薬剤刺激によってALP活性が変化することを確認し、ALPが薬剤評価指標としても利用できる可能性を示した。 さらに、本システムのアプリケーションを広げるため、電極修飾を行った。まず、pH応答性のポリアニリンを電解重合することでpHセンサを開発した。このデバイスに細胞を培養し、細胞外pHの長時間モニタリング(24時間)を実施した結果、時間経過に伴う細胞外pHの変化の検出に成功した。また、電極表面にナノ材料を修飾することで、セロトニンの計測感度が向上することも確認できた。

社会貢献活動 2

  1. 令和6年度「三高探究の日(イノベーションフェスタ)」における研究発表

    2024年11月7日 ~

  2. 令和4年度「三高探究の日(イノベーションフェスタ)」における研究発表

    2022年11月8日 ~