
| ID | 69268 |
| フルテキストURL | |
| 著者 |
Wu, Shiqi
Graduate School of Information, Production and Systems, Waseda University
Nakagawa, Wakutaka
Graduate School of Information, Production and Systems, Waseda University
Mori, Yuki
Faculty and Graduate School of Environmental Engineering, The University of Kitakyushu
Azhari, Saman
Graduate School of Information, Production and Systems, Waseda University
Méhes, Gábor
Graduate School of Information, Production and Systems, Waseda University
Nishina, Yuta
Research Institute for Interdisciplinary Science, Okayama University
ORCID
Kaken ID
publons
researchmap
Kawano, Tomonori
Faculty and Graduate School of Environmental Engineering, The University of Kitakyushu
Miyake, Takeo
Graduate School of Information, Production and Systems, Waseda University
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| 抄録 | Monitoring sucrose transport in plants is essential for understanding plant physiology and improving agricultural practices, yet effective sensors for continuous and real-time in-vivo monitoring are lacking. In this study, we developed a plant-insertable sucrose sensor capable of real-time sucrose concentration monitoring and demonstrated its application as a useful tool for plant research by monitoring the sugar-translocating path from leaves to the lower portion of plants through the stem in living plants. The biosensor consists of a bilirubin oxidase-based biocathode and a needle-type bioanode integrating glucose oxidase, invertase, and mutarotase, with the two electrodes separated by an agarose gel for ionic connection. The sensor exhibits a sensitivity of 6.22 μA mM−1 cm−2, a limit of detection of 100 μM, a detection range up to 60 mM, and a response time of 90 s at 100 μM sucrose. Additionally, the sensor retained 86 % of its initial signal after 72 h of continuous measurement. Day-night monitoring from the biosensor inserted in strawberry guava (Psidium cattleianum) showed higher sucrose transport activity at night, following well the redistribution of photosynthetically produced sugars. In addition, by monitoring the forced translocation of sucrose dissolved in the stable isotopically labeled water, we demonstrated that a young seedling of Japanese cedar known as Sugi (Cryptomeria japonica) can absorb and transport both water and sucrose through light-dependently opened stomata, which is the recently revealed path for liquid uptake by higher plants. These findings highlight the potential of our sensor for studying dynamic plant processes and its applicability in real-time monitoring of sugar transport under diverse environmental conditions.
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| キーワード | Flexible wearable sensor
Plant monitoring
Carbon fiber
Multi-enzyme system
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| 発行日 | 2025-11-01
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| 出版物タイトル |
Biosensors and Bioelectronics
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| 巻 | 287巻
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| 出版者 | Elsevier BV
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| 開始ページ | 117674
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| ISSN | 0956-5663
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| NCID | AA10739666
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| 資料タイプ |
学術雑誌論文
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| 言語 |
英語
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| OAI-PMH Set |
岡山大学
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| 著作権者 | © 2025 The Authors.
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| 論文のバージョン | publisher
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| PubMed ID | |
| DOI | |
| Web of Science KeyUT | |
| 関連URL | isVersionOf https://doi.org/10.1016/j.bios.2025.117674
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| ライセンス | http://creativecommons.org/licenses/by-nc-nd/4.0/
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| 助成情報 |
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
JPMJPR20B8:
電子・イオン制御型バイオイオントロニクス
( 国立研究開発法人科学技術振興機構 / Japan Science and Technology Agency )
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