
| ID | 69095 |
| フルテキストURL |
suppl2.xlsx
39.9 KB
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| 著者 |
Nguyen Thao, Tran
Degree Program in Interdisciplinary Sciences, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
Mitani-Ueno, Namiki
Research Core for Plant Stress Science, Institute of Plant Science and Resources, Okayama University
Urano, Ryo
Division of Superconducting and Functional Materials, Research Institute for Interdisciplinary Science, Okayama University
Saitoh, Yasunori
Degree Program in Interdisciplinary Sciences, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
Wang, Peitong
Research Core for Plant Stress Science, Institute of Plant Science and Resources, Okayama University
Yamaji, Naoki
Research Core for Plant Stress Science, Institute of Plant Science and Resources, Okayama University
Shen, Jian-Ren
Degree Program in Interdisciplinary Sciences, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
ORCID
Kaken ID
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Shinoda, Wataru
Degree Program in Interdisciplinary Sciences, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
Ma, Jian Feng
Research Core for Plant Stress Science, Institute of Plant Science and Resources, Okayama University
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Suga, Michihiro
Degree Program in Interdisciplinary Sciences, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
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| 抄録 | HvAACT1 is a major aluminum (Al)-tolerance gene in barley, encoding a citrate transporter that belongs to the multidrug and toxic compound extrusion (MATE) family. This transporter facilitates citrate secretion from the roots, thereby detoxifying external Al ions—a major constraint of crop production on acidic soils. In this study, we present the outward-facing crystal structure of HvAACT1, providing insights into a citrate transport mechanism. The putative citrate binding site consists of three basic residues—K126 in transmembrane helix 2 (TM2), R358 in TM7, and R535 in TM12—creating substantial positive charges in the C-lobe cavity. Proton coupling for substrate transport may involve two pairs of aspartate residues in the N-lobe cavity, one of which corresponds to the essential Asp pair found in prokaryotic H+-coupled MATE transporters belonging to the DinF subfamily. Structural coupling between proton uptake in the N-lobe and citrate extrusion in the C-lobe can be enabled by an extensive, unique hydrogen-bonding network at the extracellular half of the N-lobe. Mutation-based functional analysis, structural comparisons, molecular dynamics simulation, and phylogenic analysis suggest an evolutionary link between citrate MATE transporters and the DinF MATE subfamily. Our findings provide a solid structural basis for citrate transport by HvAACT1 in barley and contribute to a broader understanding of citrate transporter structures in other plant species.
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| キーワード | barley
aluminum resistance
membrane protein structure
citrate transporter
MATE transporter
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| 発行日 | 2025-08-05
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| 出版物タイトル |
Proceedings of the National Academy of Sciences
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| 巻 | 122巻
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| 号 | 32号
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| 出版者 | Proceedings of the National Academy of Sciences
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| 開始ページ | e2501933122
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| ISSN | 0027-8424
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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 Author(s).
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| 論文のバージョン | publisher
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| PubMed ID | |
| DOI | |
| 関連URL | isVersionOf https://doi.org/10.1073/pnas.2501933122
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| ライセンス | https://creativecommons.org/licenses/by/4.0/
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| Citation | T. Nguyen Thao,N. Mitani-Ueno,R. Urano,Y. Saitoh,P. Wang,N. Yamaji,J. Shen,W. Shinoda,J.F. Ma, & M. Suga, Structural insights into a citrate transporter that mediates aluminum tolerance in barley, Proc. Natl. Acad. Sci. U.S.A. 122 (32) e2501933122, https://doi.org/10.1073/pnas.2501933122 (2025).
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| 助成情報 |
16H06296:
作物のミネラル輸送システムの統合解析
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
21H05034:
土壌環境変動に応答する植物のミネラル輸送システムの可塑性の解明
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
23K27143:
有害半金属のチャネルおよび輸送体における基質透過の分子基盤
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
JPMJFR230W:
光合成ベシクルを用いた光エネルギー変換の統合的理解
( 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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