極低温顕微鏡が食料安全保障を強化する可能性を発見 (How cryogenic microscopy could help strengthen food security)

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2025-01-15 スイス連邦工科大学ローザンヌ校 (EPFL)

EPFLとローザンヌ大学の研究チームは、CryoNanoSIMS技術を用いて、植物が塩ストレスに対処する仕組みを詳細に解明しました。研究では、「SOS1」という遺伝子が、塩ストレス下でナトリウムを細胞内の液胞に隔離することで、植物を保護していることを初めて可視化しました。このエネルギー集約的な防御機構は、植物の成長を抑制する可能性がありますが、塩耐性を持つ種の育種や食品安全保障の改善に役立つ知見を提供します。本研究成果は「Nature」に掲載されました。

<関連情報>

元素クライオイメージングによりSOS1依存性の液胞ナトリウム蓄積が明らかになった Elemental cryo-imaging reveals SOS1-dependent vacuolar sodium accumulation

Priya Ramakrishna,Francisco M. Gámez-Arjona,Etienne Bellani,Cristina Martin-Olmos,Stéphane Escrig,Damien De Bellis,Anna De Luca,José M. Pardo,Francisco J. Quintero,Christel Genoud,Clara Sánchez-Rodriguez,Niko Geldner & Anders Meibom
Nature  Published:15 January 2025
DOI:https://doi.org/10.1038/s41586-024-08403-y

極低温顕微鏡が食料安全保障を強化する可能性を発見 (How cryogenic microscopy could help strengthen food security)

Abstract

Increasing soil salinity causes significant crop losses globally; therefore, understanding plant responses to salt (sodium) stress is of high importance. Plants avoid sodium toxicity through subcellular compartmentation by intricate processes involving a high level of elemental interdependence. Current technologies to visualize sodium, in particular, together with other elements, are either indirect or lack in resolution. Here we used the newly developed cryo nanoscale secondary ion mass spectrometry ion microprobe1, which allows high-resolution elemental imaging of cryo-preserved samples and reveals the subcellular distributions of key macronutrients and micronutrients in root meristem cells of Arabidopsis and rice. We found an unexpected, concentration-dependent change in sodium distribution, switching from sodium accumulation in the cell walls at low external sodium concentrations to vacuolar accumulation at stressful concentrations. We conclude that, in root meristems, a key function of the NHX family sodium/proton antiporter SALT OVERLY SENSITIVE 1 (also known as Na+/H+ exchanger 7; SOS1/NHX7) is to sequester sodium into vacuoles, rather than extrusion of sodium into the extracellular space. This is corroborated by the use of new genomic, complementing fluorescently tagged SOS1 variants. We show that, in addition to the plasma membrane, SOS1 strongly accumulates at late endosome/prevacuoles as well as vacuoles, supporting a role of SOS1 in vacuolar sodium sequestration.

生物化学工学
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