イネの葉の「超撥水性」の仕組みを解明 ――洪水や乾燥に強い作物の開発と、超撥水性材料への応用に道――

2026-07-28 東京大学

東京大学大学院農学生命科学研究科と国立遺伝学研究所の共同研究グループは、イネの葉が示す超撥水性の仕組みを、表面構造・遺伝子・進化の3つの観点から世界で初めて包括的に解明した。研究成果はPlant Physiologyに掲載された。電子顕微鏡観察と100系統以上の「濡れ葉」変異体解析により、イネの葉はマイクロサイズのパピラとナノサイズのワックス結晶による階層構造によって接触角約156°の超撥水性を実現していることを明らかにした。また、パピラ形成を制御するBGLと、ワックスの量や結晶構造を制御するWSL2、WSL3、WSL4、OsHSD1/LGF1の計5つの主要遺伝子を特定した。さらに、この形質は栽培イネだけでなく祖先の野生イネにも保存されており、水辺環境への適応の過程で進化したことを示した。本成果は、洪水や乾燥、病害に強い作物の育種に向けた新たな遺伝子資源を提供するとともに、植物の超撥水構造を模倣した高機能コーティングやバイオミメティクス材料の開発への応用が期待される。

イネの葉の「超撥水性」の仕組みを解明 ――洪水や乾燥に強い作物の開発と、超撥水性材料への応用に道――
イネの超撥水性の仕組み

<関連情報>

イネの葉における超疎水性の構造的、遺伝的、および適応的基盤 Structural, genetic, and adaptive basis of superhydrophobicity in rice leaves

Tian Zhu,Asuka Hiraiwa,Saori Aiga,Manaki Mimura,Takanori Yoshikawa,Yutaka Sato,Jun-ichi Itoh
Plant Physiology  Published:23 July 2026
DOI:https://doi.org/10.1093/plphys/kiag514

Abstract

In most plants, leaf surfaces exhibit water-repellent properties, which protect against pathogens and weather. Plants such as lotus and rice have evolved outstanding water-repellent properties, termed superhydrophobicity (static contact angle >150°). However, the structural and genetic basis of these properties in crop plants remains unclear. In this study, water repellency was quantified by measuring static contact angles, and its relationship with epicuticular wax load, the extent of wax coverage assessed by scanning electron microscopy, and the differentiation of papillae was analyzed in a large collection of rice wetting-leaf mutants and diverse cultivars, as well as wild Oryza species. Analysis of leaf surface structure in mutants derived from cultivated rice revealed that the degree of water repellency largely depends on the cuticular wax quantity and quality. Although papillae differentiation contributes minorly to water repellency, it is suggested to play a crucial role in achieving superhydrophobicity. These morphological characteristics are regulated by at least 5 previously characterized genes. Furthermore, we found that superhydrophobicity is widely conserved among cultivated rice and is also present in ancestral species. These observations suggest that superhydrophobicity evolved independently of rice domestication. These findings provide a structural and genetic framework for understanding the evolution and potential adaptive significance of leaf superhydrophobicity in rice and offer insights for engineering leaf-surface traits relevant to crop resilience and management.

1204農業及び蚕糸
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