RRC ID 89860
Author Zhu T, Hiraiwa A, Aiga S, Mimura M, Yoshikawa T, Sato Y, Itoh JI.
Title Structural, genetic, and adaptive basis of superhydrophobicity in rice leaves.
Journal Plant Physiol
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.
Volume 201(3)
Published 2026-7-2
DOI 10.1093/plphys/kiag514
PII 8740369
PMID 42489112
PMC PMC13413574
MeSH Adaptation, Physiological* / genetics Microscopy, Electron, Scanning Mutation Oryza* / anatomy & histology Oryza* / genetics Oryza* / physiology Oryza* / ultrastructure Plant Epidermis / ultrastructure Plant Leaves* / anatomy & histology Plant Leaves* / genetics Plant Leaves* / physiology Plant Leaves* / ultrastructure Water Waxes / metabolism Wettability
Resource
Rice TCM, CM, KCM