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◆ Journal of experimental botany2026-09-16

Natural variation in IBF1 confers antimicrobial activity through altered flavonoid accumulation in rice hulls.

Yoshiaki Ueda, Yoshinori Murata, Nozomu Sakurai, Takuya Ogata, Hiroki Saito, Juan Pariasca-Tanaka, Katsuhiko Kondo, Hideki Takanashi, Takuma Ishizaki, Yasunari Fujita, Matthias Wissuwa

原始摘要(英文原文)· Original abstract
Secondary metabolites perform diverse physiological functions, and studies have identified genes and mechanisms underlying their biosynthesis. However, the genetic basis of intraspecific variation in secondary metabolism remains poorly understood, particularly in less-studied tissues such as rice hulls. In this study, we identified variants in the F-box protein IBF1 that underlie genotypic differences in hull color and flavonoid accumulation using positional cloning. While IR64 (straw-white hull) harbors the functional IBF1, DJ123 (pigmented hull) harbors frame-shift mutations that result in the loss of a Kelch domain. Yeast two-hybrid analysis showed that all three Kelch domains of IBF1 are required for interaction with chalcone synthase 1 (CHS1). Accordingly, the DJ123 variant (IBF1DJ123) does not interact with CHS1. This finding was further supported by deep learning-based structural modeling. An IR64-based chromosomal segment substitution line (CSSL) carrying IBF1DJ123 showed increased flavonoid content and reduced expression of CAD, a gene involved in lignin synthesis, compared to IR64. Metabolites in the CSSL suppressed the growth and siderophore generation activity of Pantoea species, which can act as beneficial or pathogenic endophytes. This study highlights the impact of a single gene on diverse metabolite accumulation patterns and suggests that such variation may be exploited for defense against pathogens.
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Natural variation in IBF1 confers antimicrobial activity through altered flavonoid accumulation in rice hulls. — 科研速览 Science Skim