N -glucosylation of indole-3-acetyl amino acids modulates auxin metabolism and growth traits in Oryza sativa

生长素 生物 等位基因 氨基酸 生物化学 新陈代谢 突变体 代谢途径 遗传学 信号转导 细胞生物学 表型 植物生长 野生型 基因 单倍型
作者
Anna Zenji,Kimihiko Hata,Shoji Segami,Nobue Makita,Mikiko Kojima,Mika Yoshino-Kida,K. Nagai,Motoyuki Ashikari,Kazuki Matsubara,Masahiro Yano,Shuichi Fukuoka,Ken‐ichiro Hayashi,Yutaka Sato,Tokunori Hobo,Yoshiaki Inukai,Hitoshi Sakakibara
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (12): e2527570123-e2527570123
标识
DOI:10.1073/pnas.2527570123
摘要

Dynamic regulation of auxin (indole-3-acetic acid; IAA) levels is crucial for proper plant growth and development and is finely regulated through biosynthesis, transport, metabolic inactivation, and signal transduction. While O-glucosylation of IAA is well established, the physiological significance of N-glucosylation pathways acting on IAA-amino acid conjugates remains largely unexplored. Here, we identify a UDP-glucosyltransferase in rice (Oryza sativa), designated IAAspGT, that catalyzes the N-glucosylation of indole-3-acetyl (IA) amino acid conjugates. Functional analysis revealed that natural allelic variants of IAAspGT differ markedly in enzymatic activity, with the high-activity allele prevalent in indica and the low-activity allele in japonica cultivars. Mutational analysis identified key residues within the glucose-accepting substrate-binding domain that account for this variation. A metabolic perturbation experiment demonstrated that IAAspGT competes with the DAO-mediated oxidation, thereby affecting active auxin levels. Plants harboring the high-activity allele exhibited enhanced root elongation under nutrient-deficient conditions and altered growth allocation between the panicle and other above-ground organs. Haplotype analysis indicated that the high-activity allele is ancestral and widely retained in the wild relatives. These findings establish IA-amino acid N-glucosylation as a previously overlooked metabolic branch that modulates auxin availability and contributes to environmental responses and growth plasticity in rice.
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