木质素
化学
聚合物
苯丙氨酸
细胞壁
生物合成
芳香族氨基酸
酪氨酸
有机化学
碳-13核磁共振
氨基酸
核磁共振波谱
代谢途径
生物化学
碳纤维
单体
代谢工程
新陈代谢
立体化学
质子核磁共振
标签
作者
Priya Sahu,Debkumar Debnath,Peng Xiao,Shubha S. Gunaga,Faith J. Scott,Max Bentelspacher,Yifan Xu,Frederic Mentink-Vigier,Jaime Barros-Rios,Tuo Wang
摘要
Lignin biosynthesis in grasses exhibits unique metabolic flexibility, yet the precursor-specific routing of carbon into lignin polymers remains poorly resolved in planta. Here, we combine 13C-isotope labeling with solid-state NMR under sensitivity-enhancement by dynamic nuclear polarization (DNP), to directly track phenylalanine- and tyrosine-derived carbon incorporation into the lignin polymer in Brachypodium distachyon. Precursor-specific 13C labeling reveals that phenylalanine is the dominant contributor to canonical guaiacyl and syringyl lignins, whereas tyrosine preferentially enriches hydroxyphenyl lignin and hydroxycinnamates, including ferulates characteristic of grass cell walls. Two-dimensional 13C-13C correlation NMR resolves distinct lignin moieties arising from each precursor. Disruption of p-coumarate 3-hydroxylase (C3H) selectively impairs phenylalanine-derived lignification, while tyrosine-derived lignin remains comparatively unchanged, maintaining polymer assembly through alternative metabolic routes. These findings show precursor-dependent control of lignin composition and reveal tyrosine-mediated lignification as a compensatory pathway in grasses. This work also establishes precursor-resolved solid-state NMR and DNP as a powerful framework for dissecting lignin biosynthesis and metabolic plasticity in plant cell walls.
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