Department of Forest Genetics and Plant Physiology, Umeå Plant Science Centre, Swedish University of Agricultural Sciences, 901 83, Umeå, Sweden.
Department of Chemistry, Umeå University, 901 87, Umeå, Sweden.
New Phytol. 2023 Apr;238(1):297-312. doi: 10.1111/nph.18712. Epub 2023 Jan 31.
Wood is the most important repository of assimilated carbon in the biosphere, in the form of large polymers (cellulose, hemicelluloses including glucuronoxylan, and lignin) that interactively form a composite, together with soluble extractives including phenolic and aliphatic compounds. Molecular interactions among these compounds are not fully understood. We have targeted the expression of a fungal α-glucuronidase to the wood cell wall of aspen (Populus tremula L. × tremuloides Michx.) and Arabidopsis (Arabidopsis thaliana (L.) Heynh), to decrease contents of the 4-O-methyl glucuronopyranose acid (mGlcA) substituent of xylan, to elucidate mGlcA's functions. The enzyme affected the content of aliphatic insoluble cell wall components having composition similar to suberin, which required mGlcA for binding to cell walls. Such suberin-like compounds have been previously identified in decayed wood, but here, we show their presence in healthy wood of both hardwood and softwood species. By contrast, γ-ester bonds between mGlcA and lignin were insensitive to cell wall-localized α-glucuronidase, supporting the intracellular formation of these bonds. These findings challenge the current view of the wood cell wall composition and reveal a novel function of mGlcA substituent of xylan in fastening of suberin-like compounds to cell wall. They also suggest an intracellular initiation of lignin-carbohydrate complex assembly.
木材是以大型聚合物(纤维素、半纤维素包括葡萄糖醛酸木聚糖和木质素)的形式存在于生物圈中最重要的同化碳库,这些聚合物与包括酚类和脂肪族化合物在内的可溶性抽提物相互作用形成复合材料。这些化合物之间的分子相互作用尚未完全了解。我们将真菌α-葡萄糖醛酸酶的表达靶向到白杨(Populus tremula L. × tremuloides Michx.)和拟南芥(Arabidopsis thaliana (L.) Heynh)的木质部细胞壁中,以降低木聚糖中 4-O-甲基葡萄糖醛酸(mGlcA)取代基的含量,阐明 mGlcA 的功能。该酶影响具有类似于愈创木酚的组成的不溶性细胞壁脂类成分的含量,而愈创木酚需要 mGlcA 才能与细胞壁结合。此类愈创木酚样化合物以前在腐朽木材中被鉴定过,但在这里,我们显示它们存在于硬木和软木物种的健康木材中。相比之下,mGlcA 与木质素之间的γ-酯键对定位于细胞壁的α-葡萄糖醛酸酶不敏感,支持这些键在细胞内形成。这些发现挑战了当前对木质部细胞壁组成的看法,并揭示了木聚糖中 mGlcA 取代基在固定类似于愈创木酚的化合物到细胞壁中的新功能。它们还表明,木质素-碳水化合物复合物组装的起始是在细胞内进行的。