Metabolome and Transcriptome Analysis of Sulfur-Induced Kiwifruit Stem Laccase Gene Involved in Syringyl Lignin Synthesis against Bacterial Canker

木质素 代谢组 漆酶 苯丙素 转录组 细胞壁 生物化学 硫黄 松柏醇 生物 化学 植物 基因 生物合成 基因表达 有机化学 代谢物
作者
Zhuzhu Zhang,Youhua Long,Xianhui Yin,Weizhen Wang,Wenzhi Li,Tingting Chen,Jia Chen,Xuetang Chen,Bince Wang,Jiling Ma
出处
期刊:Journal of Agricultural and Food Chemistry [American Chemical Society]
卷期号:71 (36): 13566-13576 被引量:8
标识
DOI:10.1021/acs.jafc.3c02653
摘要

Kiwifruit canker is caused by Pseudomonas syringae pv. actinidiae and is one of the most destructive diseases of kiwifruit worldwide. Sulfur can improve the deposit of lignin in kiwifruit stems and induce disease resistance, but the action mechanism at the molecular level remains unclear. This omics-based study revealed that sulfur-induced S lignin synthesis contributes to disease resistance. Histological staining verified sulfur-enhanced total lignin deposition in kiwifruit stems. High-performance liquid chromatography and confocal Raman microscopy showed that sulfur-activated S lignin was mainly deposited in the cell corner. Metabolome and transcriptome analysis revealed that the levels of phenylpropanoid pathway S lignin precursors sinapic acid and sinapyl alcohol were significantly increased and 16 laccase genes were upregulated. Sulfur-induced resistance defense promoted elevated laccase activity by activating the laccase genes, participating in sinapic acid and sinapyl alcohol substance synthesis, and ultimately polymerizing S lignin at cell corner against kiwifruit canker disease.
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