类黄酮
固氮
代谢物
固氮酶
化学
异黄酮
大豆黄酮
生物化学
橙皮素
柚皮素
慢生型大豆根瘤菌
植物
结核(地质)
槲皮素
食品科学
生物
次生代谢物
固定(群体遗传学)
根瘤
类黄酮生物合成
干重
查尔酮合酶
新陈代谢
作者
Chu Xu,Kun Liu,Shuoshuo Shi,Xuelai Wang,Qijian Zhang,Yuan Gao,Xiaochen Lyu,Chunmei Ma
摘要
Exogenous nitrogen (N) strongly affects soybean nodulation and N fixation; the regulatory mechanisms by which it modulates the flavonoid metabolic network remain largely unclear. In this study, we used a unilateral nodulation system in dual-rooted soybean plants and combined physiological measurements, quantitative real-time PCR (qPCR), and matrix-assisted laser desorption/ionization mass spectrometry imaging (MALDI-MSI) to examine how exogenous N affects flavonoid metabolism, nodule development and N fixation activity. Exogenous N significantly decreased nodule number, dry weight and nitrogenase activity. MALDI-MSI revealed distinct tissue-specific flavonoid distribution patterns: naringenin and its downstream metabolites were enriched in the nitrogen fixation zone (NFZ), whereas isoflavonoids such as daidzein and calycosin primarily accumulated in the cortex (Ctx). Exogenous N disrupted these spatial distributions and caused a progressive reduction in metabolite abundance. qPCR analysis showed that sustained exogenous N suppressed the expression of GmCHI1A, GmCHI1B1, GmIFS1 and GmIFS2, while markedly inducing GmCHS7, GmCHS8 and GmC4H, suggesting a reallocation of metabolic flux within the flavonoid pathway. Collectively, these findings indicate that exogenous N reshapes the flavonoid metabolic network, weakens symbiotic signalling and ultimately compromises nodule development and N fixation efficiency.
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