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整合转录组学和代谢组学分析揭示了玉米根系在铅胁迫下黄酮类生物合成的分子调控机制。

Integrated Transcriptomic and Metabolomic Analysis Reveals the Molecular Regulatory Mechanism of Flavonoid Biosynthesis in Maize Roots under Lead Stress.

机构信息

Yunnan Key Laboratory of Plateau Ecology and Degraded Environment Restoration, School of Ecology and Environmental Science, Yunnan University, Kunming 650091, China.

Yunnan Provincial Innovative Research Team of Environmental Pollution, Food Safety, and Human Health, Institute of Environmental Remediation and Human Health, School of Ecology and Environment, Southwest Forestry University, Kunming 650224, China.

出版信息

Int J Mol Sci. 2024 May 31;25(11):6050. doi: 10.3390/ijms25116050.

Abstract

Flavonoids are secondary metabolites that play important roles in the resistance of plants to abiotic stress. Despite the widely reported adverse effects of lead (Pb) contamination on maize, the effects of Pb on the biosynthetic processes of flavonoids in maize roots are still unknown. In the present work, we employed a combination of multi-omics and conventional assay methods to investigate the effects of two concentrations of Pb (40 and 250 mg/kg) on flavonoid biosynthesis in maize roots and the associated molecular regulatory mechanisms. Analysis using conventional assays revealed that 40 and 250 mg/kg Pb exposure increased the lead content of maize root to 0.67 ± 0.18 mg/kg and 3.09 ± 0.02 mg/kg, respectively, but they did not result in significant changes in maize root length. The multi-omics results suggested that exposure to 40 mg/kg of Pb caused differential expression of 33 genes and 34 metabolites related to flavonoids in the maize root system, while 250 mg/kg of Pb caused differential expression of 34 genes and 31 metabolites. Not only did these differentially expressed genes and metabolites participate in transferase activity, anthocyanin-containing compound biosynthetic processes, metal ion binding, hydroxyl group binding, cinnamoyl transferase activity, hydroxycinnamoyl transferase activity, and flavanone 4-reductase activity but they were also significantly enriched in the flavonoid, isoflavonoid, flavone, and flavonol biosynthesis pathways. These results show that Pb is involved in the regulation of maize root growth by interfering with the biosynthesis of flavonoids in the maize root system. The results of this study will enable the elucidation of the mechanisms of the effects of lead on maize root systems.

摘要

类黄酮是植物对非生物胁迫产生抗性的重要次生代谢物。尽管铅(Pb)污染对玉米的不良影响已被广泛报道,但 Pb 对玉米根系类黄酮生物合成过程的影响仍不清楚。在本工作中,我们采用多组学和常规测定方法相结合,研究了两种浓度(40 和 250 mg/kg)Pb 对玉米根系类黄酮生物合成的影响及其相关分子调控机制。常规测定分析表明,40 和 250 mg/kg Pb 暴露使玉米根中的 Pb 含量分别增加到 0.67±0.18 mg/kg 和 3.09±0.02 mg/kg,但并未导致玉米根长发生显著变化。多组学结果表明,40 mg/kg Pb 暴露引起 33 个基因和 34 个与类黄酮相关的代谢物在玉米根系中的差异表达,而 250 mg/kg Pb 暴露引起 34 个基因和 31 个代谢物的差异表达。这些差异表达的基因和代谢物不仅参与了转移酶活性、含蒽酮类化合物生物合成过程、金属离子结合、羟基结合、肉桂酰基转移酶活性、羟基肉桂酰基转移酶活性和黄烷酮 4-还原酶活性,而且还显著富集在类黄酮、异黄酮、黄酮和黄酮醇生物合成途径中。这些结果表明,Pb 通过干扰玉米根系中类黄酮的生物合成来参与玉米根系生长的调节。本研究的结果将有助于阐明 Pb 对玉米根系影响的作用机制。

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