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β-环柠檬醛介导的代谢变化优化了[具体物种名称L.]中的生长和防御反应

β-Cyclocitral-Mediated Metabolic Changes Optimize Growth and Defense Responses in L.

作者信息

Deshpande Shreyas, Mitra Sirsha

机构信息

Department of Botany, Savitribai Phule Pune University, Pune 411007, India.

出版信息

Metabolites. 2023 Feb 23;13(3):329. doi: 10.3390/metabo13030329.

Abstract

β-cyclocitral (βCC) is one of the significant oxidative products of β-carotene. It primes plants for multiple stress acclimation without compromising plant growth. Metabolic reorganization is necessary to maintain a balance between growth and defense. However, the βCC-mediated changes in a plant's metabolic network are unknown. Here, we demonstrate how βCC-induced metabolic changes enable L. (tomato) plants to promote defense and maintain growth under stress. An analysis of early (0-240 min) and late (72 h) changes in the tomato metabolome after βCC-treatment using liquid chromatography and tandem mass spectrometry identified 57 compounds. A principal coordinate analysis suggested that βCC treatment significantly changes the metabolite profile. A variable importance in projection (VIP) analysis revealed 16 and 19 discriminant metabolites from early and late samples, respectively (VIP ≥ 1.0). Upregulated metabolites were mainly amino acids and phytophenols. Pathway enrichment analysis showed that βCC treatment influenced amino acid metabolism at early and later times; however, phenylpropanoid and isoquinoline biosynthesis were influenced only at the later time. A 66.6% similarity in the upregulated metabolites of βCC- and simulated-herbivory-treated plants confirmed βCC's role against herbivores. We conclude that βCC steers a temporal separation in amino acids and defense metabolite accumulation that optimizes resource allocation to growth and defense.

摘要

β-环柠檬醛(βCC)是β-胡萝卜素的重要氧化产物之一。它能使植物在不影响生长的情况下适应多种胁迫。代谢重组对于维持生长和防御之间的平衡是必要的。然而,βCC介导的植物代谢网络变化尚不清楚。在此,我们展示了βCC诱导的代谢变化如何使番茄植株在胁迫下促进防御并维持生长。使用液相色谱和串联质谱分析βCC处理后番茄代谢组的早期(0 - 240分钟)和晚期(72小时)变化,鉴定出57种化合物。主坐标分析表明,βCC处理显著改变了代谢物谱。投影变量重要性(VIP)分析分别从早期和晚期样品中揭示了16种和19种判别代谢物(VIP≥1.0)。上调的代谢物主要是氨基酸和植物酚类。通路富集分析表明,βCC处理在早期和晚期都影响氨基酸代谢;然而,苯丙烷类和异喹啉生物合成仅在晚期受到影响。βCC处理和模拟食草处理植物上调代谢物的66.6%相似性证实了βCC对食草动物的作用。我们得出结论,βCC引导氨基酸和防御代谢物积累的时间分离,从而优化资源在生长和防御之间的分配。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e0f/10053473/b9fa04215292/metabolites-13-00329-g001.jpg

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