Paraphoma chrysanthemicola 影响无土栽培党参过程中受水杨酸调控的碳水化合物和叶绿素代谢

Biology Pub Date : 2024-06-03 DOI:10.3390/biology13060408
Wenbin Sun, Caiming Luo, Yamiao Wu, Miao Ding, Min Feng, F. Leng, Yonggang Wang
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引用次数: 0

摘要

从拟党参根部分离出的内生真菌 Paraphoma chrysanthemicola 会影响水杨酸(SA)水平。在 C. pilosula 中,SA 与 P. chrysanthemicola 之间的相互作用机制仍然难以捉摸。为了弄清这个问题,实验中进行了四种处理:无菌水(CK)、菊粉(FG)、SA 以及菊粉与水杨酸的组合(FG+SA)。结果表明,菊粉能促进植物生长,抵消外源 SA 对植物生长的抑制作用。生理学分析表明,P. chrysanthemicola 能降低 C. pilosula 的碳水化合物含量和酶活性,但不影响总叶绿素浓度,并能抑制外源 SA 引起的这些参数的增加。次生代谢物分析表明,在 FG 组中,可溶性蛋白质和小叶乙素的含量有所下降,而 SA 处理则导致其含量上升。P. chrysanthemicola 和 SA 处理都降低了抗氧化酶样活性。值得注意的是,FG 组的一氧化氮(NO)水平较高,而 SA 组茎中的过氧化氢(H2O2)水平较高。这项研究阐明了植物物种 P. chrysanthemicola 和 C. pilosula 之间共生动态的复杂背景,在这一动态中,水杨酸的拮抗作用十分突出。这种拮抗作用是在碳水化合物代谢和次级代谢之间的平衡中观察到的。这种平衡有可能产生活性氧(ROS)和一氧化氮(NO)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Paraphoma chrysanthemicola Affects the Carbohydrate and Lobetyolin Metabolism Regulated by Salicylic Acid in the Soilless Cultivation of Codonopsis pilosula
Paraphoma chrysanthemicola, an endophytic fungus isolated from the roots of Codonopsis pilosula, influences salicylic acid (SA) levels. The interaction mechanism between SA and P. chrysanthemicola within C. pilosula remains elusive. To elucidate this, an experiment was conducted with four treatments: sterile water (CK), P. chrysanthemicola (FG), SA, and a combination of P. chrysanthemicola with salicylic acid (FG+SA). Results indicated that P. chrysanthemicola enhanced plant growth and counteracted the growth inhibition caused by exogenous SA. Physiological analysis showed that P. chrysanthemicola reduced carbohydrate content and enzymatic activity in C. pilosula without affecting total chlorophyll concentration and attenuated the increase in these parameters induced by exogenous SA. Secondary metabolite profiling showed a decrease in soluble proteins and lobetyolin levels in the FG group, whereas SA treatment led to an increase. Both P. chrysanthemicola and SA treatments decreased antioxidase-like activity. Notably, the FG group exhibited higher nitric oxide (NO) levels, and the SA group exhibited higher hydrogen peroxide (H2O2) levels in the stems. This study elucidated the intricate context of the symbiotic dynamics between the plant species P. chrysanthemicola and C. pilosula, where an antagonistic interaction involving salicylic acid was prominently observed. This antagonism was observed in the equilibrium between carbohydrate metabolism and secondary metabolism. This equilibrium had the potential to engage reactive oxygen species (ROS) and nitric oxide (NO).
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