Xiao Xue, Ma Zuyan, Zhou Kai, Niu Qiongmei, Luo Qin, Yang Xin, Chu Xiaohui, Shan Guilian
Faculty of Animal Science and Technology, Yunnan Agricultural University, Kunming 650201, China.
Plants (Basel). 2025 Jan 3;14(1):123. doi: 10.3390/plants14010123.
dominates the subalpine meadows in Shangri-La (Southwest China) owing to its potent allelopathic effects. However, the effects underlying its allelopathy require further characterization at the physiological and molecular levels. In this study, the physiological, biochemical, and metabolic mechanisms underlying allelopathy were investigated using as a receptor plant. The treatment of seedlings with aqueous extract (EJAE) disrupted their growth by inhibiting photosynthesis, disrupting oxidation systems, and increasing soluble sugar accumulation and chlorophyll synthesis. Collectively, this causes severe impairment accompanied by abnormal photosynthesis and reduced biomass accumulation. Moreover, EJAE treatment suppressed gibberellin, indoleacetic acid, zeatin, salicylic acid, and jasmonic acid levels while promoting abscisic acid accumulation. Further metabolomic analyses identified numerous differentially abundant metabolites primarily enriched in the α-linolenic, phenylpropanoid, and flavonoid biosynthesis pathways in EJAE-treated seedlings. This study demonstrated that exhibits potent and comprehensive allelopathic effects on receptor plants, including a significant disruption of endogenous hormone synthesis, the inhibition of photosynthesis, an impairment of membrane and oxidation systems, and changes in crucial metabolic processes associated with α-linolenic, phenylpropanoid, and flavonoid biosynthesis. Thus, our study provides a solid theoretical foundation for understanding the regulatory mechanisms underlying allelopathy.
由于其强大的化感作用,在中国西南部香格里拉地区的亚高山草甸中占据主导地位。然而,其化感作用背后的机制需要在生理和分子水平上进一步表征。在本研究中,以[具体植物名称]作为受体植物,研究了化感作用背后的生理、生化和代谢机制。用[植物名称]水提取物(EJAE)处理[受体植物名称]幼苗,通过抑制光合作用、破坏氧化系统以及增加可溶性糖积累和叶绿素合成来扰乱其生长。总体而言,这会导致严重损害,伴有光合作用异常和生物量积累减少。此外,EJAE处理抑制了赤霉素、吲哚乙酸、玉米素、水杨酸和茉莉酸水平,同时促进了脱落酸积累。进一步的代谢组学分析确定了许多差异丰富的代谢物,主要富集在EJAE处理的[受体植物名称]幼苗的α-亚麻酸、苯丙烷和类黄酮生物合成途径中。本研究表明,[植物名称]对受体植物表现出强大而全面的化感作用,包括对内源激素合成的显著破坏、光合作用的抑制、膜和氧化系统的损伤以及与α-亚麻酸、苯丙烷和类黄酮生物合成相关的关键代谢过程的变化。因此,我们的研究为理解[植物名称]化感作用的调控机制提供了坚实的理论基础。