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生态学杂志 ›› 2026, Vol. 45 ›› Issue (7): 2295-2304.doi: 10.13292/j.1000-4890.202607.027

• 研究报告 • 上一篇    下一篇

高剂量吡虫啉胁迫对紫花苜蓿光合作用的抑制机制

刘思雨,王雨苗,李爽,王广阳,范树高,殷燕玲*


  

  1. (鲁东大学资源与环境工程学院, 山东烟台 264025)

  • 出版日期:2026-07-10 发布日期:2026-07-16

Inhibition mechanisms of high-dose imidacloprid stress on photosynthesis in Medicago sativa.

LIU Siyu, WANG Yumiao, LI Shuang, WANG Guangyang, FAN Shugao, YIN Yanling*   

  1. (School of Resources and Environmental Engineering, Ludong University, Yantai 264025, Shandong, China).
  • Online:2026-07-10 Published:2026-07-16

摘要: 为探讨根际新烟碱类杀虫剂吡虫啉(imidacloprid,IMI)残留对紫花苜蓿(Medicago sativa)地上部叶片的光合作用损伤机制,本研究将紫花苜蓿根系暴露于包含梯度浓度IMI的营养液中,通过生长和生理指标的分析,明确了根际IMI胁迫剂量为2 mM。进而利用叶绿素荧光动力学分析了胁迫剂量IMI对紫花苜蓿光合作用的抑制效应。结果表明,根际IMI胁迫导致紫花苜蓿叶片坏死和氧化胁迫,进而造成光合抑制,表现为叶绿体结构损伤,光合潜力下降,叶绿素荧光诱导曲线(OJIP)J-P相的荧光上升受阻。进一步的JIP(快速叶绿素荧光诱导动力学)测试表明,高剂量IMI胁迫引发的光合抑制可能与光系统Ⅱ(PSⅡ)供体侧和受体侧的电子传递受损相关,导致用于电子传递的能量(ET0/CS0ET0/RC)降低,热耗散(DI0/CS0DI0/RC)的能量增加。荧光淬灭分析证实了IMI胁迫抑制光化学效率,触发非光化学淬灭,并引起光损伤。本研究揭示了根际高剂量IMI胁迫通过破坏光合电子传递引发光合损伤的机制,为深入理解新烟碱类杀虫剂的环境风险提供新的见解。


关键词: 吡虫啉, 光系统Ⅱ, 光合作用, 叶绿素荧光, 紫花苜蓿

Abstract: To investigate the mechanisms underlying photosynthetic damage in leaves of alfalfa (Medicago sativa) induced by rhizospheric residues of imidacloprid (IMI)-a neonicotinoid insecticide, alfalfa roots were exposed to Hoagland nutrient solutions containing different concentrations of IMI. Based on the responses of plant growth and physiological variables to IMI stress, an IMI stress concentration of 2 mM was determined. The inhibitory effects of high-dose IMI stress on photosynthesis of alfalfa were then analyzed using chlorophyll fluorescence kinetics. Rhizosphere IMI stress caused leaf necrosis and oxidative stress in alfalfa, leading to photosynthetic inhibition, as evidenced by chloroplast structural damage, a decline in photosynthetic potential, and block of the fluorescence rise in the J-P phase of the chlorophyll fluorescence induction curve (OJIP). Further JIP testing indicated that the photosynthetic inhibition induced by high-dose IMI stress might be associated with impaired electron transport on both the donor and acceptor sides of photosystem Ⅱ (PSⅡ). IMI stress reduced energy available for electron transport (ET0/CS0, ET0/RC) and increased energy dissipation (DI0/CS0, DI0/RC). Fluorescence quenching analysis confirmed that high-dose IMI inhibited photochemical efficiency, triggered nonphotochemical quenching, and caused photodamage. These findings revealed the mechanism by which high-dose IMI in the rhizosphere significantly inhibits photosynthesis of alfalfa by impairing electron transport in PSⅡ, providing new insights into the environmental risks of neonicotinoid insecticides.


Key words: imidacloprid, photosystem Ⅱ, photosynthesis, chlorophyll fluorescence, Medicago sativa