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生态学杂志 ›› 2026, Vol. 45 ›› Issue (9): 2972-2982.doi: 10.13292/j.1000-4890.202609.012

• 研究报告 • 上一篇    下一篇

外源亚精胺对纳米氧化铜胁迫下水稻幼苗抗氧化及细胞壁结构的影响

李世彪1,3,黄益宗1,2,3*,赵冉1,樊芳玲1,2,黄晶心1,2,孙世中1,2   

  1. (1云南师范大学能源与环境科学学院, 昆明 650500; 2高原特色中药材种植土壤质量演变退化与修复云南省野外科学观测研究站, 昆明 650500; 3西南联合研究生院, 昆明 650092)
  • 出版日期:2026-09-10 发布日期:2026-09-08

Effects of exogenous spermidine on antioxidant defense and cell wall architecture in rice seedlings under nano-CuO stress.

LI Shibiao1,3, HUANG Yizong1,2,3*, ZHAO Ran1, FAN Fangling1,2, HUANG Jingxin1,2, SUN Shizhong1,2   

  1. (1School of Energy and Environment Science, Yunnan Normal University, Kunming 650500, China; 2Yunnan Provincial Field Scientific Observation and Research Station for Evolution, Degradation, and Restoration of Soil Quality for Planting Traditional Chinese Medicine with Plateau Characteristics, Kunming 650500, China; 3Southwest United Graduate School, Kunming 650092, China).

  • Online:2026-09-10 Published:2026-09-08

摘要: 为探究外源亚精胺(Spd)对纳米氧化铜(CuO-NPs)胁迫下水稻幼苗的缓解机制,本研究通过发芽与水培试验,分析了不同浓度Spd(0、500、1000 μmol·L-1)对CuO-NPs胁迫(0、50、100、300 mg·L-1)下水稻种子萌发、幼苗生长、抗氧化系统、渗透调节物质、铜积累及亚细胞结构的影响。结果表明:CuO-NPs胁迫显著抑制水稻种子发芽势、发芽率和幼苗生物量,诱导活性氧(ROS)积累和膜脂过氧化,升高丙二醛(MDA)含量,并破坏抗氧化酶系统功能。外源Spd可以有效缓解CuO-NPs胁迫效应,在300 mg·L-1 CuO-NPs胁迫下,外源添加1000 μmol·L-1 Spd可以使水稻种子发芽率、发芽指数和活力指数分别提高7.06%、3.56%和27.94%,使超氧化物歧化酶(SOD)、过氧化物酶(POD)和过氧化氢酶(CAT)活性分别上升40.12%、16.44%和20.08%,使超氧阴离子(O2-·)、过氧化氢(H2O2)和MDA含量分别下降46.43%、25.46%和32.85%。此外,Spd处理促进了地上部细胞壁对铜的固定,减轻了铜毒害。傅里叶变换红外光谱(FT-IR)分析表明,外源Spd可通过调控细胞壁多糖、蛋白质和脂质官能团的结构与比例,增强细胞壁的物理屏障功能,从而减轻CuO-NPs对亚细胞结构的损伤。本研究揭示了外源Spd可以通过增强抗氧化防御、调节渗透平衡以及强化细胞壁屏障等多种途径有效提升水稻幼苗对CuO-NPs胁迫的耐受性,研究结果为多胺类物质缓解纳米氧化铜毒性的生理机制提供了理论依据,并为重金属纳米颗粒胁迫下的农艺调控提供了技术途径与科学基础。


关键词: 纳米氧化铜, 亚精胺, 水稻, 抗氧化系统, 傅里叶变换红外光谱, 细胞壁官能团

Abstract: We explored the mechanism by which exogenous spermidine (Spd) mitigates copper oxide nanoparticle (CuO-NPs) stress in rice seedlings with a series of seed germination and hydroponic experiments. We assessed the effects of different Spd concentrations (0, 500, and 1000 μmol·L-1) on germination traits, seedling growth performance, antioxidant defense system activity, osmoregulatory substance accumulation, copper ion sequestration, and the integrity of subcellular structures under varying levels of CuO-NPs stress (0, 50, 100, and 300 mg·L-1). The results showed that CuO-NPs stress markedly suppressed germination potential, germination rate, and seedling biomass accumulation; caused excessive accumulation of reactive oxygen species (ROS); aggravated membrane lipid peroxidation with a notable increase in malondialdehyde (MDA) levels; and impaired the functional homeostasis of the antioxidant enzyme system. In contrast, exogenous Spd treatment effectively alleviated the adverse impacts of CuO-NPs stress. Under 300 mg·L-1 CuO-NPs stress, the addition of 1000 μmol·L-1 of Spd resulted in notable improvements. Seed germination rate, germination index, and vigor index were increased by 7.06%, 3.56%, and 27.94%, respectively. The activities of superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT) were enhanced by 40.12%, 16.44%, and 20.08%, respectively. The contents of superoxide anion (O2-·), hydrogen peroxide (H2O2), and MDA were reduced by 46.43%, 25.46%, and 32.85%, respectively. Furthermore, Spd treatment enhanced copper fixation in shoot cell walls and alleviated copper toxicity. Fourier transform infrared spectroscopy (FT-IR) analysis revealed that exogenous Spd strengthened the physical barrier function of cell wall by modulating the structural configuration and relative proportion of polysaccharides, proteins, and lipid functional groups. This regulatory effect, in turn, alleviated the destructive damage to subcellular structures induced by CuO-NPs. Collectively, those results confirm that exogenous Spd can effectively enhance the tolerance of rice seedlings to CuO-NPs stress through multiple synergistic pathways, including boosting antioxidant capacity, regulating osmotic balance, and reinforcing cell wall barrier function. These findings provide a theoretical basis for deciphering the physiological mechanisms by which polyamines alleviate the toxicity of nano-copper oxide, and thus lay a scientific foundation for the development of agronomic management strategies to mitigate the adverse effects of heavy metal nanoparticle stress in crops.


Key words: nano-copper oxide, spermidine, rice, antioxidant system, Fourier transform infrared spectroscopy (FT-IR), cell wall functional group