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氧化铜纳米颗粒对含羞草种子组织光合性能的影响(豆科)。

CuO nanoparticles' effect on the photosynthetic performance in seed tissues of Inga laurina (Fabaceae).

机构信息

Optics and Photonics Group, Institute of Physics, Federal University of Mato Grosso Do Sul (UFMS), Campo Grande, MS, Brazil.

Faculty of Exact Sciences and Technology, Federal University of Grande Dourados (UFGD), Dourados, MS, Brazil.

出版信息

Environ Sci Pollut Res Int. 2024 Aug;31(38):50722-50732. doi: 10.1007/s11356-024-34499-w. Epub 2024 Aug 5.

Abstract

Copper oxide nanoparticles (CuONPs) have been produced on a large scale because they can be applied across various fields, especially in nano-enabled healthcare and agricultural products. However, the increasing use of CuONPs leads to their release and accumulation into the environment. The CuONPs uptaken by seeds and their implications on germination behavior have been reported, but little is known or understood about their impact on photosynthesis in seed tissues. To fill knowledge gaps, this study evaluated the effects of CuONP concentrations (0-300 mg L) on the photosynthetic activity of Inga laurina seeds. The microscopy data showed that CuONPs had an average size distribution of 57.5 ± 0.7 nm. Copper ion release and production of reactive oxygen species (ROS) by CuONPs were also evaluated by dialysis and spectroscopy experiments, respectively. CuONPs were not able to intrinsically generate ROS and released a low content of Cu⁺ ions (4.5%, w/w). Time evolution of chlorophyll fluorescence imaging and laser-induced fluorescence spectroscopy were used to monitor the seeds subjected to nanoparticles during 168 h. The data demonstrate that CuONPs affected the steady-state maximum chlorophyll fluorescence ( ), the photochemical efficiency of photosystem II ( ), and non-photochemical quenching ( ) of Inga laurina seeds over time. Besides, the significantly increased at the seed development stage, near the root protrusion stage, probably due to energy dissipation at this germination step. Additionally, the results indicated that CuONPs can change the oscillatory rhythms of energy dissipation of the seeds, disturbing the circadian clock. In conclusion, the results indicate that CuONPs can affect the photosynthetic behavior of I. laurina seeds. These findings open opportunities for using chlorophyll fluorescence as a non-destructive tool to evaluate nanoparticle impact on photosynthetic activity in seed tissues.

摘要

氧化铜纳米颗粒 (CuONPs) 已经大规模生产,因为它们可以应用于各个领域,特别是在纳米医疗保健和农业产品中。然而,CuONPs 的使用量不断增加导致其释放和积累到环境中。已经有报道称,种子吸收的 CuONPs 及其对发芽行为的影响,但对于它们对种子组织光合作用的影响知之甚少或理解甚少。为了填补知识空白,本研究评估了 CuONP 浓度(0-300 mg L)对 Inga laurina 种子光合作用的影响。显微镜数据显示,CuONPs 的平均粒径分布为 57.5 ± 0.7 nm。还通过透析和光谱实验分别评估了 CuONPs 中铜离子的释放和活性氧物种 (ROS) 的产生。CuONPs 本身不能产生 ROS,并且仅释放低含量的 Cu⁺离子(4.5%,w/w)。叶绿素荧光成像和激光诱导荧光光谱的时间演化用于监测在 168 h 期间暴露于纳米颗粒的种子。数据表明,CuONPs 随时间影响 Inga laurina 种子的稳态最大叶绿素荧光 (Fv/Fm)、光系统 II 的光化学效率 (Fv/Fo) 和非光化学猝灭 (NPQ)。此外,在种子发育阶段,在根突伸阶段附近,NPQ 显著增加,可能是由于该发芽步骤中的能量耗散。此外,结果表明,CuONPs 可以改变种子能量耗散的振荡节律,扰乱生物钟。总之,结果表明 CuONPs 可以影响 I. laurina 种子的光合作用行为。这些发现为使用叶绿素荧光作为非破坏性工具来评估纳米颗粒对种子组织光合作用的影响提供了机会。

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