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块状和纳米氧化锌颗粒对大麦(Hordeum vulgare L.)光合作用器官功能的影响。

Effects of bulk and nano-ZnO particles on functioning of photosynthetic apparatus in barley (Hordeum vulgare L.).

机构信息

Southern Federal University, Rostov-on-Don, 344090, Russian Federation.

Southern Federal University, Rostov-on-Don, 344090, Russian Federation.

出版信息

Environ Res. 2023 Jan 1;216(Pt 3):114748. doi: 10.1016/j.envres.2022.114748. Epub 2022 Nov 9.

Abstract

The functioning of the photosynthetic apparatus in barley (Hordeum vulgare L.) after 7-days of exposure to bulk (b-ZnO) and nanosized ZnO (n-ZnO) (300, 2000, and 10,000 mg/l) has been investigated. An impact on the amount of chlorophylls, photosynthetic efficiency, as well as the zinc accumulation in chloroplasts was demonstrated. Violation of the chloroplast fine structure was revealed. These changes were generally more pronounced with n-ZnO exposure, especially at high concentrations. For instance, the chlorophyll deficiency under 10,000 mg/l b-ZnO treatment was 31% and with exposure to 10,000 mg/l n-ZnO, the chlorophyll deficiency was already 52%. The expression analysis of the photosynthetic genes revealed their different sensitivity to b-ZnO and n-ZnO exposure. The genes encoding subunits of photosystem II (PSII) and, to a slightly lesser extent, photosystem I (PSI) showed the highest suppression of transcriptional levels. The mRNA levels of the subunits of cytochrome-bf, NADH dehydrogenase, ribulose-1,5-bisphosphate carboxylase and ATP synthase, which, in addition to linear electron flow (LEF), participate in cyclic electron flow (CEF) and autotrophic CO fixation, were more stable or increased under b-ZnO and n-ZnO treatments. At the same time, CEF was increased. It was assumed that under the action of b-ZnO and n-ZnO, the processes of LEF are disrupted, and CEF is activated. This allows the plant to prevent photo-oxidation and compensate for the lack of ATP for the CO fixation process, thereby ensuring the stability of photosynthetic function in the initial stages of stress factor exposure. The study of photosynthetic structures of crops is important from the point of view of understanding the risks of reducing the production potential and the level of food security due to the growing use of nanoparticles in agriculture.

摘要

研究了大麦(Hordeum vulgare L.)在暴露于块状(b-ZnO)和纳米 ZnO(n-ZnO)(300、2000 和 10000mg/L)7 天后光合作用装置的功能。结果表明,纳米 ZnO 暴露会影响叶绿素含量、光合作用效率以及叶绿体中锌的积累。还揭示了叶绿体精细结构的破坏。这些变化通常在 n-ZnO 暴露时更为明显,尤其是在高浓度下。例如,在 10000mg/L b-ZnO 处理下,叶绿素缺乏率为 31%,而在 10000mg/L n-ZnO 暴露下,叶绿素缺乏率已经达到 52%。光合作用基因的表达分析表明,它们对 b-ZnO 和 n-ZnO 暴露的敏感性不同。编码光系统 II(PSII)亚基的基因,以及稍微次要程度的光系统 I(PSI)亚基,显示出转录水平最高的抑制。参与线性电子传递(LEF)的细胞色素-bf、NADH 脱氢酶、核酮糖-1,5-二磷酸羧化酶和 ATP 合酶的亚基的 mRNA 水平在 b-ZnO 和 n-ZnO 处理下更为稳定或增加。同时,CEF 增加。假设在 b-ZnO 和 n-ZnO 的作用下,LEF 过程被破坏,而 CEF 被激活。这使得植物能够防止光氧化,并补偿 CO 固定过程中缺乏 ATP,从而确保在暴露于应激因素的初始阶段光合作用功能的稳定性。从理解由于农业中纳米颗粒使用量的增加而降低生产潜力和粮食安全水平的风险的角度来看,研究农作物的光合作用结构非常重要。

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