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微塑料胁迫引发的生菜转录组和代谢组变化

Transcriptomic and metabolomic changes in lettuce triggered by microplastics-stress.

作者信息

Wang Yu, Xiang Leilei, Wang Fang, Redmile-Gordon Marc, Bian Yongrong, Wang Ziquan, Gu Chenggang, Jiang Xin, Schäffer Andreas, Xing Baoshan

机构信息

CAS Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Science, Nanjing 210008, China; University of Chinese Academy of Science, Beijing 100049, China.

CAS Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Science, Nanjing 210008, China.

出版信息

Environ Pollut. 2023 Mar 1;320:121081. doi: 10.1016/j.envpol.2023.121081. Epub 2023 Jan 13.

Abstract

Microplastics (MPs) are a global threat to the environment, and plant uptake of MP particles (≤0.2 μm) is a particular cause for concern. However, physiological and molecular mechanisms underlying MP-induced growth inhibition need to be clarified. Towards this goal, we conducted a hydroponic experiment to investigate the accumulation of MPs, changes in physiology, gene expression, and metabolites in lettuce from a series of concentrations of fluorescence-labelled polystyrene MPs (0, 10, 20, 30, 40, 50 mg L, ∼0.2 μm). Our results showed that MPs accumulated in the lettuce root tips and leaf veins, resulting in the hypertonic injury of lettuce, and the down-regulation of genes related to ion homeostasis. Stress-related genes were up-regulated, and sphingolipid metabolism increased in response to MP additions, causing increased biosynthesis of ascorbic acid, terpenoid, and flavonoids in root exudates. Our findings provide a molecular-scale perspective on the response of leafy vegetables to MP-stress at a range of concentrations. This enables more comprehensive evaluation of the risks of MPs to human health and the ecological environment.

摘要

微塑料(MPs)是对环境的全球性威胁,植物吸收MP颗粒(≤0.2微米)尤其令人担忧。然而,MP诱导生长抑制的生理和分子机制尚需阐明。为实现这一目标,我们进行了一项水培实验,以研究一系列浓度(0、10、20、30、40、50毫克/升,约0.2微米)的荧光标记聚苯乙烯MPs在生菜中的积累、生理变化、基因表达及代谢产物。我们的结果表明,MPs在生菜根尖和叶脉中积累,导致生菜发生高渗损伤,并下调与离子稳态相关的基因。应激相关基因上调,鞘脂代谢因添加MP而增加,导致根系分泌物中抗坏血酸、萜类化合物和黄酮类化合物的生物合成增加。我们的研究结果从分子层面揭示了叶菜类蔬菜在一系列浓度下对MP胁迫的响应。这有助于更全面地评估MPs对人类健康和生态环境的风险。

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