铅镉复合胁迫对杉木幼苗生理反应及潜在有毒元素(pte)积累特性的影响

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Metallomics Pub Date : 2025-08-05 DOI:10.1093/mtomcs/mfaf027
Chengfeng Liu, Lita Yi, Zhiwei Ge, Meihua Liu
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引用次数: 0

摘要

多种潜在有毒元素(pte)对陆地生态系统的广泛污染要求阐明植物在多种潜在有毒元素联合胁迫下的适应机制。本研究探讨铅(Pb)胁迫(Pb4, 4.0 mg·kg⁻¹Pb;Pb40, 40 mg·kg⁻¹Pb),镉(Cd)压力(Cd2, 2 mg·kg⁻¹Cd;Cd20, 20mg·kg(⁻¹Cd),以及Pb和Cd复合应激。结果表明,在单一和联合pte胁迫条件下,生物量生产和叶绿素b生物合成受到浓度依赖性的抑制。与对照相比,复合胁迫对超氧化物歧化酶活性的影响有所不同,低浓度铅胁迫导致的酶活性明显高于高浓度铅胁迫。Cd浓度升高导致叶片组织中丙二醛的显著积累,表明叶片膜受到损伤。单Pb胁迫下,铅优先在叶片中积累,而Cd主要在根系中积累。然而,当植物暴露在Pb和Cd复合胁迫下时,植物的PTE转运途径发生改变,导致植物在茎中保留的Cd比暴露在单一PTE胁迫下时更多。这些发现为揭示多金属胁迫下植物PTE的稳态机制提供了理论依据,从而为开发多金属PTE污染环境下的植物修复策略提供了理论基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combined stress of Pb and Cd toxic effects on physiological response and potentially toxic elements accumulation characteristics in Cunninghamia lanceolata seedlings.

The extensive contamination of terrestrial ecosystems with multiple potentially toxic elements (PTEs) necessitates elucidation of plant adaptive mechanisms under combined PTEs stress. This study examines the physiological adaptations, antioxidant regulation, and PTEs allocation patterns in Cunninghamia lanceolata seedlings exposed to lead (Pb) stress (Pb4, 4.0 mg kg-1 Pb; Pb40, 40 mg kg-1 Pb), cadmium (Cd) stress (Cd2, 2 mg kg-1 Cd; Cd20, 20 mg kg-1 Cd), and combined Pb and Cd stress. Results demonstrated concentration-dependent inhibition of biomass production and chlorophyll b biosynthesis under both single and combined PTEs stress conditions. Different responses in superoxide dismutase activity were observed under combined stress compared to the controls, with lower concentration Pb stress causing notably higher enzymatic activation compared to higher concentration Pb stress. Elevated Cd concentrations resulted in significant accumulation of malondialdehyde in leaf tissues, indicating membrane damage. Lead preferentially accumulated in leaves under single Pb stress, while Cd predominantly accumulated in root systems. However, when the plants were exposed to combined Pb and Cd stress, the PTEs translocation pathways in the plants were altered, which resulted in a greater retention of Cd in the stems compared to when the plants were exposed to the single PTE stress. These findings provide insights into species-specific PTE homeostasis mechanisms under polymetallic stress, thereby providing theoretical foundations for the development of phytoremediation strategies in environments contaminated with multiple PTEs.

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来源期刊
Metallomics
Metallomics 生物-生化与分子生物学
CiteScore
7.00
自引率
5.90%
发文量
87
审稿时长
1 months
期刊介绍: Global approaches to metals in the biosciences
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