Effects of different Zn2+ levels on antioxidant activity, fatty acid composition, and related gene expression in Phaeodactylum tricornutum

三角褐指藻 抗氧化剂 作文(语言) 化学 食品科学 脂肪酸 生物化学 基因表达 生物 基因 植物 藻类 语言学 哲学
作者
Ning Ma,Qingling Su,Pu Song,Shaokun Dong,Hongjin Qiao,Yingjiang Xu
出处
期刊:Frontiers in Marine Science [Frontiers Media]
卷期号:12 被引量:2
标识
DOI:10.3389/fmars.2025.1562111
摘要

The present study was undertaken to examine the impact of varying concentrations of divalent zinc cation (Zn 2+ ) on the growth, antioxidant levels, fatty acid composition, and related gene expression in a pennate diatom, Phaeodactylum tricornutum . As a prevalent environment contaminant, zinc is introduced into aquatic ecosystems via agricultural and industrial processes, exerting toxic effects on aquatic biota. P. tricornutum was exposed to gradient Zn 2+ concentrations (0.99–1000.23 μM), with growth tracked spectrophotometrically. Antioxidant biomarkers, fatty acid profiles, and Zn-responsive gene expression were analyzed via biochemical assays, gas chromatography, and qRT-PCR, respectively. The results showed that appropriate concentrations of Zn 2+ were essential for the growth of P. tricornutum , but high concentrations of Zn 2+ (1000.23 μM) significantly inhibited its growth. Zinc stress also led to the production of reactive oxygen species (ROS), which in turn triggered oxidative stress, as evidenced by changes in antioxidant enzyme activities and lipid peroxidation levels. Furthermore, zinc stress affected the fatty acid composition of P. tricornutum , particularly in the group exposed to high concentrations of Zn 2+ . There was a notable reduction in the levels of polyunsaturated fatty acids (PUFAs) and highly unsaturated fatty acids (HUFAs), while the levels of saturated fatty acids (SFAs) and monounsaturated fatty acids (MUFAs) increased. Gene expression analyses indicated alterations in the expression of zinc transporter proteins and antioxidant-related genes, suggesting that P. tricornutum adapts to zinc stress through the regulation of gene expression. These findings provide new insights into the understanding of the physiological and molecular responses of microalgae to zinc pollution and a scientific basis for evaluating the potential impacts of zinc pollution on aquatic ecosystems and developing bioremediation strategies.
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