Toxicity of bisphenol A and p-nitrophenol on tomato plants: Morpho-physiological, ionomic profile, and antioxidants/defense-related gene expression studies.
Mahmoud S Abdelmoneim, Elsayed E Hafez, Mona F A Dawood, Sherif F Hammad, Mohamed A Ghazy
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引用次数: 0
Abstract
Bisphenol A (BPA) and p-nitrophenol (PNP) are emerging contaminants of soils due to their wide presence in agricultural and industrial products. Thus, the present study aimed to integrate morpho-physiological, ionic homeostasis, and defense- and antioxidant-related genes in the response of tomato plants to BPA or PNP stress, an area of research that has been scarcely studied. In this work, increasing the levels of BPA and PNP in the soil intensified their drastic effects on the biomass and photosynthetic pigments of tomato plants. Moreover, BPA and PNP induced osmotic stress on tomato plants by reducing soluble sugars and soluble proteins relative to control. The soil contamination with BPA and PNP treatments caused a decline in the levels of macro- and micro-elements in the foliar tissues of tomatoes while simultaneously increasing the contents of non-essential micronutrients. The Fourier transform infrared analysis of the active components in tomato leaves revealed that BPA influenced the presence of certain functional groups, resulting in the absence of some functional groups, while on PNP treatment, there was a shift observed in certain functional groups compared to the control. At the molecular level, BPA and PNP induced an increase in the gene expression of polyphenol oxidase and peroxidase, with the exception of POD gene expression under BPA stress. The expression of the thaumatin-like protein gene increased at the highest level of PNP and a moderate level of BPA without any significant effect of both pollutants on the expression of the tubulin (TUB) gene. The comprehensive analysis of biochemical responses in tomato plants subjected to BPA and PNP stress illustrates valuable insights into the mechanisms underlying tolerance to these pollutants.
双酚 A(BPA)和对硝基苯酚(PNP)是土壤中新出现的污染物,因为它们广泛存在于农产品和工业产品中。因此,本研究旨在整合番茄植物对双酚 A 或对硝基苯酚胁迫的反应中的形态生理、离子平衡以及防御和抗氧化相关基因,这是一个鲜有研究的领域。在这项研究中,土壤中双酚 A 和全氟辛基苯酚含量的增加加剧了它们对番茄植株生物量和光合色素的剧烈影响。此外,与对照组相比,BPA 和 PNP 会降低可溶性糖和可溶性蛋白质,从而诱发番茄植株的渗透胁迫。双酚 A 和 PNP 污染土壤会导致番茄叶片组织中的宏量和微量元素含量下降,同时增加非必需微量元素的含量。对番茄叶片中有效成分的傅立叶变换红外分析表明,双酚 A 影响了某些官能团的存在,导致某些官能团缺失,而在 PNP 处理中,与对照组相比,某些官能团发生了变化。在分子水平上,双酚 A 和 PNP 诱导了多酚氧化酶和过氧化物酶基因表达的增加,只有 POD 基因表达在双酚 A 胁迫下有所增加。在最高水平的 PNP 和中等水平的双酚 A 诱导下,thaumatin 样蛋白基因的表达增加,而这两种污染物对微管蛋白(TUB)基因的表达没有明显影响。对受到 BPA 和 PNP 胁迫的番茄植株的生化反应进行全面分析,有助于深入了解这些污染物的耐受机制。
Biomolecular ConceptsBiochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
5.30
自引率
0.00%
发文量
27
审稿时长
12 weeks
期刊介绍:
BioMolecular Concepts is a peer-reviewed open access journal fostering the integration of different fields of biomolecular research. The journal aims to provide expert summaries from prominent researchers, and conclusive extensions of research data leading to new and original, testable hypotheses. Aspects of research that can promote related fields, and lead to novel insight into biological mechanisms or potential medical applications are of special interest. Original research articles reporting new data of broad significance are also welcome. Topics: -cellular and molecular biology- genetics and epigenetics- biochemistry- structural biology- neurosciences- developmental biology- molecular medicine- pharmacology- microbiology- plant biology and biotechnology.