嗜极真菌和非嗜极真菌对镉和锶生物修复的转录组学和生理学比较分析

IF 7.3 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Toquier Azam, Xueqi Dai, Xiaoming Chen, Imran Ali, Sen Chen, Fatima Noor, Syed Zeeshan Haider
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引用次数: 0

摘要

重金属和核素污染对环境和公众健康构成越来越大的威胁。本研究对嗜盐真菌Engyodontium album (E. album)和非嗜盐真菌Trichoderma reesei (T. reesei)在镉(Cd)和锶(Sr)胁迫下的生物修复能力进行了比较分析。通过生物吸附试验、扫描电镜(SEM)和转录组学分析来评估真菌对100ppm Cd和Sr的生理和分子反应。结果表明,E. album对Cd和Sr的生物吸附能力均优于T. reesei。转录组学分析发现,E. album中金属降解酶上调,抗氧化防御增强,MAPK信号通路活性增加。相比之下,芦杉的耐受性和修复效率较低,在胁迫条件下,基因表达发生了显著变化,尤其是在活性氧解毒机制方面。这些发现表明,由于嗜极真菌对重金属胁迫具有强大的代谢适应性,因此在生态友好型生物修复应用中具有重要的前景。本研究首次比较了嗜极真菌和非嗜极真菌对重金属污染的响应,为未来的环境修复策略提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Comparative Transcriptomic and Physiological Analysis of Extremophilic and Non-Extremophilic Fungi in Bioremediation of Cadmium (Cd) and Strontium (Sr)

Comparative Transcriptomic and Physiological Analysis of Extremophilic and Non-Extremophilic Fungi in Bioremediation of Cadmium (Cd) and Strontium (Sr)
Heavy metal and nuclide contamination pose increasing threats to the environment and public health. In this study, a comparative analysis was conducted on the bioremediation capabilities of the halophilic fungus Engyodontium album (E. album) and the non-halophilic fungus Trichoderma reesei (T. reesei) under cadmium (Cd) and strontium (Sr) stress. Biosorption tests, scanning electron microscopy (SEM), and transcriptomic analyses were performed to assess the fungi’s physiological and molecular responses to 100 ppm of Cd and Sr. The results revealed that E. album exhibited superior biosorption capacity for both Cd and Sr, significantly outperforming T. reesei. Transcriptomic analysis identified the upregulation of metal-degrading enzymes and enhanced antioxidant defences in E. album, with increased activity in the MAPK signalling pathway. In contrast, T. reesei demonstrated lower tolerance and remediation efficiency, with significant gene expression changes under stress conditions, particularly in reactive oxygen species detoxification mechanisms. These findings suggest that extremophilic fungi like E. album hold significant promise for eco-friendly bioremediation applications due to their robust metabolic adaptations to heavy metal stress. This study is the first to compare extremophilic and non-extremophilic fungi in response to heavy metal contamination, providing valuable insights for future environmental remediation strategies.
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来源期刊
Environmental Pollution
Environmental Pollution 环境科学-环境科学
CiteScore
16.00
自引率
6.70%
发文量
2082
审稿时长
2.9 months
期刊介绍: Environmental Pollution is an international peer-reviewed journal that publishes high-quality research papers and review articles covering all aspects of environmental pollution and its impacts on ecosystems and human health. Subject areas include, but are not limited to: • Sources and occurrences of pollutants that are clearly defined and measured in environmental compartments, food and food-related items, and human bodies; • Interlinks between contaminant exposure and biological, ecological, and human health effects, including those of climate change; • Contaminants of emerging concerns (including but not limited to antibiotic resistant microorganisms or genes, microplastics/nanoplastics, electronic wastes, light, and noise) and/or their biological, ecological, or human health effects; • Laboratory and field studies on the remediation/mitigation of environmental pollution via new techniques and with clear links to biological, ecological, or human health effects; • Modeling of pollution processes, patterns, or trends that is of clear environmental and/or human health interest; • New techniques that measure and examine environmental occurrences, transport, behavior, and effects of pollutants within the environment or the laboratory, provided that they can be clearly used to address problems within regional or global environmental compartments.
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