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金属掺杂对硅藻的毒性效应研究:宽带太赫兹时域光谱法。

Toxic Effect of Metal Doping on Diatoms as Probed by Broadband Terahertz Time-Domain Spectroscopy.

机构信息

Physics Department 'E. Pancini', University 'Federico II', 80126 Naples, Italy.

CNR-ISASI, Institute of Applied Sciences and Intelligent Systems 'E. Caianiello', 80078 Pozzuoli, Italy.

出版信息

Molecules. 2022 Sep 11;27(18):5897. doi: 10.3390/molecules27185897.

Abstract

The global marine environment is increasingly affected by human activities causing climate change, eutrophication, and pollution. These factors influence the metabolic mechanisms of phytoplankton species, such as diatoms. Among other pollutant agents, heavy metals can have dramatic effects on diatom viability. Detailed knowledge of the interaction of diatoms with metals is essential from both a fundamental and applicative point of view. To this aim, we assess terahertz time-domain spectroscopy as a tool for sensing the diatoms in aqueous systems which mimic their natural environment. Despite the strong absorption of terahertz radiation in water, we show that diatoms can be sensed by probing the water absorption enhancement in the terahertz range caused by the water-diatom interaction. We reveal that the addition of metal dopants affects this absorption enhancement, thus enabling the monitoring of the toxic effects of metals on diatoms using terahertz spectroscopy. We demonstrate that this technique can detect the detrimental effects of heavy metals earlier than conventional methods such as microscopy, enzymatic assays, and molecular analyses aimed at assessing the overexpression of genes involved in the heavy metal-stress response.

摘要

全球海洋环境受到人类活动的影响日益加剧,这些活动导致气候变化、富营养化和污染。这些因素影响着浮游植物物种(如硅藻)的代谢机制。在其他污染物中,重金属对硅藻的生存能力有显著影响。从基础和应用的角度来看,详细了解硅藻与金属的相互作用至关重要。为此,我们评估太赫兹时域光谱作为一种在模拟其天然环境的水系统中感测硅藻的工具。尽管水中太赫兹辐射的吸收很强,但我们表明可以通过探测由于水-硅藻相互作用引起的太赫兹范围内水的吸收增强来感测硅藻。我们揭示了添加金属掺杂剂会影响这种吸收增强,从而可以使用太赫兹光谱监测金属对硅藻的毒性影响。我们证明,与旨在评估参与重金属胁迫反应的基因过表达的显微镜、酶分析和分子分析等传统方法相比,该技术可以更早地检测到重金属的有害影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e806/9504612/ad69dd6091c4/molecules-27-05897-g001.jpg

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