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Graphene-Based and Surface-Enhanced Raman Spectroscopy for Monitoring the Physio-Chemical Response of Thermophilic Bacterial Spores to Low Temperatures Exposure

机译:基于石墨烯和表面增强的拉曼光谱用于监测嗜热细菌孢子的物理化学响应到低温暴露

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摘要

Monitoring the spore life cycle is one of the main issues in several fields including environmental control, sustainable ecosystems, food security, and healthcare systems. In this framework, the study of the living organism resistance to extreme conditions like those mimicking space environments is particularly interesting. The assessment of the local change of the pH level can be extremely useful for this purpose. An optical physiometer method based on the Raman response of the graphene, which is able to locally sense pH of a fluid on a micrometric scale, has been recently proposed. Due to the presence of -bonds at the surface, the electronic doping of graphene is determined by the external conditions and can be electrochemically controlled or altered by the contact with an acid or alkaline fluid. The doping level affects the vibrational energies of the graphene that can be monitored by conventional Raman spectroscopy. In addition, Surface-Enhanced Raman Spectroscopy (SERS) can give direct information on the biochemical changes occurring in spore components. In this work, we propose the joint use of Graphene-Based Raman Spectroscopy (GbRS) and SERS for the monitoring of the response of spores to exposure to low temperatures down to 100 K. The spores of the thermophilic bacterium isolated from an active volcano of Antarctica (Mt. Melbourne) were investigated. These spores are particularly resistant to several stressing stimuli and able to adapt to extreme conditions like low temperatures, UV irradiation, and -rays exposure. The results obtained showed that the joint use of GbRS and SERS represents a valuable tool for monitoring the physio-chemical response of bacterial spores upon exposure to stressing stimuli.
机译:监测孢子生命周期是几个领域的主要问题之一,包括环境控制,可持续生态系统,粮食安全和医疗系统。在这一框架中,对像模仿空间环境的极端条件的生物体抵抗的研究特别有趣。对pH水平的局部变化的评估对于此目的来说非常有用。最近提出了一种基于石墨烯的拉曼响应的光学物理计方法,其能够在微米级上局部感测流体的pH值。由于表面的存在,石墨烯的电子掺杂由外部条件确定,并且可以通过与酸或碱性液体的接触电化学控制或改变。掺杂水平影响石墨烯的振动能量,其可以通过常规拉曼光谱进行监测。此外,表面增强的拉曼光谱(SERS)可以提供有关孢子组分中发生的生化变化的直接信息。在这项工作中,我们提出了基于石墨烯的拉曼光谱(GBRS)和SERS的关节使用,以监测孢子暴露于低温下降至100k的响应。从活性火山中分离的嗜热细菌的孢子南极洲(MT.墨尔本)进行了调查。这些孢子特别耐受几种应激刺激,并且能够适应低温,UV辐射和曝光等极端条件。得到的结果表明,GBRS和SERS的关节用途代表了用于监测细菌孢子的物理化学响应在暴露于应力刺激后的有价值的工具。

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