首页> 外文期刊>Vibrational Spectroscopy: An International Journal devoted to Applications of Infrared and Raman Spectroscopy >Vibrational spectroscopy as a tool for studying drug-cell interaction: Could high throughput vibrational spectroscopic screening improve drug development?
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Vibrational spectroscopy as a tool for studying drug-cell interaction: Could high throughput vibrational spectroscopic screening improve drug development?

机译:振动光谱作为研究药物细胞相互作用的工具:可以高通量振动光谱筛选改善药物发育?

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Vibrational spectroscopy is currently widely explored as a tool in biomedical applications. An area at the forefront of this field is the use of vibrational spectroscopy for disease diagnosis, ultimately aiming towards spectral pathology. However, while this field shows promising results, moving this technique into the clinic faces the challenges of widespread clinical trials and legislative approval. While spectral pathology has received a lot of attention, there are many other biomedical applications of vibrational spectroscopy, which could potentially be translated to applications with greater ease. A particularly promising application is the use of vibrational spectroscopic techniques to study the interaction of drugs with cells. Many studies have demonstrated the ability to detect biochemical changes in cells in response to drug application, using both infrared and Raman spectroscopy. This has shown potential for use in high throughput screening (HTS) applications, for screening of efficacy and mode of action of potential drug candidates, to speed up the drug discovery process. HTS is still a relatively new and growing area of research and, therefore, there is more potential for new techniques to move into and shape this field. Vibrational spectroscopic techniques come with many benefits over the techniques used currently in HTS, primarily based on fluorescence assays to detect specific binding interactions or phenotypes. They are label free, and an infrared or Raman spectrum provides a wealth of biochemical information, and therefore could reveal not only information about a specific interaction, but about how the overall biochemistry of a cell changes in response to application of a drug candidate. Therefore, drug mode of action could be elucidated. This review will investigate the potential for vibrational spectroscopy, particularly FTIR and Raman spectroscopy, to benefit the field of HTS and improve the drug development process. In addition to FTIR and Raman spectroscopy, surface enhanced Raman spectroscopy (SERS), coherent anti-Stokes Raman spectroscopy (CARS) and stimulated Raman spectroscopy (SRS), will be investigated as an alternative tool in the HTS process. (C) 2016 Elsevier B.V. All rights reserved.
机译:目前广泛探讨了振动光谱作为生物医学应用的工具。该领域最前沿的区域是使用振动谱诊断,最终旨在瞄准光谱病理学。然而,虽然该领域显示了有希望的结果,将这种技术转移到诊所面临着广泛临床试验和立法批准的挑战。虽然光谱病理学已经受到很多关注,但振动光谱有许多其他生物医学应用,振动光谱有可能随着易于轻松地翻译成应用。特别有希望的应用是使用振动光谱技术来研究药物与细胞的相互作用。许多研究表明,使用红外线和拉曼光谱,响应于药物应用检测细胞的生化变化的能力。这表明了在高通量筛选(HTS)应用中使用的可能性,用于筛选潜在药物候选者的疗效和作用方式,加速药物发现过程。 HTS仍然是一个相对较新的研究领域,因此,新技术搬入和塑造了这一领域的新技术更有潜力。振动光谱技术具有许多益处,这些技术具有目前在HTS中使用的技术,主要基于荧光测定来检测特异性结合相互作用或表型。它们是免费标签的,红外线或拉曼谱提供了丰富的生化信息,因此不仅可以揭示关于特定互动的信息,但关于细胞的整体生物化学如何变化是如何应对毒品候选者的应用。因此,可以阐明药物的作用方式。本综述将研究振动光谱,特别是FTIR和拉曼光谱的可能性,使HTS领域有益,改善药物开发过程。除了FTIR和拉曼光谱,表面增强拉曼光谱(SERS),将在HTS过程中作为替代工具来研究相干的防斯托克拉姆光谱(SERS)和刺激的拉曼光谱(SRS)。 (c)2016年Elsevier B.v.保留所有权利。

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