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Epigenetics: an important challenge for ICP-MS in metallomics studies

机译:表观遗传学:ICP-MS在组学研究中的重要挑战

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Trace metal analysis has been long regarded as one of the principle tasks in areas of chemical analysis. At the early stage of instrumental development, total concentration was assessed in a variety of samples, yielding results, among others, for environmental, biological, and clinical samples. With the power of newer analytical techniques, such as inductively coupled plasma mass spectrometry (ICP-MS), accurate quantitative results can now be obtained at ultra-trace levels not only for metals, but also for metalloids and several non-metals. Even though the importance of trace elements in many biological processes is widely accepted, the elucidation of their biological pathways, understanding specific biological functions, or possible toxicological aspects is still a challenge and a driving force to further develop analytical methodology. Over the past decades, the scientific interest has moved from total element determination to include speciation analysis, which provides quantitative information of one or more individual element species in a sample. More recently, metallomics has been introduced as a more expanded concept, in which the global role of all metal/metalloids in a given system is considered. Owing to the multi-elemental focus of metallomics research, the use of ICP-MS becomes indispensable. Furthermore, considering the biological role of metals/metalloids and the use of elements as internal or external molecular tags, epigenetics should be considered as an important emerging application for metallomics studies and approaches. Among a variety of epigenetic factors, essential nutrients, but also environmental toxins, have been shown to affect DNA methylation, modification of histone proteins, and RNA interference, all of them being implicated in cancer, cardiovascular disease, and several inherited conditions. Recent studies suggest that epigenetics may be a critical pathway by which metals produce health effects. In this Trends article, the basic epigenetic concepts are introduced, followed by the early applications of ICP-MS classified as: (i) detection of 31P as a natural element tag for DNA, (ii) analysis of DNA adducts with metal-based drugs, (iii) element species as epigenetic factors.
机译:长期以来,痕量金属分析一直被视为化学分析领域的主要任务之一。在仪器开发的早期阶段,评估了各种样品中的总浓度,并获得了环境,生物学和临床样品的结果。借助更新的分析技术(例如电感耦合等离子体质谱法(ICP-MS)),现在不仅可以以超痕量水平获得金属,类金属和几种非金属的精确定量结果。尽管微量元素在许多生物学过程中的重要性已被广泛接受,但阐明其生物学途径,了解特定生物学功能或可能的毒理学方面仍然是挑战,也是推动进一步发展分析方法的动力。在过去的几十年中,科学兴趣已经从总元素测定转移到包括形态分析,该分析提供了样品中一种或多种单个元素种类的定量信息。最近,金属学作为更广泛的概念被引入,其中考虑了给定系统中所有金属/准金属的全局作用。由于金属学研究的多元素关注,因此ICP-MS的使用变得必不可少。此外,考虑到金属/类金属的生物学作用以及使用元素作为内部或外部分子标签,表观遗传学应被视为金属组学研究和方法的重要新兴应用。在各种表观遗传因素中,必需营养素以及环境毒素已显示出会影响DNA甲基化,组蛋白的修饰和RNA干扰,所有这些因素均与癌症,心血管疾病和某些遗传病有关。最近的研究表明,表观遗传学可能是金属产生健康影响的关键途径。在这篇“趋势”文章中,介绍了基本的表观遗传学概念,随后将ICP-MS应用于以下领域:(i)检测31 作为DNA的天然元素标签,(ii)分析DNA加合物(iii)元素种类作为表观遗传因素。

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