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首页> 外文期刊>Annals of Clinical and Laboratory Science: Official Journal of the Association of Clinical Scientists >Advances in instrumental methods for the measurement and speciation of trace metals.
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Advances in instrumental methods for the measurement and speciation of trace metals.

机译:测量和形态痕量金属的仪器方法的进展。

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摘要

Progress in understanding the role of trace metals in biology has been largely dependent on the development of sensitive, accurate and precise analytical methods. Atomic spectroscopic techniques, particularly atomic absorption, have made the greatest contribution. Key to the success of such analytical techniques has been the simplification of sample processing so that contamination is minimized. Electrothermal atomization has allowed sensitivity limits to be lowered sufficiently so that even ultra-trace metals can be detected. More recently, mass spectrometric detection of metal ions has added to the repertoire of available instrumentation, particularly with the use of inductively coupled plasma to introduce ions into the mass analyzer. These analyzers are suitable for multielement analysis. More conventional mass spectrometric analysis of metal chelates offer an alternate solution but require considerable specimen preparation time. Intracellular localization of trace metals necessitates complex specimen processing prior to analysis on instruments that are highly sophisticated and expensive. Metal speciation is a rapidly growing area of trace metal research, with the major advances coming from coupling of the separation process, such as capillary electrophoresis or high performance liquid chromatography, with the analytical instrument for metal detection. Inductively coupled plasma-mass spectrometry has proved to be an excellent choice for such detection purposes. Refinement of these methods as well as more widely available instruments for microanalysis will add greatly to continued advances in our knowledge of the role of trace metals in biology and medicine.
机译:了解痕量金属在生物学中的作用的进展很大程度上取决于灵敏,准确和精确的分析方法的发展。原子光谱技术,特别是原子吸收,做出了最大的贡献。此类分析技术成功的关键在于简化样品处理,从而将污染降至最低。电热雾化已使灵敏度极限充分降低,因此甚至可以检测到超痕量金属。最近,金属离子的质谱检测增加了可用仪器的种类,特别是通过使用感应耦合等离子体将离子引入质量分析仪中。这些分析仪适用于多元素分析。金属螯合物的更常规质谱分析提供了替代解决方案,但需要大量的样品制备时间。微量金属在细胞内的定位需要在高度复杂且昂贵的仪器上进行分析之前进行复杂的标本处理。金属形态学是痕量金属研究的一个快速增长的领域,其主要进展来自分离过程的结合,例如毛细管电泳或高效液相色谱法与金属检测分析仪的结合。电感耦合等离子体质谱法已被证明是用于此类检测目的的绝佳选择。这些方法的完善以及微分析的更广泛使用的仪器将大大增加我们对痕量金属在生物学和医学中的作用的认识的不断发展。

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