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采用杂化有机-无机表面技术来减轻 UHPLC 中分析物与金属表面的相互作用。

Using Hybrid Organic-Inorganic Surface Technology to Mitigate Analyte Interactions with Metal Surfaces in UHPLC.

机构信息

Waters Corporation, 34 Maple Street, Milford, Massachusetts 01757, United States.

出版信息

Anal Chem. 2021 Apr 13;93(14):5773-5781. doi: 10.1021/acs.analchem.0c05203. Epub 2021 Apr 2.

Abstract

Interactions of analytes with metal surfaces in high-performance liquid chromatography (HPLC) instruments and columns have been reported to cause deleterious effects ranging from peak tailing to a complete loss of the analyte signal. These effects are due to the adsorption of certain analytes on the metal oxide layer on the surface of the metal components. We have developed a novel surface modification technology and applied it to the metal components in ultra-HPLC (UHPLC) instruments and columns to mitigate these interactions. A hybrid organic-inorganic surface, based on an ethylene-bridged siloxane chemistry, was developed for use with reversed-phase and hydrophilic interaction chromatography. We have characterized the performance of UHPLC instruments and columns that incorporate this surface technology and compared the results with those obtained using their conventional counterparts. We demonstrate improved performance when using the hybrid surface technology for separations of nucleotides, a phosphopeptide, and an oligonucleotide. The hybrid surface technology was found to result in higher and more consistent analyte peak areas and improved peak shape, particularly when using low analyte mass loads and acidic mobile phases. Reduced abundances of iron adducts in the mass spectrum of a peptide were also observed when using UHPLC systems and columns that incorporate hybrid surface technology. These results suggest that this technology will be particularly beneficial in UHPLC/mass spectrometry investigations of metal-sensitive analytes.

摘要

高效液相色谱(HPLC)仪器和柱子中的分析物与金属表面的相互作用已被报道会导致有害影响,范围从峰拖尾到分析物信号完全丢失。这些影响是由于某些分析物在金属组件表面的金属氧化物层上的吸附。我们已经开发了一种新颖的表面改性技术,并将其应用于超高效液相色谱(UHPLC)仪器和柱子中的金属组件,以减轻这些相互作用。一种基于乙烯桥联硅氧烷化学的混合有机-无机表面已被开发用于反相和亲水相互作用色谱。我们对包含这种表面技术的 UHPLC 仪器和柱子的性能进行了表征,并将结果与使用其常规对应物获得的结果进行了比较。我们证明了在核苷酸、磷酸肽和寡核苷酸的分离中使用混合表面技术可以获得更好的性能。当使用低分析物质量负载和酸性流动相时,混合表面技术会导致更高和更一致的分析物峰面积和改善的峰形,特别是在这种情况下。当使用包含混合表面技术的 UHPLC 系统和柱子时,还观察到肽的质谱中铁加合物的丰度降低。这些结果表明,该技术将特别有益于金属敏感分析物的 UHPLC/质谱研究。

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