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更少的配置和更多的维度:基于捕集阵列的制备型心脏切割多维液相色谱法。

Less Configuration and More Dimensionality: Preparative Heart-Cut Multidimensional Liquid Chromatography Based on Trapping Arrays.

机构信息

College of Pharmaceutical Science, Soochow University, Suzhou 215123, People's Republic of China.

Shanghai Key Laboratory of Functional Materials Chemistry, School of Chemistry and Molecular Engineering, East China University of Science and Technology, Shanghai 200237, People's Republic of China.

出版信息

Anal Chem. 2022 Dec 13;94(49):16997-17002. doi: 10.1021/acs.analchem.2c03875. Epub 2022 Nov 30.

Abstract

The resolving power of multiple dimensional liquid chromatography (mD-LC) is multiplicative as it adds dimensions. However, the issue in creating a preparative mD-LC system is that the higher the dimensionality, the more complicated the system configuration. Thus, we presented a new configuration of preparative mD-LC using one set of LC modules and trapping array-based multiple heart-cut interfaces. A preparative two-dimensional liquid chromatography (2D-LC) separation of herbal medicine formulation produced 40 compounds with a purity of >90%. During the separation process, the interface stores the fractions and allocates positions for the fractions from a different dimension; LC draws the fraction from the interface, makes D separation, and sends isolated fractions to the interface. By repeating this process, we achieved variable dimensionality of LC separations. We also presented a preparative 3D-LC separation of herbal medicines to validate the principle of "less configuration and more dimensionality". Thus, we can explore the higher dimensional preparative separations. The developed preparative mD-LC displayed exceptional power in the isolation of various compounds and has great potential in the application of natural products.

摘要

多维液相色谱(mD-LC)的分辨率是相乘的,因为它增加了维度。然而,在创建制备型 mD-LC 系统时的问题是,维度越高,系统配置就越复杂。因此,我们提出了一种使用一组 LC 模块和基于捕集阵列的多重中心切割接口的新型制备型 mD-LC 配置。一种草药配方的制备型二维液相色谱(2D-LC)分离产生了 40 种纯度大于 90%的化合物。在分离过程中,接口存储馏分并为不同维度的馏分分配位置;LC 从接口中提取馏分,进行 D 分离,并将分离出的馏分发送回接口。通过重复这个过程,我们实现了 LC 分离的可变维度。我们还进行了草药的制备型 3D-LC 分离,以验证“更少的配置,更多的维度”的原理。因此,我们可以探索更高维度的制备分离。所开发的制备型 mD-LC 在各种化合物的分离中表现出卓越的能力,在天然产物的应用中具有巨大的潜力。

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