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使用实验设计统计法对红外辅助激光解吸电喷雾电离(IR MALDESI)源进行质谱分析的全局优化。

Global optimization of the infrared matrix-assisted laser desorption electrospray ionization (IR MALDESI) source for mass spectrometry using statistical design of experiments.

机构信息

W.M. Keck FT-ICR Mass Spectrometry Laboratory, Department of Chemistry, North Carolina State University, Raleigh, NC 27695, USA.

出版信息

Rapid Commun Mass Spectrom. 2011 Dec 15;25(23):3527-36. doi: 10.1002/rcm.5262.

Abstract

Design of experiments (DOE) is a systematic and cost-effective approach to system optimization by which the effects of multiple parameters and parameter interactions on a given response can be measured in few experiments. Herein, we describe the use of statistical DOE to improve a few of the analytical figures of merit of the infrared matrix-assisted laser desorption electrospray ionization (IR-MALDESI) source for mass spectrometry. In a typical experiment, bovine cytochrome c was ionized via electrospray, and equine cytochrome c was desorbed and ionized by IR-MALDESI such that the ratio of equine:bovine was used as a measure of the ionization efficiency of IR-MALDESI. This response was used to rank the importance of seven source parameters including flow rate, laser fluence, laser repetition rate, ESI emitter to mass spectrometer inlet distance, sample stage height, sample plate voltage, and the sample to mass spectrometer inlet distance. A screening fractional factorial DOE was conducted to designate which of the seven parameters induced the greatest amount of change in the response. These important parameters (flow rate, stage height, sample to mass spectrometer inlet distance, and laser fluence) were then studied at higher resolution using a full factorial DOE to obtain the globally optimized combination of parameter settings. The optimum combination of settings was then compared with our previously determined settings to quantify the degree of improvement in detection limit. The limit of detection for the optimized conditions was approximately 10 attomoles compared with 100 femtomoles for the previous settings, which corresponds to a four orders of magnitude improvement in the detection limit of equine cytochrome c.

摘要

实验设计(DOE)是一种系统且具有成本效益的方法,可以通过该方法在少数实验中测量多个参数及其相互作用对给定响应的影响,从而优化系统。在此,我们描述了使用统计 DOE 来改善红外辅助激光解吸电喷雾电离(IR-MALDESI)源的一些分析性品质因数,以用于质谱分析。在典型实验中,通过电喷雾使牛细胞色素 c 离子化,然后通过 IR-MALDESI 使马细胞色素 c 解吸和离子化,将马/牛的比率用作 IR-MALDESI 离子化效率的度量。该响应用于对包括流速、激光强度、激光重复率、ESI 发射器与质谱仪入口距离、样品台高度、样品板电压和样品与质谱仪入口距离在内的七个源参数的重要性进行排序。进行筛选部分因子 DOE 以指定七个参数中哪一个引起响应的最大变化。然后,使用全因子 DOE 对这些重要参数(流速、样品台高度、样品与质谱仪入口距离和激光强度)进行更高分辨率的研究,以获得参数设置的全局优化组合。然后将最佳组合的设置与我们之前确定的设置进行比较,以量化检测限提高的程度。优化条件下的检测限约为 10 阿托摩尔,而之前的设置为 100 飞摩尔,这对应于马细胞色素 c 的检测限提高了四个数量级。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/884a/3781580/5daa5402412a/nihms508955f1.jpg

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