Institute of Analytical Chemistry, Leipzig University, Linnéstraße 3, 04103 Leipzig, Germany.
Institute of Organic Chemistry, Leipzig University, Johannisallee 29, 04103 Leipzig, Germany.
J Am Chem Soc. 2022 Jun 15;144(23):10353-10360. doi: 10.1021/jacs.2c01651. Epub 2022 May 31.
We report an approach for the online coupling of digital microfluidics (DMF) with mass spectrometry (MS) using a chip-integrated microspray hole (μSH). The technique uses an adapted electrostatic spray ionization (ESTASI) method to spray a portion of a sample droplet through a microhole in the cover plate, allowing its chemical content to be analyzed by MS. This eliminates the need for chip disassembly or the introduction of capillary emitters for MS analysis, as required by state-of-the-art. For the first time, this allows the essential advantage of a DMF device─free droplet movement─to be retained during MS analysis. The broad applicability of the developed seamless coupling of DMF and mass spectrometry was successfully applied to the study of various on-chip organic syntheses as well as protein and peptide analysis. In the case of a Hantzsch synthesis, we were able to show that the method is very well suited for monitoring even rapid chemical reactions that are completed in a few seconds. In addition, the strength of the low resource consumption in such on-chip microsyntheses was demonstrated by the example of enzymatic brominations, for which only a minute amount of a special haloperoxidase is required in the droplet. The unique selling point of this approach is that the analyzed droplet remains completely movable after the MS measurement and is available for subsequent on-DMF chip processes. This is illustrated here for the example of MS analysis of the starting materials in the corresponding droplets before they are combined to investigate the reaction progress by DMF-MS further. This technology enables the ongoing and almost unlimited tracking of multistep chemical processes in a DMF chip and offers exciting prospects for transforming digital microfluidics into automated synthesis platforms.
我们报告了一种使用芯片集成微喷雾孔 (μSH) 将数字微流控 (DMF) 与质谱 (MS) 在线耦合的方法。该技术使用经过改进的静电喷雾电离 (ESTASI) 方法将一部分样品液滴通过盖板上的微孔喷射出来,从而可以通过 MS 对其化学物质进行分析。这消除了对芯片进行拆卸或引入毛细管发射器进行 MS 分析的需要,这是现有技术所必需的。这是首次允许 DMF 设备的基本优势——自由液滴运动——在 MS 分析过程中得以保留。开发的 DMF 和质谱无缝耦合具有广泛的适用性,成功地应用于各种芯片上有机合成以及蛋白质和肽分析的研究。在 Hantzsch 合成的情况下,我们能够表明该方法非常适合监测甚至在几秒钟内完成的快速化学反应。此外,通过酶溴化的例子证明了这种芯片上微合成中低资源消耗的优势,因为在液滴中只需要微量的特殊过氧化物酶。该方法的独特卖点是,在 MS 测量后,分析的液滴仍然可以完全移动,并且可用于后续的 DMF 芯片处理。这在相应液滴中对起始材料进行 MS 分析的例子中得到了说明,然后将它们组合起来通过 DMF-MS 进一步研究反应进度。这项技术能够在 DMF 芯片中对多步化学过程进行持续和几乎无限的跟踪,并为将数字微流控技术转化为自动化合成平台提供了令人兴奋的前景。