Life Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.
Anal Chem. 2011 Aug 1;83(15):6082-9. doi: 10.1021/ac2011813. Epub 2011 Jul 5.
Mass spectrometry (MS) is the enabling technology for proteomics and metabolomics. However, dramatic improvements in both sensitivity and throughput are still required to achieve routine MS-based single cell proteomics and metabolomics. Here, we report the silicon-based monolithic multinozzle emitter array (MEA) and demonstrate its proof-of-principle applications in high-sensitivity and high-throughput nanoelectrospray mass spectrometry. Our MEA consists of 96 identical 10-nozzle emitters in a circular array on a 3 in. silicon chip. The geometry and configuration of the emitters, the dimension and number of the nozzles, and the micropillar arrays embedded in the main channel can be systematically and precisely controlled during the microfabrication process. Combining electrostatic simulation and experimental testing, we demonstrated that sharpened-end geometry at the stem of the individual multinozzle emitter significantly enhanced the electric fields at its protruding nozzle tips, enabling sequential nanoelectrospray for the high-density emitter array. We showed that electrospray current of the multinozzle emitter at a given total flow rate was approximately proportional to the square root of the number of its spraying-nozzles, suggesting the capability of high MS sensitivity for multinozzle emitters. Using a conventional Z-spray mass spectrometer, we demonstrated reproducible MS detection of peptides and proteins for serial MEA emitters, achieving sensitivity and stability comparable to the commercial capillary emitters. Our robust silicon-based MEA chip opens up the possibility of a fully integrated microfluidic system for ultrahigh-sensitivity and ultrahigh-throughput proteomics and metabolomics.
质谱(MS)是蛋白质组学和代谢组学的关键技术。然而,为了实现基于 MS 的单细胞蛋白质组学和代谢组学的常规应用,仍然需要在灵敏度和通量方面取得显著的改进。在这里,我们报告了基于硅的整体式多喷嘴发射器阵列(MEA),并证明了其在高灵敏度和高通量纳喷雾质谱中的原理性应用。我们的 MEA 由 3 英寸硅片上的圆形阵列中的 96 个相同的 10 喷嘴发射器组成。发射器的几何形状和配置、喷嘴的尺寸和数量以及嵌入主通道中的微柱阵列可以在微制造过程中进行系统和精确的控制。通过静电模拟和实验测试相结合,我们证明了单个多喷嘴发射器的茎部的锐化端几何形状显著增强了其突出喷嘴尖端的电场,从而实现了高密度发射器阵列的顺序纳喷雾。我们表明,在给定总流速下,多喷嘴发射器的电喷雾电流与其喷雾喷嘴的数量的平方根大致成正比,这表明多喷嘴发射器具有高 MS 灵敏度的能力。使用常规的 Z-喷雾质谱仪,我们对串联 MEA 发射器的肽和蛋白质进行了可重复的 MS 检测,实现了与商业毛细管发射器相当的灵敏度和稳定性。我们坚固的基于硅的 MEA 芯片为超高灵敏度和超高通量蛋白质组学和代谢组学开辟了完全集成的微流控系统的可能性。