Kavli Nanoscience Institute and Department of Physics, California Institute of Technology, Pasadena, California, 91125, USA.
Thermo Fisher Scientific, 28199, Bremen, Germany.
Angew Chem Int Ed Engl. 2024 Aug 12;63(33):e202317064. doi: 10.1002/anie.202317064. Epub 2024 Jun 25.
Nanoelectromechanical systems (NEMS)-based mass spectrometry (MS) is an emerging technique that enables determination of the mass of individual adsorbed particles by driving nanomechanical devices at resonance and monitoring the real-time changes in their resonance frequencies induced by each single molecule adsorption event. We incorporate NEMS into an Orbitrap mass spectrometer and report our progress towards leveraging the single-molecule capabilities of the NEMS to enhance the dynamic range of conventional MS instrumentation and to offer new capabilities for performing deep proteomic analysis of clinically relevant samples. We use the hybrid instrument to deliver E. coli GroEL molecules (801 kDa) to the NEMS devices in their native, intact state. Custom ion optics are used to focus the beam down to 40 μm diameter with a maximum flux of 25 molecules/second. The mass spectrum obtained with NEMS-MS shows good agreement with the known mass of GroEL.
基于纳机电系统(NEMS)的质谱(MS)是一种新兴技术,通过驱动纳机械装置在共振状态下,并监测每个单分子吸附事件引起的其共振频率的实时变化,从而能够确定单个吸附颗粒的质量。我们将 NEMS 集成到轨道阱质谱仪中,并报告了我们在利用 NEMS 的单分子能力来增强传统 MS 仪器的动态范围以及为临床相关样本进行深度蛋白质组分析提供新功能方面的进展。我们使用混合仪器将大肠杆菌 GroEL 分子(801 kDa)以其天然完整的状态递送到 NEMS 装置中。定制离子光学器件将光束聚焦到 40 μm 直径,最大通量为 25 个分子/秒。用 NEMS-MS 获得的质谱与 GroEL 的已知质量吻合良好。