Department of Chemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.
Department of Biomolecular Chemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.
Anal Chem. 2020 Sep 15;92(18):12363-12370. doi: 10.1021/acs.analchem.0c02087. Epub 2020 Aug 24.
Photoactivation and photodissociation have long proven to be useful tools in tandem mass spectrometry, but implementation often involves cumbersome and potentially dangerous configurations. Here, we redress this problem by using a fiber-optic cable to couple an infrared (IR) laser to a mass spectrometer for robust, efficient, and safe photoactivation experiments. Transmitting 10.6 μm IR photons through a hollow-core fiber, we show that such fiber-assisted activated ion-electron transfer dissociation (AI-ETD) and IR multiphoton dissociation (IRMPD) experiments can be carried out as effectively as traditional mirror-based implementations. We report on the transmission efficiency of the hollow-core fiber for conducting photoactivation experiments and perform various intact protein and peptide analyses to illustrate the benefits of fiber-assisted AI-ETD, namely, a simplified system for irradiating the two-dimensional linear ion trap volume concurrent with ETD reactions to limit uninformative nondissociative events and thereby amplify sequence coverage. We also describe a calibration scheme for the routine analysis of IR laser alignment and power through the fiber and into the dual cell quadrupolar linear ion trap. In all, these advances allow for a more robust, straightforward, and safe instrumentation platform, permitting implementation of AI-ETD and IRMPD on commercial mass spectrometers and broadening the accessibility of these techniques.
光激活和光解已被证明是串联质谱学中非常有用的工具,但实施通常涉及繁琐且潜在危险的配置。在这里,我们通过使用光纤电缆将红外(IR)激光耦合到质谱仪,解决了这个问题,从而实现了强大、高效和安全的光激活实验。通过空心光纤传输 10.6 μm 的 IR 光子,我们表明,这种纤维辅助的激活离子-电子转移解离(AI-ETD)和红外多光子解离(IRMPD)实验可以像传统的基于反射镜的实现一样有效进行。我们报告了空心光纤在进行光激活实验中的传输效率,并进行了各种完整蛋白质和肽分析,以说明纤维辅助 AI-ETD 的好处,即简化了辐照二维线性离子阱体积的系统,同时进行 ETD 反应,以限制无信息的非解离事件,从而提高序列覆盖率。我们还描述了一种通过光纤和双池四极线性离子阱对 IR 激光对准和功率进行常规分析的校准方案。总之,这些进展允许更强大、更直接和更安全的仪器平台,允许在商业质谱仪上实现 AI-ETD 和 IRMPD,并扩大这些技术的可及性。