Belov Mikhail E, Zhang Rui, Strittmatter Eric F, Prior David C, Tang Keqi, Smith Richard D
Biological Sciences Division, Pacific Northwest National Laboratory, P.O. Box 999, Richland, Washington 99352, USA.
Anal Chem. 2003 Aug 15;75(16):4195-205. doi: 10.1021/ac0206770.
When combined with capillary LC separations, electrospray ionization-Fourier transform ion cyclotron resonance mass spectrometry (ESI-FTICR MS) has demonstrated capabilities for advanced characterization of proteomes based upon analyses of proteolytic digests. Incorporation of external (to the ICR cell) multipole devices with FTICR for ion selection and ion accumulation has enhanced the dynamic range, sensitivity, and duty cycle of measurements. However, the highly variable ion production rate from an LC separation can result in "overfilling" of the external trap during the elution of major peaks and result in m/z discrimination and fragmentation of peptide ions. Excessive space charge trapped in the ICR cell also causes significant shifts in the detected ion cyclotron frequencies, reducing the achievable mass measurement accuracy (MMA) and making protein identification less effective. To eliminate m/z discrimination in the external ion trap, further increase duty cycle, and improve MMA, we have developed the capability for data-dependent adjustment of ion accumulation times in the course of an LC separation, referred to as automated gain control (AGC). This development has been implemented in combination with low kinetic energy gated ion trapping and internal calibration using a dual-channel electrodynamic ion funnel. The overall system was initially evaluated in the analysis of a tryptic digest of bovine serum albumin. In conjunction with internal calibration, the capillary LC-ESI-AGC-FTICR instrumentation provided a approximately 10-fold increase in the number of identified tryptic peptides compared to that obtained using a fixed ion accumulation time and external calibration methods.
当与毛细管液相色谱分离相结合时,电喷雾电离-傅里叶变换离子回旋共振质谱(ESI-FTICR MS)已展现出基于蛋白水解消化物分析对蛋白质组进行高级表征的能力。将外部(相对于离子回旋共振池)多极装置与傅里叶变换离子回旋共振质谱联用进行离子选择和离子积累,提高了测量的动态范围、灵敏度和占空比。然而,液相色谱分离中高度可变的离子产生速率可能导致在主要峰洗脱期间外部阱的“过度填充”,并导致肽离子的质荷比歧视和碎片化。离子回旋共振池中捕获的过多空间电荷也会导致检测到的离子回旋频率发生显著偏移,降低可实现的质量测量精度(MMA),并使蛋白质鉴定效果变差。为了消除外部离子阱中的质荷比歧视、进一步提高占空比并改善MMA,我们开发了在液相色谱分离过程中对离子积累时间进行数据依赖调整的能力,即自动增益控制(AGC)。此开发已与低动能门控离子捕获和使用双通道电动离子漏斗的内部校准相结合实施。整个系统最初在牛血清白蛋白胰蛋白酶消化物的分析中进行了评估。与内部校准相结合,毛细管液相色谱-电喷雾电离-自动增益控制-傅里叶变换离子回旋共振质谱仪器与使用固定离子积累时间和外部校准方法相比,鉴定出的胰蛋白酶肽数量增加了约10倍。