首页> 外文期刊>Journal of mass spectrometry: JMS >Trapping mode dipolar DC collisional activation in the RF-only ion guide of a linear ion trap/time-of-flight instrument for gaseous bio-ion declustering
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Trapping mode dipolar DC collisional activation in the RF-only ion guide of a linear ion trap/time-of-flight instrument for gaseous bio-ion declustering

机译:线性离子阱/飞行时间仪器的仅RF离子导向器中的捕集模式偶极DC碰撞活化,用于气态生物离子解聚

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摘要

The application of dipolar direct current (DDC) to the radio frequency-only ion guide (Q0) of a hybrid quadrupole/time-of-flight mass spectrometer for collision-induced declustering of large bio-ions is described. As a broadband technique, ion trap DDC collisional activation (CA) is employed to decluster ions simultaneously over a relatively broad mass-to-charge (m/z) range. Declustering DDC CA can yield significantly narrower peaks relative to those observed in the absence of declustering methods, depending upon the extent of noncovalent adduction associated with the ions, and can also be used in conjunction with other methods, such as nozzle-skimmer CA. The key experimental variables in the DDC experiment are the DDC voltage (V_(DDC)), V_(RF), and the time over which V_(DDC) is applied. The V_(DDC)/V_(RF) ratio is key to the extent to which ion temperatures are elevated and also influences the upper m/z limit for ion storage. The V_(DDC)/V_(RF) ratio affects ion temperatures and the upper m/z limit in opposing directions. That is, as the ratio increases, the ion temperature also increases, whereas the upper m/z storage limit decreases. However, for a given V_(DDC)/V_(RF) ratio, the upper m/z storage limit can be increased by increasing V_(RF), at the expense of the lower m/z limit for ion storage. The key value of the approach is that it affords a relatively precise degree of control over ion temperatures as well as the time over which they are elevated to a higher temperature. The utility of the method is illustrated by the application of ion trap DDC CA in Q0 to oligonucleotide, protein, and multimeric protein complex analyte ions.
机译:描述了将偶极直流电(DDC)应用于混合四极杆/飞行时间质谱仪的仅射频离子导板(Q0),以用于碰撞诱导的大型生物离子去簇。作为一种宽带技术,采用了离子阱DDC碰撞活化(CA)在相对较宽的质荷(m / z)范围内同时对离子进行解簇。与没有消簇方法时观察到的峰相比,消解DDC CA可以产生明显窄的峰,具体取决于与离子相关的非共价加合程度,并且还可以与其他方法(例如喷嘴分离器CA)结合使用。 DDC实验中的关键实验变量是DDC电压(V_(DDC)),V_(RF)和施加V_(DDC)的时间。 V_(DDC)/ V_(RF)之比对于离子温度升高的程度至关重要,并且也影响离子存储的m / z上限。 V_(DDC)/ V_(RF)比会影响离子温度和相反方向的m / z上限。即,随着比率增加,离子温度也增加,而m / z存储上限降低。但是,对于给定的V_(DDC)/ V_(RF)比,可以通过增加V_(RF)来增加m / z的存储上限,但会降低离子存储的m / z限制。该方法的关键价值在于它提供了相对精确的离子温度控制程度以及将其升高到更高温度的时间。通过将Q0中的离子阱DDC CA应用于寡核苷酸,蛋白质和多聚体蛋白质复合物分析物离子,可以说明该方法的实用性。

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