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Native Top-Down Electrospray Ionization-Mass Spectrometry of 158 kDa Protein Complex by High-Resolution Fourier Transform Ion Cyclotron Resonance Mass Spectrometry

机译:高分辨率傅里叶变换离子回旋共振质谱对158 kDa蛋白复合物进行自上而下的电喷雾电离质谱分析

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摘要

Fourier transform ion cyclotron resonance mass spectrometry (FTICR MS) delivers high resolving power, mass measurement accuracy, and the capabilities for unambiguously sequencing by a top-down MS approach. Here, we report isotopic resolution of a 158 kDa protein complex, tetrameric aldolase with an average absolute deviation of 0.36 ppm and an average resolving power of ~520 000 at m/z 6033 for the 26+ charge state in magnitude mode. Phase correction further improves the resolving power and average absolute deviation by 1.3-fold. Furthermore, native top-down electron capture dissociation (ECD) enables the sequencing of 168 C-terminal amino acid (AA) residues out of 463 total AAs. Combining the data from top-down MS of native and denatured aldolase complexes, a total of 56% of the total backbone bonds were cleaved. The observation of complementary product ion pairs confirms the correctness of the sequence and also the accuracy of the mass fitting of the isotopic distribution of the aldolase tetramer. Top-down MS of the native protein provides complementary sequence information to top-down ECD and collisonally activated dissociation (CAD) MS of the denatured protein. Moreover, native top-down ECD of aldolase tetramer reveals that ECD fragmentation is not limited only to the flexible regions of protein complexes and that regions located on the surface topology are prone to ECD cleavage.
机译:傅里叶变换离子回旋共振质谱(FTICR MS)具有高分辨能力,质量测量精度以及通过自上而下的MS方法进行明确测序的功能。在这里,我们报道了在大小模式下26 m电荷状态下158 kDa蛋白质复合物,四聚醛缩酶的同位素分辨率,其平均绝对偏差为0.36 ppm,在m / z 6033时的平均分辨力为520000。相位校正可将分辨力和平均绝对偏差进一步提高1.3倍。此外,天然的自上而下的电子捕获解离(ECD)可以对463种AA中的168个C端氨基酸(AA)残基进行测序。结合自上而下的天然和变性醛缩酶复合物的MS数据,总共裂解了总骨架键的56%。互补产物离子对的观察证实了序列的正确性以及醛缩酶四聚体的同位素分布的质量拟合的准确性。天然蛋白的自上而下的MS为变性蛋白的自上而下的ECD和collisonally活化解离(CAD)MS提供互补的序列信息。此外,醛缩酶四聚体的天然自上而下的ECD揭示ECD片段化不仅限于蛋白质复合物的柔性区域,并且位于表面拓扑上的区域易于ECD裂解。

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