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Pervasive Charge Solvation Permeates Native-like Protein Ions and Dramatically Influences Top-down Sequencing Data

机译:普遍的电荷溶解渗透到类似天然的蛋白质离子中,并极大地影响自上而下的测序数据。

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Post-translational modifications create a diverse mixture of proteoforms, leading to substantial challenges in linking proteomic information to disease. Top-down sequencing of intact proteins and multiprotein complexes offers significant advantages in proteoform analysis, but achieving complete fragmentation for such precursor ions remains challenging. Intact proteins that undergo slow-heating generally fragment via charge directed (i.e., mobile proton) or charge remote fragmentation pathways. Our efforts seek to alter this paradigm by labeling proteins with trimethyl pyrylium (TMP), which forms a stable, positively charged label at lysine residues. Fixing positive charges to the protein sequence reduces the availability of mobile protons, driving fragmentation to charge remote channels. Furthermore, we demonstrate that capping acidic side chains with carbodiimide chemistry obstructs this pathway, restoring charge-directed fragmentation and resulting in more even coverage of the protein sequence. With large amounts of fixed charge and few mobile protons, we demonstrate that it is also possible to direct fragmentation almost exclusively to lysine residues containing the charged label. Finally, our data indicate that when electrosprayed under native conditions, protein ions possess an immense capacity to accommodate excess positive charge. Molecular dynamics simulations of such ions bearing intrinsically charged labels reveal evidence of numerous charge solvation processes, including the preferential formation of helices that solvate charged labels through interactions with their macro-dipoles. Thus, these studies reveal the extent to which intact gas-phase protein ions are capable of solvating charge, and provide the most complete indication to date of the extensive physical forces opposing the goal of comprehensive top-down protein sequencing.
机译:翻译后修饰产生多种蛋白形式的混合物,从而在将蛋白质组信息与疾病联系起来方面带来了巨大挑战。自上而下的完整蛋白和多蛋白复合物测序在蛋白形式分析中具有显着优势,但是要实现此类前体离子的完全裂解仍然具有挑战性。经历缓慢加热的完整蛋白质通常通过电荷定向(即移动质子)或电荷远距离片段化途径片段化。我们的工作试图通过用三甲基吡啶鎓(TMP)标记蛋白质来改变这种范例,三甲基吡啶鎓在赖氨酸残基上形成稳定的,带正电荷的标记。将正电荷固定在蛋白质序列上会降低移动质子的可用性,从而导致碎片化,从而给远程通道充电。此外,我们证明了用碳二亚胺化学帽盖住酸性侧链会阻碍该途径,恢复电荷导向的片段化并导致蛋白质序列更均匀的覆盖。使用大量固定电荷和少量可移动质子,我们证明了将片段几乎完全定向到含有带电标记的赖氨酸残基的可能性。最后,我们的数据表明,在自然条件下电喷雾时,蛋白质离子具有巨大的容量,可以容纳过量的正电荷。带有固有带电标签的此类离子的分子动力学模拟揭示了许多电荷溶剂化过程的证据,包括优先形成螺旋,这些螺旋通过与大偶极子的相互作用而使带电标签溶剂化。因此,这些研究揭示了完整的气相蛋白质离子能够溶解电荷的程度,并提供了迄今为止最全面的指示,表明广泛的物理力与全面的自上而下的蛋白质测序目标背道而驰。

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