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Infrared laser multiphoton dissociation of proton-bound dimers of biomolecules: a new method to probe the acid-base properties of local sites in complex molecules

机译:生物分子质子结合二聚体的红外激光多光子解离:一种探测复杂分子局部位点酸碱性质的新方法

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Abstract: New techniques such as matrix assisted laser desorption, electrospray ionization, and fast atom or ion bombardment make is possible to obtain quasimolecular (e.g., protonated) ions of thermally fragile biomolecules without significant decomposition or fragmentation. These ions can be studied using a variety of mass spectrometric techniques, most powerful among which is Fourier transform ion cyclotron resonance spectroscopy (FT-ICR). One of the important advantages of FT-ICR is the ability to store ions for long periods of time, facilitating studies of processes such as bimolecular reactions and laser photodissociation. One significant application of FT-ICR has been to study the acid-base properties of molecules in the gas phase. In this article we demonstrate a new method to probe the acid-base properties of local sites in biomolecules using a novel application of infrared multiphoton dissociation. The usual method of studying proton transfer reactions with appropriate reference bases does not work well with large molecules due to their propensity for radiative bimolecular cluster formation. The difficulty which this introduces can be circumvented by dissociating the proton bound dimer by infrared multiphoton excitation with a cw CO$-2$/ laser. Infrared heating assists dissociation along the lowest energy pathway and fragments the dimer to leave the proton preferentially on the more basic site. We illustrate this technique by demonstrating that the proton affinity of N-acetyl glycine is intermediate between glycine and alanine.!14
机译:摘要:诸如基质辅助激光解吸,电喷雾电离,快速原子或离子轰击等新技术使得获得热易碎生物分子的准分子(例如质子化)离子成为可能,而不会发生明显的分解或断裂。可以使用多种质谱技术研究这些离子,其中最强大的是傅里叶变换离子回旋共振光谱(FT-ICR)。 FT-ICR的重要优点之一是能够长时间存储离子,这有助于研究双分子反应和激光光解离等过程。 FT-ICR的一项重要应用是研究气相中分子的酸碱性质。在本文中,我们演示了一种使用红外多光子解离的新应用来探测生物分子中局部位点的酸碱性质的新方法。研究具有适当参考碱基的质子转移反应的常规方法不适用于大分子,因为它们倾向于形成辐射性双分子团簇。引入的困难可以通过使用红外多光子激发和Cw CO $ -2 /激光器使质子结合的二聚体解离来避免。红外加热有助于沿着最低能量路径解离并使二聚体破碎,从而优先将质子留在更碱性的位置。我们通过证明N-乙酰基甘氨酸的质子亲和力介于甘氨酸和丙氨酸之间来说明这一技术。14

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