Computed Vibrational Heat Capacities for Gas-Phase Biomolecular Ions.

IF 3.1 2区 化学 Q2 BIOCHEMICAL RESEARCH METHODS
Lawren R Paris, Austin W Green, James S Prell
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引用次数: 0

Abstract

Collision induced dissociation (CID) and collision induced unfolding (CIU) experiments are important tools for determining the structures of and differences between biomolecular complexes with mass spectrometry. However, quantitative comparison of CID/CIU data acquired on different platforms or even using different regions of the same instrument can be very challenging due to differences in gas identity and pressure, electric fields, and other experimental parameters. In principle, these can be reconciled by a detailed understanding of how ions heat, cool, and dissociate or unfold in time as a function of these parameters. Fundamental information needed to model these processes for different ion types and masses is their heat capacity as a function of the internal (i.e., vibrational) temperature. Here, we use quantum computational theory to predict average heat capacities as a function of temperature for a variety of model biomolecule types from 100 to 3000 K. On a degree-of-freedom basis, these values are remarkably invariant within each biomolecule type and can be used to estimate heat capacities of much larger biomolecular ions. We also explore effects of ion heating, cooling, and internal energy distribution as a function of time using a home-built program (IonSPA). We observe that these internal energy distributions can be nearly Boltzmann for larger ions (greater than a few kDa) through most of the CID/CIU kinetic window after a brief (few-μs) induction period. These results should be useful in reconciling CID/CIU results across different instrument platforms and under different experimental conditions, as well as in designing instrumentation and experiments to control CID/CIU behavior.

气相生物分子离子的计算振动热容。
碰撞诱导解离(CID)和碰撞诱导解折(CIU)实验是利用质谱确定生物分子复合物结构和差异的重要工具。然而,由于气体特性和压力、电场和其他实验参数的不同,定量比较在不同平台甚至同一仪器的不同区域获得的 CID/CIU 数据非常具有挑战性。原则上,只要详细了解离子如何随这些参数的变化而加热、冷却、解离或展开,就可以调和这些差异。为不同类型和质量的离子建立这些过程模型所需的基本信息是其热容量与内部(即振动)温度的函数关系。在这里,我们利用量子计算理论预测了 100 至 3000 K 范围内各种生物大分子模型的平均热容量与温度的函数关系。在自由度基础上,这些值在每种生物大分子类型中都具有显著的不变性,可用于估算更大生物大分子离子的热容量。我们还使用自建程序(IonSPA)探索了离子加热、冷却和内能分布随时间变化的影响。我们观察到,对于较大的离子(大于几 kDa)来说,经过短暂(几微秒)的诱导期后,这些内能分布在大部分 CID/CIU 动力学窗口中都可以接近玻尔兹曼。这些结果有助于协调不同仪器平台和不同实验条件下的 CID/CIU 结果,也有助于设计仪器和实验来控制 CID/CIU 行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.50
自引率
9.40%
发文量
257
审稿时长
1 months
期刊介绍: The Journal of the American Society for Mass Spectrometry presents research papers covering all aspects of mass spectrometry, incorporating coverage of fields of scientific inquiry in which mass spectrometry can play a role. Comprehensive in scope, the journal publishes papers on both fundamentals and applications of mass spectrometry. Fundamental subjects include instrumentation principles, design, and demonstration, structures and chemical properties of gas-phase ions, studies of thermodynamic properties, ion spectroscopy, chemical kinetics, mechanisms of ionization, theories of ion fragmentation, cluster ions, and potential energy surfaces. In addition to full papers, the journal offers Communications, Application Notes, and Accounts and Perspectives
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