Suppr超能文献

用于模拟质子化肽软着陆实验的解析势能函数。CH3NH3+/CH4相互作用。

An analytical potential energy function to model protonated peptide soft-landing experiments. The CH3NH3+/CH4 interactions.

作者信息

Deb Bipasha, Hu Wenfang, Song Kihyung, Hase William L

机构信息

Department of Chemistry and Biochemistry, Texas Tech University, Lubbock, TX 79409-1061, USA.

出版信息

Phys Chem Chem Phys. 2008 Aug 21;10(31):4565-72. doi: 10.1039/b803155j. Epub 2008 Jun 16.

Abstract

To model soft-landing of peptide ions on surfaces, it is important to have accurate intermolecular potentials between these ions and surfaces. As part of this goal, ab initio calculations at the MP2/aug-cc-pVTZ level of theory, with basis set superposition error (BSSE) corrections, were performed to determine both the long-range attractive and short-range repulsive potentials for CH(4) interacting with the -NH(3)(+) group of CH(3)NH(3)(+). Potential energy curves for four different orientations between CH(4) and CH(3)NH(3)(+) were determined from the calculations to obtain accurate descriptions of the interactions between the atoms of CH(4) and those of -NH(3)(+). A universal analytic function was not found that could accurately represent both the long-range and short-range potentials for collision energies as high as those obtained in surface-induced-dissociation (SID) experiments. Instead, long-range and short-range analytic potentials were developed separately, by simultaneously fitting the four ab initio potential energy curves with a sum of two-body interactions between the atoms of CH(4) and -NH(3)(+), and then connecting these long-range and short-range two-body potentials with switching functions. Following a previous work [J. Am. Chem. Soc., 2002, 124, 1524], these two-body potentials may be used to describe the interactions of the N and H atoms of the -NH(3)(+) group of a protonated peptide ion with the H and C atoms of alkane-type surfaces such as alkyl thiol self-assembled monolayers and H-terminated diamond. Accurate short-range and long-range potentials are imperative to model protonated peptide ion soft-landing experiments. The former controls the collision energy transfer, whereas the latter describes the binding of the ion to the surface. A comparison of the ab initio potential energy curves for CH(3)NH(3)(+)/CH(4) with those for NH(4)(+)/CH(4) shows that they give nearly identical two-body interactions between the atoms of -NH(3)(+) and those of CH(4), showing that the smaller NH(4)(+)/CH(4) system may be used to obtain the two-body potentials. A comparison of the four ab initio potential energy curves reported here for CH(3)NH(3)(+)/CH(4), with those given by the AMBER and CHARMM molecular mechanical potentials, show that these latter potentials "roughly" approximate the long-range attractions, but are grossly in error for the short-range repulsions. The work reported here illustrates that high-level ab initio calculations of intermolecular potentials between small model molecules may be used to develop accurate analytical intermolecular potentials between peptide ions and surfaces.

摘要

为了模拟肽离子在表面的软着陆过程,准确了解这些离子与表面之间的分子间势能非常重要。作为这一目标的一部分,我们在MP2/aug-cc-pVTZ理论水平上进行了从头算计算,并进行了基组叠加误差(BSSE)校正,以确定CH(4)与CH(3)NH(3)(+)的-NH(3)(+)基团相互作用时的长程吸引势能和短程排斥势能。通过计算确定了CH(4)与CH(3)NH(3)(+)之间四种不同取向的势能曲线,以准确描述CH(4)的原子与-NH(3)(+)的原子之间的相互作用。尚未找到一个通用的解析函数能够准确表示高达表面诱导解离(SID)实验中所获得的碰撞能量下的长程和短程势能。相反,我们分别开发了长程和短程解析势能,方法是通过将CH(4)与-NH(3)(+)的原子之间的两体相互作用之和同时拟合四条从头算势能曲线,然后用切换函数将这些长程和短程两体势能连接起来。根据之前的一项工作[《美国化学会志》,2002年,124卷,1524页],这些两体势能可用于描述质子化肽离子的-NH(3)(+)基团的N和H原子与烷烃型表面(如烷基硫醇自组装单分子层和H端金刚石)的H和C原子之间的相互作用。准确的短程和长程势能对于模拟质子化肽离子软着陆实验至关重要。前者控制碰撞能量转移,而后者描述离子与表面的结合。CH(3)NH(3)(+)/CH(4)的从头算势能曲线与NH(4)(+)/CH(4)的从头算势能曲线的比较表明,它们在-NH(3)(+)的原子与CH(4)的原子之间给出了几乎相同的两体相互作用,这表明较小的NH(4)(+)/CH(4)体系可用于获得两体势能。本文报道的CH(3)NH(3)(+)/CH(4)的四条从头算势能曲线与AMBER和CHARMM分子力学势能给出的曲线的比较表明,后一种势能“大致”近似长程吸引力,但在短程排斥方面存在严重误差。本文报道的工作表明,小分子模型分子之间分子间势能的高水平从头算计算可用于开发肽离子与表面之间准确的解析分子间势能。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验