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Density-functional theory study of gramicidin A ion channel geometry and electronic properties

机译:短杆菌肽A离子通道的几何结构和电子性质的密度泛函理论研究

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Understanding the mechanisms underlying ion channel function from the atomic-scale requires accurate ab initio modelling as well as careful experiments. Here, we present a density functional theory (DFT) study of the ion channel gramicidin A (gA), whose inner pore conducts only monovalent cations and whose conductance has been shown to depend on the side chains of the amino acids in the channel. We investigate the ground state geometry and electronic properties of the channel in vacuum, focusing on their dependence on the side chains of the amino acids. We find that the side chains affect the ground state geometry, while the electrostatic potential of the pore is independent of the side chains. This study is also in preparation for a full, linear scaling DFT study of gA in a lipid bilayer with surrounding water. We demonstrate that linear scaling DFT methods can accurately model the system with reasonable computational cost. Linear scaling DFT allows ab initio calculations with 10 000-100 000 atoms and beyond, and will be an important new tool for biomolecular simulations.
机译:从原子尺度上了解离子通道功能的基础机理需要准确的从头算建模和仔细的实验​​。在这里,我们提出了离子通道短杆菌肽A(gA)的密度泛函理论(DFT)研究,其内部孔仅传导一价阳离子,并且其电导率已显示取决于通道中氨基酸的侧链。我们研究真空中通道的基态几何形状和电子性质,重点在于它们对氨基酸侧链的依赖性。我们发现侧链影响基态的几何形状,而孔的静电势独立于侧链。这项研究还为脂质双分子层与周围水中gA的完全线性比例DFT研究做好准备。我们证明了线性缩放DFT方法可以以合理的计算成本对系统进行精确建模。线性缩放DFT允许从头算起具有10,000至100,000个原子,并且将是生物分子模拟的重要新工具。

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