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Probing microscopic material properties inside simulated membranes through spatially resolved three-dimensional local pressure fields and surface tensions

机译:通过空间分辨的三维局部压力和表面张力探测模拟膜内的微观材料特性

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摘要

Cellular lipid membranes are spatially inhomogeneous soft materials. Materials properties such as pressure and surface tension thus show important microscopic-scale variation that is critical to many biological functions. We present a means to calculate pressure and surface tension in a 3D-resolved manner within molecular-dynamics simulations and show how such measurements can yield important insight. We also present the first corrections to local virial and pressure fields to account for the constraints typically used in lipid simulations that otherwise cause problems in highly oriented systems such as bilayers. Based on simulations of an asymmetric bacterial ion channel in a POPC bilayer, we demonstrate how 3D-resolved pressure can probe for both short-range and long-range effects from the protein on the membrane environment. We also show how surface tension is a sensitive metric for inter-leaflet equilibrium and can be used to detect even subtle imbalances between bilayer leaflets in a membrane-protein simulation. Since surface tension is known to modulate the function of many proteins, this effect is an important consideration for predictions of ion channel function. We outline a strategy by which our local pressure measurements, which we make available within a version of the GROMACS simulation package, may be used to design optimally equilibrated membrane-protein simulations.
机译:细胞脂质膜是空间不均匀的软质材料。因此,材料特性(例如压力和表面张力)显示出重要的微观尺度变化,这对许多生物学功能至关重要。我们提出了一种在分子动力学模拟中以3D解析的方式计算压力和表面张力的方法,并展示了这种测量如何产生重要的见解。我们还提出了对局部病毒和压力场的首次校正,以解决脂质模拟中通常使用的约束条件,否则这些约束条件会在高度定向的系统(例如双层)中引起问题。基于POPC双层中不对称细菌离子通道的模拟,我们演示了3D分辨压力如何探测蛋白质对膜环境的短程和长程影响。我们还显示了表面张力如何成为小叶间平衡的敏感指标,可用于检测膜蛋白模拟中双层小叶之间的细微不平衡。由于已知表面张力可调节许多蛋白质的功能,因此该效应是预测离子通道功能的重要考虑因素。我们概述了一种策略,通过该策略,我们在GROMACS模拟软件包的一个版本中提供的局部压力测量可用于设计最佳平衡的膜-蛋白质模拟。

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