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Kinematics, material symmetry, and energy densities for lipid bilayers with spontaneous curvature

机译:具有自发曲率的脂质双层的运动学,材料对称性和能量密度

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Continuum mechanical tools are used to describe the deformation, energy density, and material symmetry of a lipid bilayer with spontaneous curvature. In contrast to conventional approaches in which lipid bilayers are modeled by material surfaces, here we rely on a three-dimensional approach in which a lipid bilayer is modeling by a shell-like body with finite thickness. In this setting, the interface between the leaflets of a lipid bilayer is assumed to coincide with the mid-surface of the corresponding shell-like body. The three-dimensional deformation gradient is found to involve the curvature tensors of the mid-surface in the spontaneous and the deformed states, the deformation gradient of the mid-surface, and the transverse deformation. Attention is also given to the coherency of the leaflets and to the area compatibility of the closed lipid bilayers (i.e., vesicles). A hyperelastic constitutive theory for lipid bilayers in the liquid phase is developed. In combination, the requirements of frame indifference and material symmetry yield a representation for the energy density of a lipid bilayer. This representation shows that three scalar invariants suffice to describe the constitutive response of a lipid bilayer exhibiting in-plane fluidity and transverse isotropy. In addition to exploring the geometrical and physical properties of these invariants, fundamental constitutively associated kinematical quantities are emphasized. On this basis, the effect on the energy density of assuming that the lipid bilayer is incompressible is considered. Lastly, a dimension reduction argument is used to extract an areal energy density per unit area from the three-dimensional energy density. This step explains the origin of spontaneous curvature in the areal energy density. Importantly, along with a standard contribution associated with the natural curvature of the lipid bilayer, our analysis indicates that constitutive asymmetry between the leaflets of the lipid bilayer gives rise to a secondary contribution to the spontaneous curvature.
机译:连续体机械工具用于描述具有自发曲率的双层脂质的变形,能量密度和材料对称性。与通过材料表面对脂质双层进行建模的常规方法相比,此处我们依靠三维方法,其中脂质双层通过具有有限厚度的壳状体进行建模。在这种情况下,脂质双层的小叶之间的界面被认为与相应的壳状体的中表面重合。发现三维变形梯度涉及在自发和变形状态下的中表面的曲率张量,中表面的变形梯度和横向变形。还注意小叶的连贯性和封闭的脂质双层(即,囊泡)的面积相容性。建立了脂质双层在液相中的超弹性本构理论。结合起来,对帧无关性和材料对称性的要求代表了脂质双层的能量密度。该表示法表明,三个标量不变量足以描述表现出平面内流动性和横向各向同性的脂质双层的本构响应。除了探索这些不变量的几何和物理特性外,还强调了基本的与本构相关的运动学量。在此基础上,考虑假设脂质双层不可压缩对能量密度的影响。最后,使用降维参数从三维能量密度中提取每单位面积的面能量密度。此步骤解释了面积能量密度中自发曲率的起源。重要的是,连同与脂双层的自然曲率相关的标准贡献,我们的分析表明,脂双层的小叶之间的本构不对称性引起了自发曲率的次要贡献。

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