Schneck Emanuel, Rehfeldt Florian, Oliveira Rafael G, Gege Christian, Demé Bruno, Tanaka Motomu
Biophysical Chemistry II, Institute of Physical Chemistry and BIOQUANT, University of Heidelberg, D69120 Heidelberg, Germany.
Phys Rev E Stat Nonlin Soft Matter Phys. 2008 Dec;78(6 Pt 1):061924. doi: 10.1103/PhysRevE.78.061924. Epub 2008 Dec 30.
We designed artificial models of biological membranes by deposition of synthetic glycolipid membrane multilayers on planar silicon substrates. In contrast to commonly used phospholipid membranes, this offers the unique possibility to study the influence of membrane-bound saccharide chains (cell glycocalix) on the membrane mechanics. Taking advantage of the planar sample geometry, we carried out specular and off-specular neutron scattering experiments to identify out-of-plane and in-plane scattering vector components. By considering the effects of finite sample sizes, we were able to simulate the measured two-dimensional reciprocal space maps within the framework of smectic liquid-crystal theory. The results obtained both at controlled humidity and in bulk water clearly indicate that a subtle change in the molecular chemistry of the saccharides strongly influences intermembrane interactions and membrane bending rigidities.
我们通过在平面硅基底上沉积合成糖脂膜多层结构来设计生物膜的人工模型。与常用的磷脂膜不同,这为研究膜结合糖链(细胞糖萼)对膜力学的影响提供了独特的可能性。利用平面样品几何结构,我们进行了镜面和非镜面中子散射实验,以确定面外和面内散射矢量分量。通过考虑有限样品尺寸的影响,我们能够在近晶液晶理论框架内模拟测量的二维倒易空间图。在控制湿度和大量水中获得的结果清楚地表明,糖分子化学的细微变化强烈影响膜间相互作用和膜弯曲刚度。