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Bicelles: A natural ‘molecular goniometer’ for structural dynamical and topological studies of molecules in membranes

机译:Bicelles:一种天然的分子测角计用于膜中分子的结构动力学和拓扑研究

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摘要

Major biological processes occur at the biological membrane. One of the great challenges is to understand the function of chemical or biological molecules inside the membrane; as well of those involved in membrane trafficking. This requires obtaining a complete picture of the in situ structure and dynamics as well as the topology and orientation of these molecules in the membrane lipid bilayer. These led to the creation of several innovative models of biological membranes in order to investigate the structure and dynamics of amphiphilic molecules, as well as integral membrane proteins having single or multiple transmembrane segments. Because the determination of the structure, dynamics and topology of molecules in membranes requires a macroscopic alignment of the system, a new membrane model called ‘bicelles’ that represents a crossover between lipid vesicles and classical micelles has become very popular due to its property of spontaneous self-orientation in magnetic fields. In addition, crucial factors involved in mimicking natural membranes, such as sample hydration, pH and salinity limits, are easy to control in bicelle systems. Bicelles are composed of mixtures of long chain (14–18 carbons) and short chain phospholipids (6–8 carbons) hydrated up to 98% with buffers and may adopt various morphologies depending on lipid composition, temperature and hydration. We have been developing bicelle systems under the form of nano-discs made of lipids with saturated or biphenyl-containing fatty acyl chains. Depending on the lipid nature, these membranous nano-discs may be macroscopically oriented with their normal perpendicular or parallel to the magnetic field, providing a natural ‘molecular goniometer’ for structural and topological studies, especially in the field of NMR. Bicelles can also be spun at the magic angle and lead to the 3D structural determination of molecules in membranes.
机译:主要的生物过程发生在生物膜上。挑战之一是要了解膜内化学或生物分子的功能。以及那些从事膜运输的人。这要求获得膜脂质双层中这些分子的原位结构和动力学以及这些分子的拓扑和取向的完整图片。这些导致创建了几种创新的生物膜模型,以研究两亲分子以及具有单个或多个跨膜片段的完整膜蛋白的结构和动力学。因为确定膜中分子的结构,动力学和拓扑结构需要系统的宏观对准,所以一种新的称为“比塞勒斯”的膜模型代表了脂质囊泡和经典胶束之间的交叉,由于其自​​发的特性而变得非常流行在磁场中的自取向。此外,在比塞勒系统中,模拟天然膜所涉及的关键因素,例如样品的水合作用,pH值和盐度极限,也很容易控制。 Bicelles由长链(14-18个碳原子)和短链磷脂(6-8个碳原子)的混合物(经缓冲液水合至98%)组成,根据脂质的组成,温度和水合作用的不同,形态可能不同。我们一直在开发纳米盘形式的比塞勒系统,该盘由具有饱和或含联苯脂肪酰基链的脂质制成。根据脂质的性质,这些膜状纳米圆盘可能会在宏观上与法线垂直或平行于磁场定向,从而为结构和拓扑研究(尤其是NMR领域)提供了天然的“分子测角计”。也可以以魔角旋转Bicell,并导致膜中分子的3D结构确定。

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