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Glucose Can Protect Membranes against Dehydration Damage by Inducing a Glassy Membrane State at Low Hydrations

机译:葡萄糖可在低水合时诱导玻璃态膜从而保护膜免受脱水损害

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摘要

The physical effects of small sugars on membranes have been studied for decades, primarily because of their membrane stabilization in cold or dehydrated environments. We studied the effects of up to 20 mol% glucose in bilayers made of 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) at low hydration by combining X-ray diffraction and Molecular Dynamics (MD) simulations. In agreement with previous studies, we observe membrane thinning at low and membrane thickening at high sugar concentrations. Glucose was found to preferentially localize to the outer head region of phospholipid bilayers at all concentrations, and partitioning of sugar in the membranes was found to monotonically increase with increasing sugar concentration. While the number of gauche defects in the lipid acyl tails and the lipid packing in the presence of sugar resembled values of a fluid lipid bilayer, tail dynamics, as assessed by autocorrelation of the carbon atoms in the phospholipid tails, were slowed down significantly with increasing glucose content. Thus, our findings suggest that sugar leads to a a disordered, glassy state of the hydrophobic membrane core. The non-monotonic effect of glucose on membrane thickness was found to be an effect of fluidification at low concentrations and decreased interdigitation in the higher sugar concentration regime.
机译:小糖对膜的物理作用已经研究了数十年,主要是因为它们在寒冷或脱水的环境中具有膜稳定作用。我们通过结合X射线衍射和分子动力学(MD)模拟研究了低水合条件下由1,2-二肉豆蔻酰基-sn-甘油-3-磷酸胆碱(DMPC)制成的双层中高达20 mol%葡萄糖的影响。与以前的研究一致,我们观察到低糖浓度时膜变薄而高糖浓度时膜变厚。发现葡萄糖在所有浓度下都优先定位在磷脂双层的外部头部区域,并且发现膜中糖的分配随着糖浓度的增加而单调增加。尽管存在糖时脂质酰基尾巴和脂质堆积中的gauche缺陷的数量类似于液体脂质双层的值,但通过增加磷脂尾巴中碳原子的自相关性评估的尾部动力学却显着减慢了葡萄糖含量。因此,我们的发现表明糖导致疏水性膜核心的无序,玻璃态。发现葡萄糖对膜厚度的非单调作用是在低浓度下流化作用和在较高糖浓度下降低了交叉指的作用。

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