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重新定义二甲基亚砜、脂双层和脱水之间的分子相互作用。

Redefining the Molecular Interplay between Dimethyl Sulfoxide, Lipid Bilayers, and Dehydration.

机构信息

Curtin Medical School, Curtin Health Innovation Research Institute and Curtin Institute for Computation, Curtin University, GPO Box U1987, Perth, Western Australia 6845, Australia.

出版信息

J Phys Chem B. 2022 Apr 7;126(13):2513-2529. doi: 10.1021/acs.jpcb.2c00353. Epub 2022 Mar 28.

DOI:10.1021/acs.jpcb.2c00353
Abstract

The potentially damaging action of dimethyl sulfoxide (DMSO) on phospholipid bilayers remains a matter of controversy. We have conducted a series of long-scale molecular dynamics simulations of 1,2-dioleoyl--glycero-3-phosphocholine (DOPC) bilayers at various levels of hydration in the presence of variable quantities of DMSO. These simulations provide evidence for a non-destructive dehydrating mechanism of action for DMSO on DOPC bilayers across a wide concentration range and levels of hydration. Specifically, under full- and low-hydration conditions, the bilayer underwent a minor lateral contraction, coinciding with surface dehydration in the presence of dilute DMSO solutions ( < 0.3). At higher DMSO concentrations, this bilayer structure was retained despite a progressive deterioration of the hydration structure at the interface. A similar convergence of bilayer structural properties was observed under dehydration conditions for 0.3 < < 0.7. Destabilization occurred for dehydrated bilayers in the presence of ≥ 0.7, suggesting the existence of a DMSO concentration and/or dehydration threshold. However, such DMSO concentrations far exceed those established as toxic to other cellular components. Our findings represent a computational model for DMSO-DOPC interactions that is consistent with a range of experimental characterizations, offering new molecular insights into the cryoprotective mechanisms of action of DMSO.

摘要

二甲基亚砜(DMSO)对磷脂双层膜的潜在破坏性作用仍然存在争议。我们已经对各种含水量的 1,2-二油酰基-甘油-3-磷酸胆碱(DOPC)双层膜进行了一系列长尺度分子动力学模拟,其中存在不同数量的 DMSO。这些模拟为 DMSO 对 DOPC 双层膜在广泛浓度范围和含水量下的非破坏性脱水作用机制提供了证据。具体而言,在全水合和低水合条件下,双层膜发生了轻微的横向收缩,与稀 DMSO 溶液(<0.3)存在时的表面脱水一致。在更高的 DMSO 浓度下,尽管界面处的水合结构逐渐恶化,但仍保留了这种双层膜结构。在 0.3< <0.7 的脱水条件下,也观察到类似的双层膜结构特性收敛。对于存在 ≥0.7 的脱水双层膜,会发生失稳,表明存在 DMSO 浓度和/或脱水阈值。然而,这种 DMSO 浓度远远超过了对其他细胞成分有毒的浓度。我们的发现代表了 DMSO-DOPC 相互作用的计算模型,与一系列实验特征一致,为 DMSO 的冷冻保护作用机制提供了新的分子见解。

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