脂质过氧化
脂质双层
生物物理学
活性氧
双层
膜流动性
氧化应激
化学
透氧性
磁导率
膜
氧气
脂质双层相行为
神经酰胺
生物化学
膜脂
材料科学
生物
有机化学
细胞凋亡
作者
Dharmendra Kumar Yadav,Surendra Kumar,Eun–Ha Choi,Sandeep Chaudhary,Mi‐Hyun Kim
标识
DOI:10.1038/s41598-019-40913-y
摘要
Abstract Lipid peroxidation by reactive oxygen species (ROS) during oxidative stress is non-enzymatic damage that affects the integrity of biological membrane, and alters the fluidity and permeability. We conducted molecular dynamic simulation studies to evaluate the structural properties of the bilayer after lipid peroxidation and to measure the permeability of distinct ROS. The oxidized membrane contains free fatty acid, ceramide, cholesterol, and 5α-hydroperoxycholesterol (5α-CH). The result of unconstrained molecular dynamic simulations revealed that lipid peroxidation causes area-per-lipid of the bilayer to increase and bilayer thickness to decrease. The simulations also revealed that the oxidized group of 5α-CH (-OOH) moves towards the aqueous layer and its backbone tilts causing lateral expansion of the bilayer membrane. These changes are detrimental to structural and functional properties of the membrane. The measured free energy profile for different ROS (H 2 O 2 , HO 2 , HO, and O 2 ) across the peroxidized lipid bilayer showed that the increase in lipid peroxidation resulted in breaching barrier decrease for all species, allowing easy traversal of the membrane. Thus, lipid peroxidation perturbs the membrane barrier and imposes oxidative stress resulting into apoptosis. The collective insights increase the understanding of oxidation stress at the atomic level.
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