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首页> 外文期刊>ACS nano >Unveiling the Molecular Structure of Pulmonary Surfactant Corona on Nanoparticles
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Unveiling the Molecular Structure of Pulmonary Surfactant Corona on Nanoparticles

机译:揭示纳米颗粒上肺表面活性剂Corona的分子结构

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The growing risk of human exposure to airborne nanoparticles (NPs) causes a general concern on the biosafety of nanotechnology. Inhaled NPs can deposit in the deep lung at which they interact with the pulmonary surfactant (PS). Despite the increasing study of nano-bio interactions, detailed molecular mechanisms by which inhaled NPs interact with the natural PS system remain unclear. Using coarse-grained molecular dynamics simulation, we studied the interaction between NPs and the PS system in the alveolar fluid. It was found that regardless of different physicochemical properties, upon contacting the PS, both silver and polystyrene NPs are immediately coated with a biomolecular corona that consists of both lipids and proteins. Structure and molecular conformation of the PS corona depend on the hydrophobicity of the pristine NPs. Quantitative analysis revealed that lipid composition of the corona formed on different NPs is relatively conserved and is similar to that of the bulk phase PS. However, relative abundance of the surfactant-associated proteins, SP-A, SP-B, and SP-C, is notably affected by the hydrophobicity of the NP. The PS corona provides the NPs with a physicochemical barrier against the environment, equalizes the hydrophobicity of the pristine NPs, and may enhance biorecognition of the NPs. These modifications in physicochemical properties may play a crucial role in affecting the biological identity of the NPs and hence alter their subsequent interactions with cells and other biological entities. Our results suggest that all studies of inhalation nanotoxicology or NP-based pulmonary drug delivery should consider the influence of the PS corona.
机译:人类暴露于空中纳米颗粒(NPS)的风险越来越危及对纳米技术生物安全的一般担忧。吸入的NPS可以在它们与肺表面活性剂(PS)相互作用的深肺中沉积。尽管纳米生物相互作用的研究日益越来越多,但吸入的NP与天然PS系统相互作用的详细分子机制仍不清楚。使用粗粒化分子动力学模拟,我们研究了NPS与肺泡液中PS系统之间的相互作用。发现无论在接触PS后,无论不同的物理化学性质如何,都会立即涂有银色和聚苯乙烯NPS,其由脂质和蛋白质组成的生物分子珊瑚。 PS电晕的结构和分子构象取决于原始NPS的疏水性。定量分析显示,在不同NPS上形成的电晕的脂质组合物相对节省,并且类似于体相Ps的电晕。然而,表面活性剂相关蛋白质,SP-A,SP-B和SP-C的相对丰度被NP的疏水性的显着影响。 PS电晕为NPS提供了对环境的物理化学屏障,均衡原始NP的疏水性,并且可以增强NPS的生物释认。这些在物理化学性质中的这些修饰可能在影响NPS的生物学性方面发挥至关重要的作用,因此改变其随后与细胞和其他生物实体的相互作用。我们的研究结果表明,所有对吸入纳米毒理学或基于NP的肺药递送的研究都应考虑PS电晕的影响。

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