School of Life Sciences, University of Technology, Sydney 81 Broadway, Ultimo NSW 2007, Australia.
School of Mechanical and Mechatronic Engineering, University of Technology, Sydney 81 Broadway, Ultimo NSW 2007, Australia.
J R Soc Interface. 2021 Oct;18(183):20210402. doi: 10.1098/rsif.2021.0402. Epub 2021 Oct 13.
The lung surfactant monolayer (LSM) forms the main biological barrier for any inhaled particles to enter our bloodstream, including gold nanoparticles (AuNPs) present as air pollutants and under investigation for use in biomedical applications. Understanding the interaction of AuNPs with lung surfactant can assist in understanding how AuNPs enter our lungs. In this study, we use coarse-grained molecular dynamics simulations to investigate the effect of four different shape D AuNPs (spherical, box, icosahedron and rod) on the structure and dynamics of a model LSM, with a particular focus on differences resulting from the shape of the AuNP. Monolayer-AuNP systems were simulated in two different states: the compressed state and the expanded state, representing inhalation and exhalation conditions, respectively. Our results indicate that the compressed state is more affected by the presence of the AuNPs than the expanded state. Our results show that in the compressed state, the AuNPs prevent the monolayer from reaching the close to zero surface tension required for normal exhalation. In the compressed state, all four nanoparticles (NPs) reduce the lipid order parameters and cause a thinning of the monolayer where the particles drag surfactant molecules into the water phase. Comparing the different properties shows no trend concerning which shape has the biggest effect on the monolayer, as shape-dependent effects vary among the different properties. Insights from this study might assist future work of how AuNP shapes affect the LSM during inhalation or exhalation conditions.
肺表面活性剂单层(LSM)形成了任何吸入颗粒进入我们血流的主要生物屏障,包括作为空气污染物存在的金纳米颗粒(AuNPs),并正在研究其在生物医学应用中的用途。了解 AuNPs 与肺表面活性剂的相互作用有助于了解 AuNPs 如何进入我们的肺部。在这项研究中,我们使用粗粒分子动力学模拟来研究四种不同形状的 D AuNPs(球形、盒形、二十面体和棒形)对模型 LSM 结构和动力学的影响,特别关注 AuNP 形状带来的差异。在两种不同状态下模拟了单层-AuNP 系统:压缩状态和扩展状态,分别代表吸气和呼气条件。我们的结果表明,压缩状态比扩展状态受 AuNPs 的影响更大。我们的结果表明,在压缩状态下,AuNPs 阻止了单层达到正常呼气所需的接近零表面张力。在压缩状态下,所有四种纳米颗粒(NPs)都降低了脂质有序参数,并使单层变薄,其中颗粒将表面活性剂分子拖入水相。比较不同的性质表明,哪种形状对单层的影响最大没有趋势,因为形状依赖性的影响因不同的性质而异。这项研究的见解可能有助于未来研究 AuNP 形状如何在吸气或呼气条件下影响 LSM。