疏水蛋白在调节肺表面活性物质膜力学性能中的作用。

IF 3.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Chemistry and Physics of Lipids Pub Date : 2024-12-21 DOI:10.1016/j.chemphyslip.2024.105464
Ainhoa Collada , Johann Mertens , Emma Batllori-Badia , Alberto Galindo , Antonio Cruz , Jesús Pérez-Gil
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引用次数: 0

摘要

肺表面活性物质是一种膜状复合体,使呼吸表面的呼吸动力学成为可能。由于脂质和蛋白质的独特混合物,在过期时达到极低的表面张力值。特别是疏水表面活性剂蛋白,特别是SP-B蛋白,对于表面活性剂的生物物理功能至关重要,以提供表面活性剂脂质基质形成膜状多层界面膜的能力,保持最佳的机械性能。为了分析蛋白质在调节表面活性剂膜基结构对机械力的抵抗力方面的贡献,本文使用了支撑脂质双层的原子力显微镜来确定定量力学参数,以确定蛋白质SP-B和/或SP-C对磷脂膜的影响,旨在模拟至少部分整合到肺表面活性剂复合物中的结构。结果表明,蛋白质在膜厚度、横向堆积和弹性方面存在明显差异,为蛋白质促进表面活性剂膜力学性能的调节提供了证据。这些影响与两种相关天然物质的行为一致:从猪支气管肺泡灌洗液中分离的整个肺表面活性剂和从羊水中分离的新鲜生产的人肺表面活性剂,在呼吸气液界面建立之前从胎儿肺部转移。
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Effect of hydrophobic proteins in modulating the mechanical properties of lung surfactant membranes
Pulmonary surfactant is a membranous complex that enables breathing dynamics at the respiratory surface. Extremely low values of surface tension are achieved at end-expiration thanks to a unique mixture of lipids and proteins. In particular, the hydrophobic surfactant proteins, specially the protein SP-B, are crucial for surfactant biophysical function, in order to provide the surfactant lipid matrix with the ability to form membranous multi-layered interfacial films that sustain optimal mechanical properties. To analyse the contribution of the proteins to modulate the resistance to mechanical forces of surfactant membrane-based structures, atomic force microscopy of supported lipid bilayers has been used here to determine quantitative mechanical parameters defining the effect of the presence of proteins SP-B and/or SP-C on phospholipid membranes intended to model at least part of the structures integrated into pulmonary surfactant complexes. The results show clear differences introduced by proteins in membrane thickness, lateral packing and elasticity, providing evidence supporting protein-promoted modulating of the mechanical properties of surfactant membranes. These effects are found consistent with the behaviour of two relevant native materials: whole pulmonary surfactant isolated from porcine bronchoalveolar lavages and freshly produced human pulmonary surfactant isolated from amniotic fluid, where it is transferred from the foetal lung before the respiratory air-liquid interface has been established.
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来源期刊
Chemistry and Physics of Lipids
Chemistry and Physics of Lipids 生物-生化与分子生物学
CiteScore
7.60
自引率
2.90%
发文量
50
审稿时长
40 days
期刊介绍: Chemistry and Physics of Lipids publishes research papers and review articles on chemical and physical aspects of lipids with primary emphasis on the relationship of these properties to biological functions and to biomedical applications. Accordingly, the journal covers: advances in synthetic and analytical lipid methodology; mass-spectrometry of lipids; chemical and physical characterisation of isolated structures; thermodynamics, phase behaviour, topology and dynamics of lipid assemblies; physicochemical studies into lipid-lipid and lipid-protein interactions in lipoproteins and in natural and model membranes; movement of lipids within, across and between membranes; intracellular lipid transfer; structure-function relationships and the nature of lipid-derived second messengers; chemical, physical and functional alterations of lipids induced by free radicals; enzymatic and non-enzymatic mechanisms of lipid peroxidation in cells, tissues, biofluids; oxidative lipidomics; and the role of lipids in the regulation of membrane-dependent biological processes.
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