Orientation of lipids in solid supported lipid bilayers studied by polarized ATR-FTIR spectroscopy

IF 0.3 Q4 SPECTROSCOPY
C. Scheibe, K. Hauser
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引用次数: 4

Abstract

Solid supported lipid bilayers (SSLB) play an important role as biomimetic membranes to study protein-membrane interactions. We investigated the orientation of lipids in SSLBs at different temperatures and over time. Especially the stability of the lipid bilayer and structural changes upon lipid phase transition were analyzed by polarized ATR-FTIR spectroscopy and with SSLBs of different lipid compositions. The integrity of a lipid bilayer consisting of POPC or a 1:1 mixture of POPC and POPG is conserved over a wide temperature range and over several hours. Furthermore, we were able to monitor changes in the orientation of the lipid alkyl chains upon lipid phase transition for DMPC and DSPC. This study shows that the combination of solid supported lipid bilayers and polarized ATR-FTIR spectroscopy is very powerful to characterize lipid membranes under different environmental conditions. The sensitivity of this technique will be exploited in future studies to analyze the effect of protein-membrane interaction on lipid orientation.
用偏振ATR-FTIR光谱研究固体支持的脂质双层中脂质的取向
固体支持的脂质双层(SSLB)作为仿生膜在研究蛋白质-膜相互作用方面发挥着重要作用。我们研究了不同温度和时间下SSLB中脂质的取向。特别是通过偏振ATR-FTIR光谱和不同脂质组成的SSLB分析了脂质双层的稳定性和脂质相变时的结构变化。由POPC或POPC和POPG的1:1混合物组成的脂质双层的完整性在宽的温度范围内和几个小时内是保守的。此外,我们能够监测DMPC和DSPC在脂质相变时脂质烷基链取向的变化。这项研究表明,固体支持的脂质双层和偏振ATR-FTIR光谱的结合在不同环境条件下对脂质膜的表征是非常强大的。该技术的敏感性将在未来的研究中用于分析蛋白质-膜相互作用对脂质定向的影响。
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期刊介绍: Biomedical Spectroscopy and Imaging (BSI) is a multidisciplinary journal devoted to the timely publication of basic and applied research that uses spectroscopic and imaging techniques in different areas of life science including biology, biochemistry, biotechnology, bionanotechnology, environmental science, food science, pharmaceutical science, physiology and medicine. Scientists are encouraged to submit their work for publication in the form of original articles, brief communications, rapid communications, reviews and mini-reviews. Techniques covered include, but are not limited, to the following: • Vibrational Spectroscopy (Infrared, Raman, Teraherz) • Circular Dichroism Spectroscopy • Magnetic Resonance Spectroscopy (NMR, ESR) • UV-vis Spectroscopy • Mössbauer Spectroscopy • X-ray Spectroscopy (Absorption, Emission, Photoelectron, Fluorescence) • Neutron Spectroscopy • Mass Spectroscopy • Fluorescence Spectroscopy • X-ray and Neutron Scattering • Differential Scanning Calorimetry • Atomic Force Microscopy • Surface Plasmon Resonance • Magnetic Resonance Imaging • X-ray Imaging • Electron Imaging • Neutron Imaging • Raman Imaging • Infrared Imaging • Terahertz Imaging • Fluorescence Imaging • Near-infrared spectroscopy.
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