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同时分析圆二色性滴定的二级结构和光散射:在 Vectofusin-1 上的应用。

Simultaneous Analysis of Secondary Structure and Light Scattering from Circular Dichroism Titrations: Application to Vectofusin-1.

机构信息

University of Strasbourg, Institute of Chemistry, CNRS, UMR 7177, Membrane Biophysics and NMR group, 1 rue Blaise Pascal, 67000 Strasbourg, France.

Généthon, INSERM UMR S951, 1 rue de l'Internationale, F-91002 Evry, France.

出版信息

Sci Rep. 2016 Dec 22;6:39450. doi: 10.1038/srep39450.

Abstract

Circular Dichroism data are often decomposed into their constituent spectra to quantify the secondary structure of peptides or proteins but the estimation of the secondary structure content fails when light scattering leads to spectral distortion. If peptide-induced liposome self-association occurs, subtracting control curves cannot correct for this. We show that if the cause of the light scattering is independent from the peptide structural changes, the CD spectra can be corrected using principal component analysis (PCA). The light scattering itself is analysed and found to be in good agreement with backscattering experiments. This method therefore allows to simultaneously follow structural changes related to peptide-liposome binding as well as peptide induced liposome self-association. We apply this method to study the structural changes and liposome binding of vectofusin-1, a transduction enhancing peptide used in lentivirus based gene therapy. Vectofusin-1 binds to POPC/POPS liposomes, causing a reversal of the negative liposome charge at high peptide concentrations. When the peptide charges exactly neutralise the lipid charges on both leaflets reversible liposome self-association occurs. These results are in good agreement with biological observations and provide further insight into the conditions required for efficent transduction enhancement.

摘要

圆二色性数据通常被分解为其组成光谱,以量化肽或蛋白质的二级结构,但当光散射导致光谱变形时,二级结构含量的估计就会失败。如果肽诱导脂质体自组装发生,则减去对照曲线并不能对此进行纠正。我们表明,如果光散射的原因与肽结构变化无关,则可以使用主成分分析(PCA)对 CD 光谱进行校正。对光散射本身进行了分析,发现与背散射实验吻合良好。因此,该方法可以同时跟踪与肽-脂质体结合以及肽诱导脂质体自组装相关的结构变化。我们应用该方法研究了转导增强肽 vectofusin-1 的结构变化和脂质体结合,该肽用于基于慢病毒的基因治疗。Vectofusin-1 与 POPC/POPS 脂质体结合,在高肽浓度下导致脂质体负电荷的反转。当肽电荷正好中和两个叶面上的脂质电荷时,就会发生可逆的脂质体自组装。这些结果与生物学观察结果一致,并进一步深入了解有效转导增强所需的条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e19c/5177910/8578d89df464/srep39450-f1.jpg

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