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Effect of the amino acid composition of cyclic peptides on their self-assembly in lipid bilayers

机译:环肽氨基酸组成对其在脂质双层中自组装的影响

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摘要

The effect of amino acid composition on the formation of transmembrane channels in lipid bilayers upon self-assembly of alt-(L,D)-a-cyclic octapeptides has been investigated. Cyclic peptides comprising D-leucine, alternating with different combinations of L-azidolysine, L-lysine(Alloc), L-lysine and L-trypto-phan were synthesized and the size of pores formed via self-assembly of these molecules in lipid bilayers was elucidated using large unilamellar vesicle fluorescence assays and dynamic light scattering. Pore formation was examined in large unilamellar vesicles made up of egg yolk phosphatidylcholine or Escherichia coli total lipid extract. From these analyses, we have established that cyclic peptides with charged side chains form large pores while those with neutral side chains form unimeric pores. Furthermore, the cyclic peptides that consist of non-symmetric amino acid configurations possess a higher membrane activity than the cyclic peptides with a symmetric amino acid configuration. In addition, we have found that peptide amphiphilicity plays a vital role in selective partitioning between bilayers that consist of egg yolk phosphatidylcholine and those comprised of E. coli total lipid extract. These results suggest that selective transbilayer channel formation via self-assembly may be a viable alternative for many applications that currently use more expensive, multistep synthesis methods.
机译:研究了在alt-(L,D)-α-环八肽自组装过程中氨基酸组成对脂质双层中跨膜通道形成的影响。合成了包含D-亮氨酸的环肽,与L-叠氮赖氨酸,L-赖氨酸(Alloc),L-赖氨酸和L-色氨酸的不同组合交替出现,并通过这些分子在脂质双层中的自组装形成了孔的大小使用大型单层囊泡荧光测定法和动态光散射进行了阐明。检查了由蛋黄磷脂酰胆碱或大肠杆菌总脂质提取物组成的大单层囊泡中的孔形成。从这些分析中,我们已经建立了带有带电荷侧链的环肽形成大孔,而带有中性侧链的环肽形成单孔。此外,由具有非对称氨基酸构型的环肽比具有具有对称氨基酸构型的环肽具有更高的膜活性。另外,我们发现肽两亲性在由蛋黄磷脂酰胆碱组成的双层和由大肠杆菌总脂质提取物组成的双层之间的选择性分配中起着至关重要的作用。这些结果表明,对于目前使用更昂贵的多步合成方法的许多应用,通过自组装形成选择性跨双层通道可能是可行的选择。

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  • 来源
    《Organic & biomolecular chemistry》 |2015年第8期|2464-2473|共10页
  • 作者单位

    Key Centre for Polymers & Colloids, The University of Sydney, School of Chemistry, Building F11, Sydney NSW 2006, Australia;

    Key Centre for Polymers & Colloids, The University of Sydney, School of Chemistry, Building F11, Sydney NSW 2006, Australia;

    The University of Sydney, School of Chemistry, Building F11, Sydney NSW 2006, Australia;

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