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多肽二级结构对与带相反电荷的微凝胶相互作用的影响。

Effects of peptide secondary structure on the interaction with oppositely charged microgels.

机构信息

Department of Pharmacy, Uppsala University, Uppsala, Sweden.

出版信息

Biomacromolecules. 2011 Feb 14;12(2):419-24. doi: 10.1021/bm101165e. Epub 2010 Dec 23.

Abstract

The importance of peptide secondary structure on the interaction between antimicrobial peptides and oppositely charged poly(acrylic acid-co-acrylamide) microgels of various charge density was investigated for EFKRIVQRIKDFLRNLV (EFK17). Through D-enantiomer (EFK17-d/a; E(dF)KR(dI)VQR(dI)KD(dF)LRNLV) or tryptophan (EFK17-W/a; EWKRWVQRWKDFLRNLV) substitutions, both conformation-dependent and -independent amphiphilicity of this peptide could be precisely controlled. Peptide secondary structure was investigated by circular dichroism, whereas microgel deswelling and reswelling in response to peptide binding and release were studied by micromanipulator-assisted light and fluorescence microscopy, and peptide uptake in the microgels was determined from solution depletion measurements. Results show that peptide binding to the microgel is highly influenced by peptide secondary structure. EFK17-a, characterized by an idealized helix with all polar/charged amino acids located at one side of the helix, and all nonpolar/hydrophobic residues on the other, displays pronounced α-helix induction on peptide binding to the microgels. EFK17-d/a, on the other hand, displays no such amphiphilic helix induction. Mirroring this, EFK17-a displays substantially higher binding to the microgels than EFK17-d/a as well as much larger peptide-induced microgel deswelling. For EFK17-W/a, both conformation-dependent and -independent amphiphilicity effects were demonstrated. Overall, the results show that peptide conformational aspects need to be considered in peptide/microgel interactions, for example, in the design of microgel carrier systems for peptide drugs.

摘要

研究了抗菌肽 EFKRIVQRIKDFLRNLV(EFK17)与带相反电荷的不同电荷密度的聚(丙烯酸-co-丙烯酰胺)微凝胶之间的相互作用中肽二级结构的重要性。通过 D-对映体(EFK17-d/a;E(dF)KR(dI)VQR(dI)KD(dF)LRNLV)或色氨酸(EFK17-W/a;EWKRWVQRWKDFLRNLV)取代,可以精确控制该肽的构象依赖性和构象非依赖性两亲性。通过圆二色性研究肽的二级结构,而通过微操作器辅助的光和荧光显微镜研究微凝胶的溶胀和再溶胀以及肽的结合和释放,通过溶液耗尽测量确定肽在微凝胶中的摄取。结果表明,肽与微凝胶的结合受肽二级结构的高度影响。以理想的螺旋为特征的 EFK17-a 具有所有极性/带电氨基酸位于螺旋的一侧,所有非极性/疏水性残基位于另一侧,在肽与微凝胶结合时表现出明显的α-螺旋诱导。另一方面,EFK17-d/a 没有表现出这种两亲性螺旋诱导。与此类似,EFK17-a 与 EFK17-d/a 相比,对微凝胶的结合显著更高,并且肽诱导的微凝胶溶胀也更大。对于 EFK17-W/a,均表现出构象依赖性和构象非依赖性两亲性效应。总体而言,结果表明,在肽/微凝胶相互作用中需要考虑肽的构象方面,例如在肽药物的微凝胶载体系统的设计中。

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