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强耦合 regime 下的肽 - 微凝胶相互作用

Peptide-microgel interactions in the strong coupling regime.

机构信息

Department of Pharmacy, Uppsala University, P.O. Box 580, SE-751 23 Uppsala, Sweden.

出版信息

J Phys Chem B. 2012 Sep 6;116(35):10964-75. doi: 10.1021/jp306121h. Epub 2012 Aug 27.

DOI:10.1021/jp306121h
PMID:22881998
Abstract

The interaction between lightly cross-linked poly(acrylic acid) microgels and oppositely charged peptides was investigated as a function of peptide length, charge density, pH, and salt concentration, with emphasis on the strong coupling regime at high charge contrast. By micromanipulator-assisted light microscopy, the equilibrium volume response of single microgel particles upon oligolysine and oligo(lysine/alanine) absorption could be monitored in a controlled fashion. Results show that microgel deswelling, caused by peptide binding and network neutralization, increases with peptide length (3 < 5 < 10) and charge density (30% < 50% < 100%). Furthermore, oligomer-induced microgel deswelling was more pronounced at pH 5 than at pH 8, reflecting the lower network charge density in the former case (pK(a) for the isolated acrylic acid ≈4.7). In order to describe these highly coupled systems, a model was developed, in which counterion/peptide-mediated electrostatic attraction between the network chains is described using an exponential force law, and the network elasticity by the inverse Langevin theory. The model was used to calculate the composition of microgels in contact with reservoir solutions of peptides and simple electrolytes. At high electrostatic coupling, the calculated swelling curves were found to display first-order phase transition behavior. The model was demonstrated to capture pH- and electrolyte-dependent microgel swelling, as well as effects of peptide length and charge density on microgel deswelling. The analysis demonstrated that the peptide charge (length), rather than the peptide charge density, determines microgel deswelling. Furthermore, a transition between continuous and discrete network collapse was identified, consistent with experimental results in the present investigations, as well as with results from the literature on microgel deswelling caused by multivalent cations.

摘要

研究了轻度交联的聚丙烯酸微凝胶与带相反电荷的肽之间的相互作用,该相互作用是肽长度、电荷密度、pH值和盐浓度的函数,重点关注高电荷对比度下的强耦合状态。通过微操纵器辅助光学显微镜,可以以可控方式监测单个微凝胶颗粒在吸收寡聚赖氨酸和寡聚(赖氨酸/丙氨酸)时的平衡体积响应。结果表明,由肽结合和网络中和引起的微凝胶溶胀随着肽长度(3<5<10)和电荷密度(30%<50%<100%)的增加而增大。此外,寡聚物诱导的微凝胶溶胀在pH 5时比在pH 8时更明显,这反映了前一种情况下较低的网络电荷密度(孤立丙烯酸的pKa≈4.7)。为了描述这些高度耦合的系统,开发了一个模型,其中使用指数力定律描述网络链之间的反离子/肽介导的静电吸引力,并通过逆朗之万理论描述网络弹性。该模型用于计算与肽和简单电解质的储库溶液接触的微凝胶的组成。在高静电耦合下,发现计算出的溶胀曲线显示出一级相变行为。该模型被证明能够捕捉pH值和电解质依赖性微凝胶溶胀,以及肽长度和电荷密度对微凝胶溶胀的影响。分析表明,决定微凝胶溶胀的是肽电荷(长度),而不是肽电荷密度。此外,还确定了连续和离散网络塌陷之间的转变,这与本研究中的实验结果以及文献中关于多价阳离子引起的微凝胶溶胀的结果一致。

相似文献

1
Peptide-microgel interactions in the strong coupling regime.强耦合 regime 下的肽 - 微凝胶相互作用
J Phys Chem B. 2012 Sep 6;116(35):10964-75. doi: 10.1021/jp306121h. Epub 2012 Aug 27.
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Effect of charge density on the interaction between cationic peptides and oppositely charged microgels.电荷量对阳离子肽与带相反电荷的微凝胶相互作用的影响。
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Visualizing the interaction between poly-L-lysine and poly(acrylic acid) microgels using microscopy techniques: effect of electrostatics and peptide size.使用显微镜技术可视化聚-L-赖氨酸与聚(丙烯酸)微凝胶之间的相互作用:静电作用和肽大小的影响。
Langmuir. 2006 Jun 6;22(12):5476-84. doi: 10.1021/la060452a.
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Interactions between homopolypeptides and lightly cross-linked microgels.同聚多肽与轻度交联微凝胶之间的相互作用。
Langmuir. 2009 Jan 6;25(1):522-8. doi: 10.1021/la8029984.
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Transport of poly-L-lysine into oppositely charged poly(acrylic acid) microgels and its effect on gel deswelling.聚-L-赖氨酸向带相反电荷的聚(丙烯酸)微凝胶中的转运及其对凝胶溶胀的影响。
J Colloid Interface Sci. 2008 Jul 1;323(1):60-9. doi: 10.1016/j.jcis.2008.03.003. Epub 2008 Mar 8.
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Binding and release of consensus peptides by poly(acrylic acid) microgels.聚丙烯酸微凝胶对共有肽的结合与释放
Biomacromolecules. 2009 Aug 10;10(8):2162-8. doi: 10.1021/bm9003354.
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Effect of hydrophobicity on the interaction between antimicrobial peptides and poly(acrylic acid) microgels.疏水性对抗菌肽与聚丙烯酸微凝胶相互作用的影响。
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Interaction between lysozyme and poly(acrylic acid) microgels.溶菌酶与聚丙烯酸微凝胶之间的相互作用。
J Colloid Interface Sci. 2007 Dec 15;316(2):350-9. doi: 10.1016/j.jcis.2007.07.052. Epub 2007 Jul 28.
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Factors affecting enzymatic degradation of microgel-bound peptides.影响微凝胶结合肽酶降解的因素。
Biomacromolecules. 2013 Jul 8;14(7):2317-25. doi: 10.1021/bm400431f. Epub 2013 Jun 17.
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Effects of peptide secondary structure on the interaction with oppositely charged microgels.多肽二级结构对与带相反电荷的微凝胶相互作用的影响。
Biomacromolecules. 2011 Feb 14;12(2):419-24. doi: 10.1021/bm101165e. Epub 2010 Dec 23.

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