Hong Yooseong, Pritzker Mark D, Legge Raymond L, Chen P
Department of Chemical Engineering, University of Waterloo, 200 University Ave. W., Waterloo, Ontario, Canada N2L 3G1.
Colloids Surf B Biointerfaces. 2005 Dec 20;46(3):152-61. doi: 10.1016/j.colsurfb.2005.11.004.
Previous work has examined the effects of such factors as pH and peptide concentration on the self-assembly of ionic-complementary peptides. This work focused on the effect of sodium chloride on the molecular self-assembly of an ionic-complementary peptide EAK16-II (AEAEAKAKAEAEAKAK). Surface tensions and dimensions of the self-assembled nanostructures were determined for a wide range of peptide and sodium chloride concentrations using axisymmetric drop shape analysis-profile (ADSA-P) and atomic force microscopy (AFM), respectively. The critical aggregation concentration, or critical self-assembly concentration (CSAC), of EAK16-II was not significantly affected by the presence of NaCl. However, the analysis of size variations in self-assembled nanostructures in response to changes in NaCl concentration indicated that the presence of NaCl does influence the resulting dimensions of the peptide nanostructures when the peptide concentration is below its CSAC. A critical NaCl concentration was identified at approximately 20mM, below which the equivalent radius of the peptide fibrils increased with increasing salt concentration, and above which the opposite response was observed. This critical NaCl concentration was further confirmed in the surface tension measurements, where the equilibrium surface tension and induction time of the peptide at low concentrations (<CSAC) decreased with increasing NaCl concentration up to approximately 20mM and a further increase caused the opposite trend.
先前的研究探讨了诸如pH值和肽浓度等因素对离子互补肽自组装的影响。这项工作聚焦于氯化钠对离子互补肽EAK16-II(AEAEAKAKAEAEAKAK)分子自组装的影响。分别使用轴对称滴形分析轮廓法(ADSA-P)和原子力显微镜(AFM),针对广泛的肽浓度和氯化钠浓度范围,测定了自组装纳米结构的表面张力和尺寸。EAK16-II的临界聚集浓度或临界自组装浓度(CSAC)不受NaCl存在的显著影响。然而,对自组装纳米结构尺寸变化随NaCl浓度变化的分析表明,当肽浓度低于其CSAC时,NaCl的存在确实会影响所得肽纳米结构的尺寸。确定了一个约为20mM的临界NaCl浓度,低于该浓度时,肽纤维的等效半径随盐浓度增加而增大,高于该浓度时则观察到相反的响应。在表面张力测量中进一步证实了这一临界NaCl浓度,在低浓度(<CSAC)下,肽的平衡表面张力和诱导时间随NaCl浓度增加而降低,直至约20mM,进一步增加则导致相反趋势。