Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, St. Lucia QLD 4072, Australia.
Langmuir. 2010 Dec 7;26(23):17997-8007. doi: 10.1021/la103471j. Epub 2010 Nov 8.
The structural and surfactant properties of a series of amphipathic β-strand peptides have been studied as a function of pH. Each nine-residue peptide has a framework of hydrophobic proline and phenylalanine amino acid residues, alternating with acidic or basic amino acids to give a sequence closely related to known β-sheet formers. Surface activity, interfacial mechanical properties, electronic circular dichroism (ECD), droplet sizing and zeta potential measurements were used to gain an overview of the peptide behavior as the molecular charge varied from ±4 to 0 with pH. ECD data suggest that the peptides form polyproline-type helices in bulk aqueous solution when highly charged, but may fold to β-hairpins rather than β-sheets when uncharged. In the uncharged state, the peptides adsorb readily at a macroscopic fluid interface to form mechanically strong interfacial films, but tend to give large droplet sizes on emulsification, apparently due to flocculation at a low droplet zeta potential. In contrast, highly charged peptide states gave a low interfacial coverage, but retained good emulsifying activity as judged by droplet size. Best emulsification was generally seen for intermediate charged states of the peptides, possibly representing a compromise between droplet zeta potential and interfacial binding affinity. The emulsifying properties of β-strand peptides have not been previously reported. Understanding the interfacial properties of such peptides is important to their potential development as biosurfactants.
已研究了一系列两亲性β-折叠肽作为 pH 函数的结构和表面活性剂性质。每个九残基肽都有疏水性脯氨酸和苯丙氨酸氨基酸残基的框架,与酸性或碱性氨基酸交替排列,使其序列与已知的β-折叠形成者密切相关。表面活性、界面力学性质、电子圆二色性 (ECD)、液滴尺寸和 ζ 电位测量用于全面了解肽的行为,因为分子电荷随 pH 从 ±4 变为 0 而变化。ECD 数据表明,当肽带高电荷时,在大量水溶液中形成聚脯氨酸型螺旋,但在不带电荷时可能折叠成 β-发夹而不是 β-折叠。在不带电荷的状态下,肽容易在宏观流体界面上吸附形成机械强度高的界面膜,但在乳化时倾向于产生较大的液滴尺寸,显然是由于低液滴 ζ 电位下的絮凝。相比之下,带高电荷的肽状态给出了低的界面覆盖,但乳化活性良好,根据液滴尺寸判断。肽的中间带电状态通常表现出最佳的乳化效果,这可能代表了液滴 ζ 电位和界面结合亲和力之间的折衷。β-折叠肽的乳化性质以前没有报道过。了解此类肽的界面性质对于它们作为生物表面活性剂的潜在开发非常重要。