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离子强度对溶血肽蜂毒肽在溶液中的折叠和聚集的影响。

Effect of ionic strength on folding and aggregation of the hemolytic peptide melittin in solution.

作者信息

Raghuraman H, Chattopadhyay Amitabha

机构信息

Centre for Cellular and Molecular Biology, Uppal Road, Hyderabad 500 007, India.

出版信息

Biopolymers. 2006 Oct 5;83(2):111-21. doi: 10.1002/bip.20536.

Abstract

Melittin is a cationic, amphipathic, hemolytic peptide composed of 26 amino acid residues. It is intrinsically fluorescent due to the presence of a single tryptophan residue, which has been shown to be crucial for its hemolytic activity. It undergoes a structural transition from a random coil monomer to an alpha-helical tetramer at high ionic strength. Although the aggregation behavior of melittin in solution is well characterized, dynamic information associated with the aggregation of melittin is lacking. In this paper, we have monitored the effect of ionic strength on the dynamics and aggregation behavior of melittin in aqueous solution by utilizing sensitive fluorescence approaches, which include the red edge excitation shift (REES) approach. Importantly, we demonstrate that REES is sensitive to the self-association of melittin induced by ionic strength. The change in environment experienced by melittin tryptophan(s) is supported by changes in fluorescence emission maximum, polarization, and lifetime. In addition, the accessibility of the tryptophan residue was probed by fluorescence quenching experiments using acrylamide and trichloroethanol as soluble and hydrophobic quenchers, respectively. Circular dichroism studies confirm the ionic strength-induced change in the secondary structure of melittin. Taken together, these results constitute the first report showing that REES could be used as a sensitive tool to monitor the aggregation behavior of melittin in particular and other proteins and peptides in general.

摘要

蜂毒肽是一种由26个氨基酸残基组成的阳离子型、两亲性、溶血肽。由于存在单个色氨酸残基,它具有内在荧光,该色氨酸残基已被证明对其溶血活性至关重要。在高离子强度下,它会经历从无规卷曲单体到α-螺旋四聚体的结构转变。尽管蜂毒肽在溶液中的聚集行为已得到充分表征,但缺乏与蜂毒肽聚集相关的动力学信息。在本文中,我们利用包括红边激发位移(REES)方法在内的灵敏荧光方法,监测了离子强度对蜂毒肽在水溶液中的动力学和聚集行为的影响。重要的是,我们证明REES对离子强度诱导的蜂毒肽自缔合敏感。蜂毒肽色氨酸所经历的环境变化得到了荧光发射最大值、偏振和寿命变化的支持。此外,分别使用丙烯酰胺和三氯乙醇作为可溶性和疏水性猝灭剂,通过荧光猝灭实验探测了色氨酸残基的可及性。圆二色性研究证实了离子强度诱导的蜂毒肽二级结构变化。综上所述,这些结果构成了第一份报告,表明REES可作为一种灵敏工具,用于监测蜂毒肽以及一般其他蛋白质和肽的聚集行为。

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