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弹性蛋白 - b - 胶原蛋白样肽生物偶联物的逆温度转变和自组装的非共价调控

Noncovalent Modulation of the Inverse Temperature Transition and Self-Assembly of Elastin-b-Collagen-like Peptide Bioconjugates.

作者信息

Luo Tianzhi, Kiick Kristi L

机构信息

Department of Materials Science and Engineering, University of Delaware , Newark, Delaware 19716, United States.

Department of Biomedical Engineering, University of Delaware , Newark, Delaware 19716, United States.

出版信息

J Am Chem Soc. 2015 Dec 16;137(49):15362-5. doi: 10.1021/jacs.5b09941. Epub 2015 Dec 3.

Abstract

Stimuli-responsive nanostructures produced with peptide domains from the extracellular matrix offer great opportunities for imaging and drug delivery. Although the individual utility of elastin-like (poly)peptides and collagen-like peptides in such applications has been demonstrated, the synergistic advantages of combining these motifs in short peptide conjugates have surprisingly not been reported. Here, we introduce the conjugation of a thermoresponsive elastin-like peptide (ELP) with a triple-helix-forming collagen-like peptide (CLP) to yield ELP-CLP conjugates that show a remarkable reduction in the inverse transition temperature of the ELP domain upon formation of the CLP triple helix. The lower transition temperature of the conjugate enables the facile formation of well-defined vesicles at physiological temperature and the unexpected resolubilization of the vesicles at elevated temperatures upon unfolding of the CLP domain. Given the demonstrated ability of CLPs to modify collagens, our results not only provide a simple and versatile avenue for controlling the inverse transition behavior of ELPs, but also suggest future opportunities for these thermoresponsive nanostructures in biologically relevant environments.

摘要

利用细胞外基质中的肽结构域制备的刺激响应性纳米结构为成像和药物递送提供了巨大机遇。尽管弹性蛋白样(聚)肽和胶原样肽在这类应用中的各自效用已得到证实,但令人惊讶的是,尚未有关于在短肽缀合物中结合这些基序的协同优势的报道。在此,我们介绍了一种热响应性弹性蛋白样肽(ELP)与形成三螺旋的胶原样肽(CLP)的缀合,以产生ELP-CLP缀合物,该缀合物在CLP三螺旋形成时,ELP结构域的逆转变温度显著降低。缀合物较低的转变温度使得在生理温度下能够轻松形成明确的囊泡,并且在CLP结构域展开时,在升高的温度下囊泡会意外地重新溶解。鉴于CLP具有修饰胶原蛋白的能力,我们的结果不仅为控制ELP的逆转变行为提供了一条简单且通用的途径,还为这些热响应性纳米结构在生物相关环境中的未来应用提供了机遇。

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