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短 α-螺旋肽的抗癌作用及细胞选择性的分子机制。

Molecular mechanisms of anticancer action and cell selectivity of short α-helical peptides.

机构信息

Centre for Bioengineering and Biotechnology, China University of Petroleum (East China), 66 Changjiang West Road, Qingdao 266580, China.

Biological Physics Laboratory, School of Physics and Astronomy, University of Manchester, Schuster Building, Manchester M13 9PL, UK.

出版信息

Biomaterials. 2014 Feb;35(5):1552-61. doi: 10.1016/j.biomaterials.2013.10.082. Epub 2013 Nov 15.

Abstract

Development of functional biomaterials and drugs with good biocompatibility towards host cells but with high potency against cancer cells is a challenging endeavor. By drawing upon the advantageous features of natural antimicrobial peptides and α-helical proteins, we have designed a new class of short α-helical peptides G(IIKK)(n)I-NH2 (n = 1-4) with different potency and high selectivity against cancer cells. We show that the peptides with n = 3 and 4 kill cancer cells effectively whilst remaining benign to the host cells at their working concentrations, through mechanistic processes similar to their bactericidal effects. The high cell selectivity could stem from their preferential binding to the outer cell membranes containing negative charges and high fluidity. In addition to rapid membrane-permeabilizing capacities, the peptides can also induce the programmed cell death of cancer cells via both mitochondrial pathway and death receptor pathway, without inducing non-specific immunogenic responses. Importantly, these peptides can also inhibit tumor growth in a mouse xenograft model without eliciting side effects. Whilst this study reveals the clinical potential of these peptides as potent drugs and for other medical and healthcare applications, it also points to the significance of fundamental material research in the future development of highly selective peptide functional materials.

摘要

开发对宿主细胞具有良好生物相容性但对癌细胞具有高效力的功能性生物材料和药物是一项具有挑战性的工作。通过借鉴天然抗菌肽和α-螺旋蛋白的优势特性,我们设计了一类新型短α-螺旋肽 G(IIKK)(n)I-NH2(n = 1-4),其对癌细胞具有不同的效力和高选择性。我们表明,n = 3 和 4 的肽通过类似于其杀菌作用的机制,在其工作浓度下有效地杀死癌细胞,而对宿主细胞保持良性。高细胞选择性可能源于它们优先与含有负电荷和高流动性的外细胞膜结合。除了快速的膜透化能力外,这些肽还可以通过线粒体途径和死亡受体途径诱导癌细胞的程序性细胞死亡,而不会引起非特异性免疫反应。重要的是,这些肽还可以在小鼠异种移植模型中抑制肿瘤生长而没有副作用。虽然这项研究揭示了这些肽作为有效药物以及其他医疗和保健应用的临床潜力,但它也指出了未来高度选择性肽功能材料的基础材料研究的重要性。

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