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具有优化治疗活性的生物工程牛 Cathelicidin-5 的作用机制和结构基础。

Mechanistic and structural basis of bioengineered bovine Cathelicidin-5 with optimized therapeutic activity.

机构信息

Institute for Protein Research, Osaka University, 3-2 Yamadaoka, Suita, Osaka, 565-0871, Japan.

Immunology Frontier Research Center, Osaka University, 3-1 Yamadaoka, Suita, Osaka, 565-0871, Japan.

出版信息

Sci Rep. 2017 Mar 21;7:44781. doi: 10.1038/srep44781.

Abstract

Peptide-drug discovery using host-defense peptides becomes promising against antibiotic-resistant pathogens and cancer cells. Here, we customized the therapeutic activity of bovine cathelicidin-5 targeting to bacteria, protozoa, and tumor cells. The membrane dependent conformational adaptability and plasticity of cathelicidin-5 is revealed by biophysical analysis and atomistic simulations over 200 μs in thymocytes, leukemia, and E. coli cell-membranes. Our understanding of energy-dependent cathelicidin-5 intrusion in heterogeneous membranes aided in designing novel loss/gain-of-function analogues. In vitro findings identified leucine-zipper to phenylalanine substitution in cathelicidin-5 (1-18) significantly enhance the antimicrobial and anticancer activity with trivial hemolytic activity. Targeted mutants of cathelicidin-5 at kink region and N-terminal truncation revealed loss-of-function. We ensured the existence of a bimodal mechanism of peptide action (membranolytic and non-membranolytic) in vitro. The melanoma mouse model in vivo study further supports the in vitro findings. This is the first structural report on cathelicidin-5 and our findings revealed potent therapeutic application of designed cathelicidin-5 analogues.

摘要

利用宿主防御肽进行肽类药物的发现有望对抗抗生素耐药性病原体和癌细胞。在这里,我们针对细菌、原生动物和肿瘤细胞对牛防御素-5 的治疗活性进行了定制。通过在胸腺细胞、白血病和大肠杆菌细胞膜上进行超过 200μs 的生物物理分析和原子模拟,揭示了防御素-5 的膜依赖性构象适应性和可塑性。我们对能量依赖性防御素-5 在异质膜中的入侵的理解有助于设计新型的功能丧失/获得类似物。体外研究发现,防御素-5(1-18)中的亮氨酸拉链到苯丙氨酸取代显著增强了抗菌和抗癌活性,而溶血活性微不足道。防御素-5 在扭结区域的靶向突变体和 N 端截断显示出功能丧失。我们确保了肽在体外存在双模态作用机制(膜溶解和非膜溶解)。体内黑色素瘤小鼠模型研究进一步支持了体外研究结果。这是关于防御素-5 的第一个结构报告,我们的研究结果揭示了设计的防御素-5 类似物具有强大的治疗应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d66f/5359555/6f3533cb7d7c/srep44781-f1.jpg

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