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小两亲性肽:对广泛耐药菌的活性及膜溶解性质的结构见解。

Small Amphiphilic Peptides: Activity Against a Broad Range of Drug-Resistant Bacteria and Structural Insight into Membranolytic Properties.

机构信息

Center for Targeted Drug Delivery, Department of Biomedical and Pharmaceutical Sciences, Chapman University School of Pharmacy, Harry and Diane Rinker Health Science Campus, 9401 Jeronimo Road, Irvine, California 92618, United States.

AJK Biopharmaceutical, 5270 California Avenue, Irvine, California 92617, United States.

出版信息

J Med Chem. 2022 Jan 13;65(1):665-687. doi: 10.1021/acs.jmedchem.1c01782. Epub 2022 Jan 3.

Abstract

We report the synthesis and antibacterial activities of a series of amphiphilic membrane-active peptides composed, in part, of various nongenetically coded hydrophobic amino acids. The lead cyclic peptides, and , showed broad-spectrum activity against drug-resistant Gram-positive (minimum inhibitory concentration (MIC) = 1.5-6.2 μg/mL) and Gram-negative (MIC = 12.5-25 μg/mL) bacteria. The cytotoxicity study showed the predominant lethal action of the peptides against bacteria as compared with mammalian cells. A plasma stability study revealed approximately 2-fold higher stability of lead cyclic peptides as compared to their linear counterparts after 24 h of incubation. A calcein dye leakage experiment revealed the membranolytic effect of the cyclic peptides. Nuclear magnetic resonance spectroscopy and molecular dynamics simulation studies of the interaction of the peptides with the phospholipid bilayer provided a solid structural basis to explain the membranolytic action of the peptides with atomistic details. These results highlight the potential of newly designed amphiphilic peptides as the next generation of peptide-based antibiotics.

摘要

我们报告了一系列部分由各种非遗传编码疏水性氨基酸组成的两亲性膜活性肽的合成和抗菌活性。先导环肽 和 对耐药性革兰氏阳性(最小抑菌浓度(MIC)= 1.5-6.2 μg/mL)和革兰氏阴性(MIC = 12.5-25 μg/mL)细菌具有广谱活性。细胞毒性研究表明,与哺乳动物细胞相比,肽对细菌具有主要的致死作用。血浆稳定性研究表明,与线性对应物相比,先导环肽在孵育 24 小时后具有约 2 倍的更高稳定性。钙黄绿素染料渗漏实验揭示了环肽的膜溶解作用。肽与磷脂双层相互作用的核磁共振波谱和分子动力学模拟研究为肽的膜溶解作用提供了一个坚实的结构基础,详细说明了原子细节。这些结果突出了新设计的两亲性肽作为下一代基于肽的抗生素的潜力。

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