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富含组氨酸的两亲性阳离子肽中抗菌、抗疟活性及选择性的结构决定因素

Structural determinants of antimicrobial and antiplasmodial activity and selectivity in histidine-rich amphipathic cationic peptides.

作者信息

Mason A James, Moussaoui Wardi, Abdelrahman Tamer, Boukhari Alyae, Bertani Philippe, Marquette Arnaud, Shooshtarizaheh Peiman, Moulay Gilles, Boehm Nelly, Guerold Bernard, Sawers Ruairidh J H, Kichler Antoine, Metz-Boutigue Marie-Háléne, Candolfi Ermanno, Právost Gilles, Bechinger Burkhard

机构信息

Universitá Louis Pasteur/CNRS, UMR7177, Institut de Chimie, 4 Rue Blaise Pascal, F-67070 Strasbourg, France, the UPRES EA-3432 Institut de Bactáriologie, Universitá Louis Pasteur-Hôpitaux Universitaires de Strasbourg, 3 Rue Koeberlá F-67000 Strasbourg, France, the UPRES EA-3950 Institut de Parasitologie et de Pathologie Tropicale de la FacultádeMádecine, Universitá Louis Pasteur, 3 Rue Koeberlá F-67000 Strasbourg, France, INSERM Unitá 575, Physiopathologie du Systéme Nerveux, 5 Rue Blaise Pascal, F-67084 Strasbourg, France, CNRS FRE 3087-Gánáthon, 1 Rue de l'Internationale, F-91002, Evry, France, INSERM Unitá 666 and Service Central de Microscopie Electronique, Universitá Louis Pasteur, 11 Rue Humann, F-67085 Strasbourg, France, and the Department of Plant Molecular Biology, University of Lausanne, Biophore Building, CH-1015 Lausanne, Switzerland.

Universitá Louis Pasteur/CNRS, UMR7177, Institut de Chimie, 4 Rue Blaise Pascal, F-67070 Strasbourg, France, the UPRES EA-3432 Institut de Bactáriologie, Universitá Louis Pasteur-Hôpitaux Universitaires de Strasbourg, 3 Rue Koeberlá F-67000 Strasbourg, France, the UPRES EA-3950 Institut de Parasitologie et de Pathologie Tropicale de la FacultádeMádecine, Universitá Louis Pasteur, 3 Rue Koeberlá F-67000 Strasbourg, France, INSERM Unitá 575, Physiopathologie du Systéme Nerveux, 5 Rue Blaise Pascal, F-67084 Strasbourg, France, CNRS FRE 3087-Gánáthon, 1 Rue de l'Internationale, F-91002, Evry, France, INSERM Unitá 666 and Service Central de Microscopie Electronique, Universitá Louis Pasteur, 11 Rue Humann, F-67085 Strasbourg, France, and the Department of Plant Molecular Biology, University of Lausanne, Biophore Building, CH-1015 Lausanne, Switzerland.

出版信息

J Biol Chem. 2009 Jan 2;284(1):119-133. doi: 10.1074/jbc.M806201200. Epub 2008 Nov 4.

Abstract

Designed histidine-rich amphipathic cationic peptides, such as LAH4, have enhanced membrane disruption and antibiotic properties when the peptide adopts an alignment parallel to the membrane surface. Although this was previously achieved by lowering the pH, here we have designed a new generation of histidine-rich peptides that adopt a surface alignment at neutral pH. In vitro, this new generation of peptides are powerful antibiotics in terms of the concentrations required for antibiotic activity; the spectrum of target bacteria, fungi, and parasites; and the speed with which they kill. Further modifications to the peptides, including the addition of more hydrophobic residues at the N terminus, the inclusion of a helix-breaking proline residue or using D-amino acids as building blocks, modulated the biophysical properties of the peptides and led to substantial changes in toxicity to human and parasite cells but had only a minimal effect on the antibacterial and antifungal activity. Using a range of biophysical methods, in particular solid-state NMR, we show that the peptides are highly efficient at disrupting the anionic lipid component of model membranes. However, we also show that effective pore formation in such model membranes may be related to, but is not essential for, high antimicrobial activity by cationic amphipathic helical peptides. The information in this study comprises a new layer of detail in the understanding of the action of cationic helical antimicrobial peptides and shows that rational design is capable of producing potentially therapeutic membrane active peptides with properties tailored to their function.

摘要

设计的富含组氨酸的两亲性阳离子肽,如LAH4,当肽与膜表面平行排列时,其膜破坏和抗菌特性会增强。尽管此前是通过降低pH值来实现这一点,但在此我们设计了新一代富含组氨酸的肽,它们在中性pH值下能实现表面排列。在体外,就抗生素活性所需浓度、靶细菌、真菌和寄生虫的范围以及它们的杀灭速度而言,这新一代肽都是强大的抗生素。对这些肽的进一步修饰,包括在N端添加更多疏水残基、加入一个破坏螺旋的脯氨酸残基或使用D-氨基酸作为构建单元,调节了肽的生物物理性质,并导致对人类和寄生虫细胞毒性的显著变化,但对抗菌和抗真菌活性的影响极小。使用一系列生物物理方法,特别是固态核磁共振,我们表明这些肽在破坏模型膜的阴离子脂质成分方面非常高效。然而,我们也表明,在这种模型膜中有效形成孔道可能与阳离子两亲性螺旋肽的高抗菌活性有关,但并非其高抗菌活性所必需。本研究中的信息为理解阳离子螺旋抗菌肽的作用提供了新的详细层面,并表明合理设计能够产生具有与其功能相匹配特性的潜在治疗性膜活性肽。

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