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天蚕素 L 和 aurein 2.5 具有相同的构象,但膜通透性和抗菌活性略有不同。

Temporin L and aurein 2.5 have identical conformations but subtly distinct membrane and antibacterial activities.

机构信息

Institute of Pharmaceutical Science, School of Cancer & Pharmaceutical Science, King's College London, Franklin-Wilkins Building, 150 Stamford Street, London, SE1 9NH, United Kingdom.

Technology Development Group, National Infection Service, Public Health England, Salisbury, UK.

出版信息

Sci Rep. 2019 Jul 29;9(1):10934. doi: 10.1038/s41598-019-47327-w.

Abstract

Frogs such as Rana temporaria and Litoria aurea secrete numerous closely related antimicrobial peptides (AMPs) as an effective chemical dermal defence. Damage or penetration of the bacterial plasma membrane is considered essential for AMP activity and such properties are commonly ascribed to their ability to form secondary amphipathic, α-helix conformations in membrane mimicking milieu. Nevertheless, despite the high similarity in physical properties and preference for adopting such conformations, the spectrum of activity and potency of AMPs often varies considerably. Hence distinguishing apparently similar AMPs according to their behaviour in, and effects on, model membranes will inform understanding of primary-sequence-specific antimicrobial mechanisms. Here we use a combination of molecular dynamics simulations, circular dichroism and patch-clamp to investigate the basis for differing anti-bacterial activities in representative AMPs from each species; temporin L and aurein 2.5. Despite adopting near identical, α-helix conformations in the steady-state in a variety of membrane models, these two AMPs can be distinguished both in vitro and in silico based on their dynamic interactions with model membranes, notably their differing conformational flexibility at the N-terminus, ability to form higher order aggregates and the characteristics of induced ion conductance. Taken together, these differences provide an explanation of the greater potency and broader antibacterial spectrum of activity of temporin L over aurein 2.5. Consequently, while the secondary amphipathic, α-helix conformation is a key determinant of the ability of a cationic AMP to penetrate and disrupt the bacterial plasma membrane, the exact mechanism, potency and spectrum of activity is determined by precise structural and dynamic contributions from specific residues in each AMP sequence.

摘要

青蛙,如欧林蛙和金色林蛙,分泌许多密切相关的抗菌肽(AMPs)作为有效的化学皮肤防御。细菌质膜的损伤或穿透被认为是 AMP 活性所必需的,这种特性通常归因于它们在模拟膜环境中形成二级两亲性、α-螺旋构象的能力。然而,尽管物理性质和采用这种构象的偏好高度相似,但 AMP 的活性和效力谱通常差异很大。因此,根据其在模型膜中的行为和对模型膜的影响来区分明显相似的 AMP,将有助于了解基于一级序列的抗菌机制。在这里,我们使用分子动力学模拟、圆二色性和膜片钳技术来研究来自每个物种的代表性 AMP(即 temporin L 和 aurein 2.5)的抗菌活性差异的基础。尽管在各种膜模型中处于稳态时采用几乎相同的α-螺旋构象,但这两种 AMP 可以在体外和计算机上根据它们与模型膜的动态相互作用来区分,特别是它们在 N 端的不同构象灵活性、形成更高阶聚集的能力以及诱导离子电导的特征。总之,这些差异解释了 temporin L 比 aurein 2.5 具有更强的效力和更广泛的抗菌活性谱。因此,虽然二级两亲性、α-螺旋构象是阳离子 AMP 穿透和破坏细菌质膜能力的关键决定因素,但确切的机制、效力和活性谱是由每个 AMP 序列中特定残基的精确结构和动态贡献决定的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa44/6662694/2bbed0b0dab5/41598_2019_47327_Fig1_HTML.jpg

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