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研究假杀菌素 2 类似物的正电性和结构,以提高其对细菌的选择性和抗炎活性。

Investigation of cationicity and structure of pseudin-2 analogues for enhanced bacterial selectivity and anti-inflammatory activity.

机构信息

Department of Bioscience and Biotechnology, Konkuk University, Seoul, 05029, Korea.

Division of Magnetic Resonance, Korea Basic Science Institute, Ochang, 28119, Korea.

出版信息

Sci Rep. 2017 May 3;7(1):1455. doi: 10.1038/s41598-017-01474-0.

Abstract

Pseudin-2 (Ps), isolated from the frog Pseudis paradoxa, exhibits potent antibacterial activity and cytotoxicity. To develop antimicrobial peptides with anti-inflammatory activity and low cytotoxicity, we designed Ps analogues with Lys substitutions, resulting in elevated amphipathic α-helical structure and cationicity. We further substituted Gly with Pro (Ps-P analogues) to increase bacterial cell selectivity. Ps analogues retained antimicrobial activity and exhibited reduced cytotoxicity, whereas Ps-P analogues exhibited lower cytotoxicity and antimicrobial activity. Tertiary structures revealed that Ps has a linear α-helix from Leu to Glu, whereas Ps-P has a bend at Pro between two short α-helixes. Using various biophysical experiments, we found that Ps analogues produced much higher membrane depolarization than Ps-P analogues, whereas Ps-P analogues may penetrate bacterial cell membranes. Ps and its analogue Ps-K18 exhibited potent anti-inflammatory activity in LPS-stimulated RAW264.7 and mouse dendritic cells via a mechanism involving the Toll-like receptor 4 (TLR4) pathway. These activities may arise from their direct inhibition of the formation of TLR4-MD-2_LPS complex, implying that amphipathic α-helical structure with an optimum balance between enhanced cationicity and hydrophobicity may be essential for their anti-inflammatory activity. The bent structure provided by Pro substitution plays an important role in enhancing bacterial cell selectivity and cell penetration.

摘要

从青蛙 Pseudis paradoxa 中分离得到的 Pseudin-2 (Ps) 具有很强的抗菌活性和细胞毒性。为了开发具有抗炎活性和低细胞毒性的抗菌肽,我们设计了具有 Lys 取代的 Ps 类似物,导致其具有更高的两亲性α-螺旋结构和正电性。我们进一步用 Pro 取代 Gly(Ps-P 类似物)以增加对细菌细胞的选择性。Ps 类似物保留了抗菌活性,同时降低了细胞毒性,而 Ps-P 类似物则表现出更低的细胞毒性和抗菌活性。三级结构表明,Ps 从 Leu 到 Glu 具有线性α-螺旋,而 Ps-P 在两个短α-螺旋之间的 Pro 处有弯曲。通过各种生物物理实验,我们发现 Ps 类似物比 Ps-P 类似物产生更高的膜去极化,而 Ps-P 类似物可能穿透细菌细胞膜。Ps 及其类似物 Ps-K18 通过 Toll 样受体 4 (TLR4) 途径,在 LPS 刺激的 RAW264.7 和小鼠树突状细胞中表现出很强的抗炎活性。这些活性可能源于它们直接抑制 TLR4-MD-2_LPS 复合物的形成,这表明增强的正电性和疏水性之间的最佳平衡的两亲性α-螺旋结构对于其抗炎活性是必需的。Pro 取代提供的弯曲结构在增强细菌细胞选择性和细胞穿透性方面发挥着重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab75/5431190/110d675f5861/41598_2017_1474_Fig1_HTML.jpg

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