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首页> 外文期刊>RSC Advances >Elucidating the mechanism of peptide interaction with membranes using the intrinsic fluorescence of tryptophan: perpendicular penetration of cecropin B-like peptides into Pseudomonas aeruginosa
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Elucidating the mechanism of peptide interaction with membranes using the intrinsic fluorescence of tryptophan: perpendicular penetration of cecropin B-like peptides into Pseudomonas aeruginosa

机译:使用色氨酸的内在荧光阐明肽与膜的相互作用机制:天蚕素B样肽垂直渗透到铜绿假单胞菌中

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The importance of small molecular weight antimicrobial peptides as novel therapeutic agents stems from their ability to act against bacteria, viruses, and fungi. As part of the innate immune system, they are also capable of killing cancerous cells. Herein, we study the interaction between a synthetic cecropin B peptide and a target Pseudomonas aeruginosa (PA) membrane using steady-state and time-resolved fluorescence measurements in order to elucidate the mechanism of membrane rupture. The importance of synthetic cecropin B as a therapeutic peptide stems from its effect against a wide range of bacteria which is indistinguishable from that of naturally occuring cecropins. Fluorescence of cecropin B results from the sole tryptophan residue in the peptide. In order to understand the mechansim of peptide-membrane binding, we modified the original peptide (cecropin B1: KWKVFKKIEKMGRNIRNGIV) by attaching a terminal tryptophan residue (cecropin B2: KWKVFKKIEKMGRNIRNGIVW). Both peptides show a large inhibition effect against a wide range of bacteria, compared to naturally occurring peptides. The fluorescence results show an enhancement in the peak intensity of cecropin B1 upon mixing with the membrane, accompanied by a blue shift. For cecropin B2, a blue shift was observed upon mixing with the PA membrane, but no enhancement in intensity was observed. The results indicate perpendicular penetration of cecropins B1 and B2 from the Lys side where the Trp residue of cecropin B1 is immersed in the PA membrane. Partial quenching of the Trp fluorescence by acrylamide was observed and the values of the Stern-Volmer constants (K-sv) indicate that the Trp molecule penetrates into the membrane, but resides close to the interface region. Two fluorescence lifetimes were measured for the cecropin B1-PA complex which are for two rotamers of Trp. The results point to a degree of flexibility of the local environment around the Trp molecule. A mechanism of membrane disruption is proposed in which the cecropin peptide creates cracks through the negatively charged outer membrane of PA.
机译:小分子量抗菌肽作为新型治疗剂的重要性源于其对抗细菌,病毒和真菌的能力。作为先天免疫系统的一部分,它们还能够杀死癌细胞。在本文中,我们使用稳态和时间分辨荧光测量研究了合成的天蚕素B肽与靶铜绿假单胞菌(PA)膜之间的相互作用,以阐明膜破裂的机制。合成天蚕素B作为治疗性肽的重要性源于其对多种细菌的作用,而这种细菌与天然存在的天蚕素没有区别。 cecropin B的荧光来自肽中唯一的色氨酸残基。为了了解肽膜结合的机理,我们通过连接末端色氨酸残基(cecropin B2:KWKVFKKIEKMGRNIRNGIVW)来修饰原始肽(cecropin B1:KWKVFKKIEKMGRNIRNGIVW)。与天然存在的肽相比,这两种肽对多种细菌均显示出很大的抑制作用。荧光结果显示,与膜混合后,天蚕素B1的峰强度增强,并伴有蓝移。对于天蚕素B2,在与PA膜混合时观察到蓝移,但是没有观察到强度增强。结果表明,天蚕素B1和B2从Lys侧垂直渗透,其中天蚕素B1的Trp残基浸在PA膜中。观察到丙烯酰胺使Trp荧光部分淬灭,并且Stern-Volmer常数(K-sv)的值表明Trp分子渗透到膜中,但位于界面区域附近。对于天蚕素B1-PA复合物,测量了两个荧光寿命,对于两个Trp旋转异构体。结果表明Trp分子周围的局部环境具有一定程度的灵活性。提出了膜破坏的机制,其中天蚕素肽通过PA带负电的外膜产生裂缝。

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