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Utilizing ESEEM Spectroscopy to Locate the Position of Specific Regions of Membrane-Active Peptides within Model Membranes

机译:利用ESEEM光谱法定位模型膜中膜活性肽特定区域的位置

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摘要

Membrane-active peptides participate in many cellular processes, and therefore knowledge of their mode of interaction with phospholipids is essential for understanding their biological function. Here we present a new methodology based on electron spin-echo envelope modulation to probe, at a relatively high resolution, the location of membrane-bound lytic peptides and to study their effect on the water concentration profile of the membrane. As a first example, we determined the location of the N-terminus of two membrane-active amphipathic peptides, the 26-mer bee venom melittin and a de novo designed 15-mer D,L-amino acid amphipathic peptide (5D-L9K6C), both of which are antimicrobial and bind and act similarly on negatively charged membranes. A nitroxide spin label was introduced to the N-terminus of the peptides and measurements were performed either in H2O solutions with deuterated model membranes or in D2O solutions with nondeuterated model membranes. The lipids used were dipalmitoyl phosphatidylcholine (DPPC) and phosphatidylglycerol (PG), (DPPC/PG (7:3 w/w)), egg phosphatidylcholine (PC) and PG (PC/PG (7:3 w/w)), and phosphatidylethanolamine (PE) and PG (PE/PG, 7:3w/w). The modulation induced by the 2H nuclei was determined and compared with a series of controls that produced a reference “ruler”. Actual estimated distances were obtained from a quantitative analysis of the modulation depth based on a simple model of an electron spin situated at a certain distance from the bottom of a layer with homogeneously distributed deuterium nuclei. The N-terminus of both peptides was found to be in the solvent layer in both the DPPC/PG and PC/PG membranes. For PE/PG, a further displacement into the solvent was observed. The addition of the peptides was found to change the water distribution in the membrane, making it “flatter” and increasing the penetration depth into the hydrophobic region.
机译:膜活性肽参与许多细胞过程,因此了解其与磷脂的相互作用方式对于了解其生物学功能至关重要。在这里,我们提出了一种基于电子自旋回波包络调制的新方法,以相对较高的分辨率探测膜结合的裂解肽的位置,并研究它们对膜中水浓度分布的影响。作为第一个例子,我们确定了两种膜活性两亲性肽(26-mer蜂毒蜂毒素和从头设计的15-mer D,L-氨基酸两亲性肽(5D-L9K6C))的N端位置,两者都是抗微生物的,结合并在带负电的膜上起类似作用。将一氧化氮自旋标记引入到肽的N端,并在带有氘代模型膜的H2O溶液或带有氘代模型膜的D2O溶液中进行测量。使用的脂质是二棕榈酰磷脂酰胆碱(DPPC)和磷脂酰甘油(PG)(DPPC / PG(7:3 w / w)),鸡蛋磷脂酰胆碱(PC)和PG(PC / PG(7:3 w / w)),以及磷脂酰乙醇胺(PE)和PG(PE / PG,7:3w / w)。确定了由 2 H核诱导的调节并将其与产生参考“规则”的一系列对照进行比较。实际的估计距离是根据简单的电子自旋模型对调制深度进行定量分析得出的,该电子自旋位于离氘核均匀分布的层的底部一定距离处。发现这两种肽的N末端都在DPPC / PG和PC / PG膜的溶剂层中。对于PE / PG,观察到有更多的溶剂置换。发现添加肽可以改变膜中的水分布,使其“更平整”并增加对疏水区域的渗透深度。

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