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Residue specific partitioning of KL4 into phospholipid bilayers

机译:将KL4的残基特异性分配成磷脂双层

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摘要

KL4, which has demonstrated success in the treatment of respiratory distress, is a synthetic helical, amphipathic peptide mimetic of lung surfactant protein B. The unusual periodicity of charged residues within KL4 and its relatively high hydrophobicity distinguish it from canonical amphipathic helical peptides. Here we utilized site specific spin labeling of both lipids and the peptide coupled with EPR spectroscopy to discern the effects of KL4 on lipid dynamics, the residue specific dynamics of hydrophobic regions within KL4, and the partitioning depths of specific KL4 residues into the DPPC/POPG and POPC/POPG lipid bilayers under physiologically relevant conditions. KL4 induces alterations in acyl chain dynamics in a lipid-dependent manner, with the peptide partitioning more deeply into DPPC-rich bilayers. Combined with an earlier NMR study of changes in lipid dynamics on addition of KL4 (V.C. Antharam et al., 2009), we are able to distinguish how KL4 affects both collective bilayer motions and intramolecular acyl chain dynamics in a lipid-dependent manner. EPR power saturation results for spin labeled lipids demonstrate that KL4 also alters the accessibility profiles of paramagnetic colliders in a lipid-dependent manner. Measurements of dynamics and depth parameters for individual spin-labeled residues within KL4 are consistent with a model where the peptide partitions deeply into the lipid bilayers but lies parallel to the bilayer interface in both lipid environments; the depth of partitioning is dependent on the degree of lipid acyl chain saturation within the bilayer.
机译:KL4已经证明了治疗呼吸窘迫的成功,是肺表面活性剂蛋白B的合成螺旋螺旋形状肽模拟物。KL4内的带电残余物的不寻常周期性及其相对高的疏水性区分其来自典型的两亲螺旋肽。在这里,我们利用脂质的特异性旋转标记和肽与EPR光谱偶联,辨别KL4对脂质动态的影响,KL4内的疏水区的残留物特异性动态,以及特异性KL4残基的分配深度进入DPPC / POPG中的分配深度和Popc / popg脂质双层在生理相关的条件下。 KL4以脂质依赖性方式诱导酰基链动力学的改变,肽分配更深入富含DPPC的双层。结合早期的NMR研究,添加KL4(V.C.Antharam等,2009),我们能够区分KL4如何以脂质依赖性方式影响集体双层运动和分子内酰基链动态。旋转标记脂质的EPR饱和度结果表明,KL4还以脂质依赖性方式改变顺磁煤机的可访问性谱。 KL4内各自的旋转标记残留物的动力学和深度参数的测量与肽分配深入脂质双层但与双层界面平行于两种脂质环境中的型号的模型一致;分区的深度取决于双层脂质酰基链饱和度。

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