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Structure Topology and Tilt of Cell-Signaling Peptides Containing Nuclear Localization Sequences in Membrane Bilayers Determined by Solid-State NMR and Molecular Dynamics Simulation Studies

机译:固体核磁共振和分子动力学模拟研究确定膜双层中包含核定位序列的细胞信号肽的结构拓扑和倾斜

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摘要

Cell-signaling peptides have been extensively used to transport functional molecules across the plasma membrane into living cells. These peptides consist of a hydrophobic sequence and a cationic nuclear localization sequence (NLS). It has been assumed that the hydrophobic region penetrates through the hydrophobic lipid bilayer and delivers the NLS inside the cell. To better understand the transport mechanism of these peptides, in this study, we investigated the structure, orientation, tilt of the peptide relative to the bilayer normal, and the membraneinteraction of two cell-signaling peptides, SA and SKP. Results from CD and solid-state NMR experiments combined with molecular dynamics simulations suggest that the hydrophobic region is helical and has a transmembrane orientation with the helical axis tilted away from the bilayer normal. The influence of the hydrophobic mismatch, between the hydrophobic length of the peptide and the hydrophobic thickness of the bilayer, on the tilt angle of the peptides was investigated using thicker POPC and thinner DMPC bilayers. NMR experiments showed that the hydrophobic domain of each peptide has a tilt angle of 15±3° in POPC, while in DMPC 25±3° and 30±3° tilts were observed for SA and SKP peptides respectively. These results are in good agreement with molecular dynamics simulations, which predicts a tilt angle of 13.3° (SA in POPC), 16.4° (SKP in POPC), 22.3° (SA in DMPC) and 31.7° (SKP in POPC). These results and simulations on the hydrophobic fragment of SA or SKP suggest that the tilt of helices increases with a decrease in the bilayer thickness without changing the phase, order, and structure of the lipid bilayers.
机译:细胞信号肽已被广泛用于跨质膜转运功能分子进入活细胞。这些肽由疏水序列和阳离子核定位序列(NLS)组成。已经假定疏水区域穿透疏水脂质双层并且在细胞内递送NLS。为了更好地理解这些肽的转运机制,在这项研究中,我们研究了该肽相对于双层法线的结构,方向,倾斜度以及两种细胞信号肽SA和SKP的膜相互作用。 CD和固态NMR实验与分子动力学模拟相结合的结果表明,疏水区域是螺旋形的,并且具有跨膜方向,螺旋轴的倾斜方向远离双层法线。使用较厚的POPC和较薄的DMPC双层研究了肽的疏水长度和双层的疏水厚度之间的疏水错配对肽倾斜角的影响。 NMR实验表明,每种肽的疏水域在POPC中的倾斜角均为15±3°,而在DMPC中,SA和SKP肽的倾斜角分别为25±3°和30±3°。这些结果与分子动力学模拟非常吻合,后者预测的倾斜角为13.3°(在POPC中为SA),16.4°(在POPC中为SKP),22.3°(在DMPC中为SA)和31.7°(在POPC中为SKP)。这些对SA或SKP疏水片段的结果和模拟表明,螺旋的倾斜度随着双层厚度的减小而增加,而不会改变脂质双层的相,顺序和结构。

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