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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Biophysical investigations with MARCKS-ED: Dissecting the molecular mechanism of its curvature sensing behaviors
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Biophysical investigations with MARCKS-ED: Dissecting the molecular mechanism of its curvature sensing behaviors

机译:用Marcks-ED进行生物物理调查:解剖其曲率传感行为的分子机制

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Curved membranes are a common and important attribute in cells. Protein and peptide curvature sensors are known to activate signaling pathways, initiate vesicle budding, trigger membrane fusion, and facilitate molecular transport across cell membranes. Nonetheless, there is little understanding how these proteins and peptides achieve preferential binding of different membrane curvatures. The current study is to elucidate specific factors required for curvature sensing. As a model system, we employed a recently identified peptide curvature sensor, MARCKS-ED, derived from the effector domain of the myristoylated alanine-rich C kinase substrate protein, for these biophysical investigations. An atomistic molecular dynamics (MD) simulation suggested an important role played by the insertion of the Phe residues within MARCKS-ED. To test these observations from our computational simulations, we performed electron paramagnetic resonance (EPR) studies to determine the insertion depth of MARCKS-ED into differently curved membrane bilayers. Next, studies with varied lipid compositions revealed their influence on curvature sensing by MARCKS-ED, suggesting contributions from membrane fluidity, rigidity, as well as various lipid structures. Finally, we demonstrated that the curvature sensing by MARCKS-ED is configuration independent. In summary, our studies have shed further light to the understanding of how MARCKS-ED differentiates between membrane curvatures, which may be generally applicable to protein curvature sensing behavior.
机译:弯曲膜是细胞中的共同和重要的属性。已知蛋白质和肽曲率传感器激活信号通路,引发囊泡芽,触发膜融合,并促进细胞膜的分子输送。尽管如此,几乎没有了解这些蛋白质和肽如何实现不同膜曲率的优先结合。目前的研究是阐明曲率感测所需的特定因素。作为模型系统,我们使用最近鉴定的肽曲率传感器,Marck-ED,衍生自富核酸富含型富含莫尔氨酰富含的富含C激酶底蛋白蛋白蛋白的效应结构域,用于这些生物物理研究。原子分子动力学(MD)仿真表明,通过在马克ED内插入PHE残基的重要作用。为了从我们的计算模拟中测试这些观察,我们进行了电子顺笔共振(EPR)研究,以确定Marcks-Ed的插入深度进入不同弯曲的膜双层。接下来,具有不同脂质组合物的研究显示它们对马克ED的曲率感测的影响,暗示膜流动性,刚性以及各种脂质结构的贡献。最后,我们证明了Marcks-ED的曲率感应是独立的配置。总之,我们的研究进一步光明了解Marcks-ED如何区分膜曲率,这通常可以适用于蛋白质曲率传感行为。

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