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Molecular dynamics simulations reveal ligand-controlled positioning of a peripheral protein complex in membranes

机译:分子动力学模拟揭示了膜中外围蛋白复合物的配体控制定位

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摘要

Bryostatin is in clinical trials for Alzheimer’s disease, cancer, and HIV/AIDS eradication. It binds to protein kinase C competitively with diacylglycerol, the endogenous protein kinase C regulator, and plant-derived phorbol esters, but each ligand induces different activities. Determination of the structural origin for these differing activities by X-ray analysis has not succeeded due to difficulties in co-crystallizing protein kinase C with relevant ligands. More importantly, static, crystal-lattice bound complexes do not address the influence of the membrane on the structure and dynamics of membrane-associated proteins. To address this general problem, we performed long-timescale (400–500 µs aggregate) all-atom molecular dynamics simulations of protein kinase C–ligand–membrane complexes and observed that different protein kinase C activators differentially position the complex in the membrane due in part to their differing interactions with waters at the membrane inner leaf. These new findings enable new strategies for the design of simpler, more effective protein kinase C analogs and could also prove relevant to other peripheral protein complexes.
机译:Bryostatin正在进行针对阿尔茨海默氏病,癌症和消除HIV / AIDS的临床试验。它与二酰基甘油,内源性蛋白激酶C调节剂和植物来源的佛波酯竞争性地与蛋白激酶C结合,但是每个配体诱导不同的活性。由于难以使蛋白质激酶C与相关配体共结晶,因此无法通过X射线分析确定这些不同活性的结构来源。更重要的是,静态,晶格结合的复合物不能解决膜对膜相关蛋白的结构和动力学的影响。为了解决这个普遍的问题,我们对蛋白激酶C-配体-膜复合物进行了长时间(总计400-500μs聚集)的全原子分子动力学模拟,并观察到不同的蛋白激酶C激活剂可将复合物在膜中的位置不同。部分原因是它们与膜内叶上水的相互作用不同。这些新发现为设计更简单,更有效的蛋白激酶C类似物提供了新策略,并且还可能与其他外围蛋白复合物有关。

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