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Molecular details of dimerization kinetics reveal negligible populations of transient μ-opioid receptor homodimers at physiological concentrations

机译:二聚化动力学的分子细节揭示了在生理浓度下的瞬时μ-ampioid受体同源体的可忽略的血液群

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Various experimental and computational techniques have been employed over the past decade to provide structural and thermodynamic insights into G Protein-Coupled Receptor (GPCR) dimerization. Here, we use multiple microsecond-long, coarse-grained, biased and unbiased molecular dynamics simulations (a total of ~4 milliseconds) combined with multi-ensemble Markov state models to elucidate the kinetics of homodimerization of a prototypic GPCR, the μ-opioid receptor (MOR), embedded in a 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC)/cholesterol lipid bilayer. Analysis of these computations identifies kinetically distinct macrostates comprising several different short-lived dimeric configurations of either inactive or activated MOR. Calculated kinetic rates and fractions of dimers at different MOR concentrations suggest a negligible population of MOR homodimers at physiological concentrations, which is supported by acceptor photobleaching fluorescence resonance energy transfer (FRET) experiments. This study provides a rigorous, quantitative explanation for some conflicting experimental data on GPCR oligomerization.
机译:过去十年来采用各种实验和计算技术,为G蛋白偶联受体(GPCR)二聚化提供结构和热力学洞察。在这里,我们使用多微秒的长,粗粒,偏置和非偏见的分子动力学模拟(共4毫秒)与多集合马尔可夫状态模型相结合,以阐明原型GPCR的同源化的动力学,μ-opioid受体(Mor),嵌入1-palmItoyl-2-OXeoyl-Sn-甘油-3-普啉甲烷(POPC)/胆固醇脂质双层。对这些计算的分析识别出具有非活动或激活的MOR的几种不同的短寿命的二聚体配置的动力学上不同的宏峰。计算出不同Mor浓度的二聚体的计算动力学率和级数表明了生理浓度的忽略群体,其受到受体光博偏离荧光共振能量转移(FRET)实验的支持。本研究提供了对GPCR寡聚化的一些突破性的实验数据提供了严格的定量解释。

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