...
首页> 外文期刊>Journal of Computer-Aided Molecular Design >Modeling activated states of GPCRs: the rhodopsin template
【24h】

Modeling activated states of GPCRs: the rhodopsin template

机译:GPCR激活状态建模:视紫红质模板

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Activation of G Protein-Coupled Receptors (GPCRs) is an allosteric mechanism triggered by ligand binding and resulting in conformational changes transduced by the transmembrane domain. Models of the activated forms of GPCRs have become increasingly necessary for the development of a clear understanding of signal propagation into the cell. Experimental evidence points to a multiplicity of conformations related to the activation of the receptor, rendered important physiologically by the suggestion that different conformations may be responsible for coupling to different signaling pathways. In contrast to the inactive state of rhodopsin (RHO) for which several high quality X-ray structures are available, the structure-related information for the active states of rhodopsin and all other GPCRs is indirect. We have collected and stored such information in a repository we maintain for activation-specific structural data available for rhodopsin-like GPCRs, http://www.physiology.med.cornell.edu/GPCRactivation/gpcrindex.html. Using these data as structural constraints, we have applied Simulated Annealing Molecular Dynamics to construct a number of different active state models of RHO starting from the known inactive structure. The common features of the models indicate that TM3 and TM5 play an important role in activation, in addition to the well-established rearrangement of TM6. Some of the structural changes observed in these models occur in regions that were not involved in the constraints, and have not been previously tested experimentally; they emerge as interesting candidates for further experimental exploration of the conformational space of activated GPCRs. We show that none of the normal modes calculated from the inactive structure has a dominant contribution along the path of conformational rearrangement from inactive to the active forms of RHO in the models. This result may differentiate rhodopsin from other GPCRs, and the reasons for this difference are discussed in the context of the structural properties and the physiological function of the protein.
机译:G蛋白偶联受体(GPCR)的激活是一种变构机制,由配体结合触发,并导致跨膜结构域转导构象变化。为了清楚了解信号向细胞内传播,GPCR激活形式的模型变得越来越必要。实验证据表明,与受体激活有关的多种构象,在生理学上因不同构象可能负责与不同信号通路的偶联而变得重要。与视紫红质(RHO)的无活性状态(具有几种高质量的X射线结构)相反,视紫红质和所有其他GPCR的活性状态的结构相关信息是间接的。我们已将此类信息收集并存储在我们维护的存储库中,以获取视紫红质样GPCR可用的激活特定的结构数据,网址为http://www.physiology.med.cornell.edu/GPCRactivation/gpcrindex.html。使用这些数据作为结构约束,我们已应用模拟退火分子动力学从已知的非活性结构开始构建许多不同的RHO活性状态模型。该模型的共同特征表明,TM3和TM5除了已确定的TM6重排之外,在激活中也起着重要作用。在这些模型中观察到的某些结构变化发生在不涉及约束的区域中,并且之前未进行过实验测试;它们成为有趣的候选物,可用于进一步实验研究激活的GPCR的构象空间。我们表明,在模型中,从非活性结构计算的正常模式均没有沿构象重排的路径从非活性形式转变为活性形式的RHO。该结果可能使视紫红质与其他GPCR区别开来,并且在蛋白质的结构特性和生理功能的背景下讨论了这种差异的原因。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号