Bridge 5: Conformational Dynamics in the CLC Channel/Transporter Family
Bridge 5: Conformational Dynamics in the CLC Channel/Transporter Family
批准号:
9149309
负责人:
Merritt C Maduke
金额:
$10.71万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
未结题
起止时间:
2010-08-10 至
关键词:
Active Biological TransportAnionsBindingBinding SitesBiological AssayCationsChloride ChannelsComputer SimulationCoupledCouplingCrystallizationCrystallographyElectron Spin Resonance SpectroscopyElectronsElementsEventExperimental DesignsFamilyFoundationsFree EnergyFreezingGoalsHomologous GeneIonsKineticsMeasurementMeasuresMembrane ProteinsModelingMolecularMolecular ChaperonesMolecular ConformationPathway interactionsPlayProcessProteinsPumpRoentgen RaysSamplingSecondary toSideSiteSpin LabelsStructural ModelsStructureSynthetic AntigensTechniquesTestingValidationWaterWorkantiporterbasecrosslinkdesignmolecular dynamicsresearch studysimulationsingle-molecule FRET
中文摘要
作为第二活性转运体,CLCs利用存储在一个离子梯度(Cl-)中的能量。
或H+)来泵送另一个离子以对抗其电化学梯度。这是通过严密的
蛋白质构象变化与离子结合、解离和移位事件的偶联。
几种CLC同系物的X射线晶体结构提供了一个无价的结构
为了解这个家族的分子机制奠定了基础。尽管付出了广泛的努力,
然而,结晶只显示了一种基本的ClC构象状态。在这个项目中,
我们将描述未知的构象状态,并描述
这些构象状态以及状态之间的结构跃迁,
共同产生了CLC转运蛋白功能。在目标1中,我们将描述分子
难以捉摸的向外(OF)和向内(IF)状态的细节
电子-电子共振(DER)测量位置对之间的距离变化-
CLC-EC1上的定向自旋标记,这是一种研究得很好的同系物,其结构被遮挡
国家已经确定了。计算模型将指导鹿的实验设计,以及
实验结果将指导结构模型的精化和建模的验证
预测。将使用状态稳定的交联键来实现状态的结晶
根据结构模型以及构象特定的合成抗原设计
可用作结晶伴侣的粘合剂。在目标2中,我们将调查三个
国家内部和国家之间的构象动力学方面,这些方面是阐述
整体CLC传输机制。首先,我们将描述水动力学和H+-
利用扩展的分子,不同构象状态之间的运输路径不同
动力学(MD)模拟与实验验证相结合。第二,我们将确定
运输循环中的潜在中间体,并评估状态之间的转变动力学
利用单分子荧光共振能量转移(SmFRET)测量和
速冻冷冻鹿。最后,详细研究离子的结合和移位是如何
与蛋白质构象变化相耦合,我们将对状态之间的转换进行建模。
先进的非平衡模拟和抽样技术将被用来描述
主要状态(IF、OF和OVERED)之间的转换路径和计算自由
与这些转变相关的能量分布。
英文摘要
As secondary active transporters, CLCs harness energy stored in one ion gradient (Cl-
or H+) to pump the other ion against its electrochemical gradient. This occurs through tight
coupling of protein conformational changes to ion binding, unbinding, and translocation events.
The X-ray crystallographic structures of several CLC homologs provide an invaluable structural
foundation for understanding molecular mechanisms in this family. Despite extensive efforts,
however, crystallization has revealed only one basic CLC conformational state. In this project,
we will characterize the unknown conformational states and describe both the dynamics within
these conformational states as well as the structural transitions between the states, which
together give rise to CLC transporter function. In Aim 1, we will characterize the molecular
details of the elusive outward-facing (OF) and inward-facing (IF) states by using double
electron-electron resonance (DEER) to measure distance changes between pairs of site-
directed spin labels on CLC-ec1, a well-studied homolog for which the structure of the occluded
state has been determined. Computational modeling will guide DEER experimental design, and
experimental results will guide the refinement of the structural models and validate modeling
predictions. Crystallization of states will be approached using state-stabilizing cross-links
designed based on the structural models, as well as conformation-specific synthetic antigen
binders that can be used as crystallization chaperones. In Aim 2, we will investigate three
aspects of conformational dynamics within and between states that are key to elaborating the
overall CLC transport mechanism. First, we will characterize how water dynamics and H+-
transport pathways vary amongst the different conformational states using extended molecular
dynamics (MD) simulations combined with experimental validation. Second, we will identify
potential intermediates in the transport cycle and evaluate kinetics of transitions between states
using single-molecule fluorescence resonance energy transfer (smFRET) measurements and
rapid-freeze quench DEER. Finally, to investigate in detail how binding and translocation of ions
are coupled to protein conformational changes, we will model transitions between the states.
Advanced non-equilibrium simulations and sampling techniques will be used to describe the
transition pathways between the major states (IF, OF, and occluded) and to calculate the free
energy profiles associated with these transitions.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
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依托单位:
Bridge 5: Conformational Dynamics in the CLC Channel/Transporter Family
-
批准号:8933660
-
项目类别:
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资助金额:$15.14万
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财政年份:2010
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负责人:Merritt C Maduke
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依托单位:
2010 Ion Channels GRC
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批准号:7905522
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项目类别:
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资助金额:$2.5万
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依托单位:
海外基金