Laboratory for Membrane Protein Dynamics, Department of Neuroscience, University of Copenhagen, 2200, Copenhagen N, Denmark.
Protein Analysis Group, Department of Pharmacy, University of Copenhagen, 2100, Copenhagen Ø, Denmark.
Nat Commun. 2019 Jun 20;10(1):2714. doi: 10.1038/s41467-019-10449-w.
The dopamine transporter is a member of the neurotransmitter:sodium symporters (NSSs), which are responsible for termination of neurotransmission through Na-driven reuptake of neurotransmitter from the extracellular space. Experimental evidence elucidating the coordinated conformational rearrangements related to the transport mechanism has so far been limited. Here we probe the global Na- and dopamine-induced conformational dynamics of the wild-type Drosophila melanogaster dopamine transporter using hydrogen-deuterium exchange mass spectrometry. We identify Na- and dopamine-induced changes in specific regions of the transporter, suggesting their involvement in protein conformational transitions. Furthermore, we detect ligand-dependent slow cooperative fluctuations of helical stretches in several domains of the transporter, which could be a molecular mechanism that assists in the transporter function. Our results provide a framework for understanding the molecular mechanism underlying the function of NSSs by revealing detailed insight into the state-dependent conformational changes associated with the alternating access model of the dopamine transporter.
钠离子转运体 (NSSs) 的成员,负责通过 Na 驱动的从细胞外空间重新摄取神经递质来终止神经传递。迄今为止,阐明与运输机制相关的协调构象重排的实验证据非常有限。在这里,我们使用氢氘交换质谱法探测野生型黑腹果蝇多巴胺转运体的整体 Na 和多巴胺诱导的构象动力学。我们确定了转运体中特定区域的 Na 和多巴胺诱导的变化,表明它们参与了蛋白质构象转变。此外,我们检测到转运体中几个结构域的螺旋伸展的配体依赖性缓慢协同波动,这可能是一种分子机制,有助于转运体的功能。我们的研究结果通过揭示与多巴胺转运体的交替访问模型相关的状态依赖性构象变化的详细信息,为理解 NSSs 功能的分子机制提供了一个框架。