Tsalagradas Petros, Eke Callum, Andrews Courtney, MacMillan Fraser
Henry Wellcome Unit for Biological EPR, School of Chemistry, University of East Anglia, Norwich, UK.
J Neurochem. 2025 Mar;169(3):e70034. doi: 10.1111/jnc.70034.
The amino-acid transporter LeuT from Aquifex aeolicus is a well-studied bacterial homologue of the neurotransmitter: sodium symporters (NSS), especially the solute carrier 6 (SLC6) family. Within the nervous system, SLC6 transporters play a vital role in the termination of synaptic transmission, and their dysfunction leads to severe neurological conditions, rendering them key pharmacological targets. LeuT was the first SLC6 homologue to be crystallised and remains the main reference transporter to develop transport cycle models for its eukaryotic counterparts. Here, we aim to probe LeuT and investigate mechanistically important conformational changes using a combination of Site-Directed Spin Labelling (SDSL) and Electron Paramagnetic Resonance (EPR) spectroscopic techniques in detergent solubilised micelles and proteoliposomes. We focus, primarily, on 'subtle' structural, molecular motions occurring at the extracellular region of transmembrane helix (TM) 10, which cannot be resolved using conventional high-resolution crystallographic techniques. We observe similar but not identical ion/ligand-dependent conformational changes of LeuT on the extracellular domain of TM10 in detergent micelles and proteoliposomes. Close agreement is also observed between in silico analysis of existing static structural models and the experimental data acquired here in the form of coarse-grained accessibility restraints, demonstrating that such subtle movements can be important for understanding both function and mechanism. The observed differences for the dynamics of LeuT in different environments underpin future work, which aims to explore 'more native' reconstituted proteoliposome conditions more thoroughly using pulsed EPR methods before generalised conclusions can be drawn on the physiological relevance of such structural changes and whether they can provide novel insights on the molecular events underlying the transport cycle of LeuT.
嗜热栖热菌的氨基酸转运体LeuT是一种经过充分研究的神经递质:钠同向转运体(NSS)的细菌同源物,尤其是溶质载体6(SLC6)家族。在神经系统中,SLC6转运体在突触传递的终止中起着至关重要的作用,其功能障碍会导致严重的神经疾病,使其成为关键的药理学靶点。LeuT是第一个被结晶的SLC6同源物,并且仍然是为其真核对应物开发转运循环模型的主要参考转运体。在这里,我们旨在使用定点自旋标记(SDSL)和电子顺磁共振(EPR)光谱技术相结合的方法,在去污剂溶解的胶束和蛋白脂质体中探测LeuT并研究具有重要机制的构象变化。我们主要关注跨膜螺旋(TM)10细胞外区域发生的“细微”结构和分子运动,这些运动无法使用传统的高分辨率晶体学技术解析。我们观察到在去污剂胶束和蛋白脂质体中,LeuT在TM10细胞外结构域上有相似但不完全相同的离子/配体依赖性构象变化。在对现有静态结构模型的计算机分析与以粗粒度可及性限制形式在此获得的实验数据之间也观察到了密切的一致性,这表明这种细微的运动对于理解功能和机制都可能很重要。在不同环境下观察到的LeuT动力学差异为未来的工作奠定了基础,未来的工作旨在使用脉冲EPR方法更全面地探索“更天然”的重组蛋白脂质体条件,然后才能就这种结构变化的生理相关性以及它们是否能为LeuT转运循环背后的分子事件提供新见解得出一般性结论。