Department of Molecular Physiology and Biophysics, Vanderbilt University, Nashville, TN 37212.
Department of Chemistry, Vanderbilt University, Nashville, TN 37212.
Proc Natl Acad Sci U S A. 2022 Aug 23;119(34):e2206129119. doi: 10.1073/pnas.2206129119. Epub 2022 Aug 15.
The Amino Acid-Polyamine-Organocation (APC) transporter GadC contributes to the survival of pathogenic bacteria under extreme acid stress by exchanging extracellular glutamate for intracellular γ-aminobutyric acid (GABA). Its structure, determined in an inward-facing conformation at alkaline pH, consists of the canonical LeuT-fold with a conserved five-helix inverted repeat, thereby resembling functionally divergent transporters such as the serotonin transporter SERT and the glucose-sodium symporter SGLT1. However, despite this structural similarity, it is unclear if the conformational dynamics of antiporters such as GadC follow the blueprint of these or other LeuT-fold transporters. Here, we used double electron-electron resonance (DEER) spectroscopy to monitor the conformational dynamics of GadC in lipid bilayers in response to acidification and substrate binding. To guide experimental design and facilitate the interpretation of the DEER data, we generated an ensemble of structural models in multiple conformations using a recently introduced modification of AlphaFold2 . Our experimental results reveal acid-induced conformational changes that dislodge the Cterminus from the permeation pathway coupled with rearrangement of helices that enables isomerization between inward- and outward-facing states. The substrate glutamate, but not GABA, modulates the dynamics of an extracellular thin gate without shifting the equilibrium between inward- and outward-facing conformations. In addition to introducing an integrated methodology for probing transporter conformational dynamics, the congruence of the DEER data with patterns of structural rearrangements deduced from ensembles of AlphaFold2 models illuminates the conformational cycle of GadC underpinning transport and exposes yet another example of the divergence between the dynamics of different families in the LeuT-fold.
氨基酸-多胺-有机阳离子(APC)转运蛋白 GadC 通过将细胞外谷氨酸交换为细胞内γ-氨基丁酸(GABA)来帮助致病菌在极端酸性应激下存活。其结构在碱性 pH 下以内向构象确定,由保守的五螺旋反向重复的典型 LeuT 折叠组成,因此类似于功能不同的转运蛋白,如 5-羟色胺转运蛋白 SERT 和葡萄糖-钠协同转运蛋白 SGLT1。然而,尽管存在这种结构相似性,但尚不清楚像 GadC 这样的反向转运蛋白的构象动力学是否遵循这些或其他 LeuT 折叠转运蛋白的蓝图。在这里,我们使用双电子电子共振(DEER)光谱监测 GadC 在脂质双层中的构象动力学对酸化和底物结合的反应。为了指导实验设计并有助于解释 DEER 数据,我们使用最近引入的 AlphaFold2 进行了多种构象的结构模型集合的生成 。我们的实验结果揭示了酸诱导的构象变化,这些变化使 C 端从渗透途径中脱离,并伴有螺旋重排,从而使内向和外向构象之间发生异构化。底物谷氨酸而不是 GABA 调节细胞外薄门的动力学,而不会改变内向和外向构象之间的平衡。除了引入一种用于探测转运蛋白构象动力学的综合方法外,DEER 数据与从 AlphaFold2 模型集合推断出的结构重排模式的一致性阐明了 GadC 运输的构象循环,并揭示了 LeuT 折叠中不同家族动力学之间的另一个分歧示例。