Transition metal ion FRET uncovers K<sup>+</sup> regulation of a neurotransmitter/sodium symporter.

Billesbølle, Christian B; Mortensen, Jonas S; Sohail, Azmat; Schmidt, Solveig G; Shi, Lei; Sitte, Harald H; Gether, Ulrik; Loland, Claus J · Nat Commun · 2016

basic_science · Level V

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Abstract

Neurotransmitter/sodium symporters (NSSs) are responsible for Na<sup>+</sup>-dependent reuptake of neurotransmitters and represent key targets for antidepressants and psychostimulants. LeuT, a prokaryotic NSS protein, constitutes a primary structural model for these transporters. Here we show that K<sup>+</sup> inhibits Na<sup>+</sup>-dependent binding of substrate to LeuT, promotes an outward-closed/inward-facing conformation of the transporter and increases uptake. To assess K<sup>+</sup>-induced conformational dynamics we measured fluorescence resonance energy transfer (FRET) between fluorescein site-specifically attached to inserted cysteines and Ni<sup>2+</sup> bound to engineered di-histidine motifs (transition metal ion FRET). The measurements supported K<sup>+</sup>-induced closure of the transporter to the outside, which was counteracted by Na<sup>+</sup> and substrate. Promoting an outward-open conformation of LeuT by mutation abolished the K<sup>+</sup>-effect. The K<sup>+</sup>-effect depended on an intact Na1 site and mutating the Na2 site potentiated K<sup>+</sup> binding by facilitating transition to the inward-facing state. The data reveal an unrecognized ability of K<sup>+</sup> to regulate the LeuT transport cycle.