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Pyrris, Y.

Publications and source records attributed to Pyrris, Y..

3 recordsLinked to original sources

High-resolution structures of the UapA purine transporter reveal unprecedented aspects of the elevator-type transport mechanism.

UapA is an extensively studied elevator-type purine transporter from the model fungus Aspergillus nidulans. Determination of a 3.6[A] inward-facing crystal structure lacking the cytoplasmic N-and C-tails, molecular dynamics (MD), and functional studies have led to speculative models of its transport mechanism and determination of substrate specificity. Here, we report full-length cryo-EM structures of UapA in new inward-facing apo- and substrate-loaded conformations at 2.05-3.5 [A] in detergent and lipid nanodiscs. The structures reveal in an unprecedented level of detail the role of water molecules and lipids in substrate binding, specificity, dimerization, and activity, rationalizing accumulated functional data. Unexpectedly, the N-tail is structured and interacts with both the core and scaffold domains. This finding, combined with mutational and functional studies and MD, points out how N-tail interactions couple proper subcellular trafficking and transport activity by wrapping UapA in a conformation necessary for ER-exit and but also critical for elevator-type conformational changes associated with substrate translocation once UapA has integrated into the plasma membrane. Our study provides detailed insights into important aspects of the elevator-type transport mechanism and opens novel issues on how the evolution of extended cytosolic tails in eukaryotic transporters, apparently needed for subcellular trafficking, might have been integrated into the transport mechanism.

biophysics↗

Transmembrane helices 5 and 12 control transport dynamics, substrate affinity and specificity in the elevator-type UapA transporter

An increasing number of solute transporters have been shown to function with the so-called sliding-elevator mechanism. Despite structural and functional differences all elevator-type transporters use a common mechanism of substrate translocation via reversible movements of a mobile core domain (the elevator) hosting the substrate binding site along a rigid scaffold domain stably anchored in the plasma membrane via homodimerization. One of the best studied elevator transporters is the UapA uric acid-xanthine/H+ symporter of the filamentous fungus Aspergillus nidulans. Here, we present a novel genetic analysis for deciphering the role of transmembrane segments (TMS) 5 and 12 in UapA transport function. We show that specific residues in both TMS5 and TMS12 control, negatively or positively, the dynamics of transport, but also substrate binding affinity and specificity. More specifically, mutations in TMS5 can lead to increased rate of transport, but also to an inactive transporter due to high-affinity substrate-trapping, whereas mutations in TMS12 lead to apparently uncontrolled sliding, and thus broadened specificity and UapA-mediated purine toxicity. Our findings shed new light on how elevator transporters function or how their transport characteristics might be altered genetically or have been modified in the course of evolution.

genetics↗

Molecular basis of uracil/H+ symport mechanism operated by the FurE/NCS1 transporter

Transporters mediate the uptake of solutes, metabolites and drugs across the cell membrane. The eukaryotic FurE nucleobase/H+ symporter of Aspergillus nidulans has been used as a model protein to address structure-function relationships in the APC transporter superfamily, members of which are characterized by the LeuT-fold and seem to operate by the so-called rocking-bundle mechanism. In this study, we reveal the binding mode, translocation and release pathway of uracil/H+ by FurE, using path collective variable, funnel metadynamics and rationally designed mutational analysis. Our study reveals a step-wise, induced-fit, mechanism of ordered sequential transport of proton and uracil, which in turn suggests that the FurE symporter, and probably structurally similar transporters, functions as a multi-step gated pore, rather than employing rocking of compact domains, as generally proposed for APC transporters. In addition, our work further supports the emerging concept that specific elements of cytosolic terminal regions of transporters might be functionally important.

molecular biology↗