Sugar beet PMT5a and STP13 carriers suitable for proton‐driven plasma membrane sucrose and glucose import in taproots

Author:

Reyer Antonella1ORCID,Bazihizina Nadia12ORCID,Jaślan Justyna1ORCID,Scherzer Sönke1ORCID,Schäfer Nadine1ORCID,Jaślan Dawid13ORCID,Becker Dirk1ORCID,Müller Thomas D.1ORCID,Pommerrenig Benjamin45ORCID,Neuhaus H. Ekkehard4ORCID,Marten Irene1ORCID,Hedrich Rainer1ORCID

Affiliation:

1. Department of Molecular Plant Physiology and Biophysics, Biocenter Julius‐Maximilians‐Universität (JMU) Würzburg 97082 Germany

2. Department of Agrifood Production and Environmental Sciences Università degli Studi di Firenze Florence 50019 Sesto Fiorentino Italy

3. Faculty of Medicine, Walther Straub Institute of Pharmacology and Toxicology Ludwig Maximilians‐Universität 80336 Munich Germany

4. Plant Physiology University of Kaiserslautern 67663 Kaiserslautern Germany

5. Julius Kühn Institute (JKI) – Federal Research Centre for Cultivated Plants, Institute for Resistance Research and Stress Tolerance Quedlinburg 06484 Germany

Abstract

SUMMARYSugar beet (Beta vulgaris) is the major sugar‐producing crop in Europe and Northern America, as the taproot stores sucrose at a concentration of around 20%. Genome sequence analysis together with biochemical and electrophysiological approaches led to the identification and characterization of the TST sucrose transporter driving vacuolar sugar accumulation in the taproot. However, the sugar transporters mediating sucrose uptake across the plasma membrane of taproot parenchyma cells remained unknown. As with glucose, sucrose stimulation of taproot parenchyma cells caused inward proton fluxes and plasma membrane depolarization, indicating a sugar/proton symport mechanism. To decipher the nature of the corresponding proton‐driven sugar transporters, we performed taproot transcriptomic profiling and identified the cold‐induced PMT5a and STP13 transporters. When expressed in Xenopus laevis oocytes, BvPMT5a was characterized as a voltage‐ and H+‐driven low‐affinity glucose transporter, which does not transport sucrose. In contrast, BvSTP13 operated as a high‐affinity H+/sugar symporter, transporting glucose better than sucrose, and being more cold‐tolerant than BvPMT5a. Modeling of the BvSTP13 structure with bound mono‐ and disaccharides suggests plasticity of the binding cleft to accommodate the different saccharides. The identification of BvPMT5a and BvSTP13 as taproot sugar transporters could improve breeding of sugar beet to provide a sustainable energy crop.

Funder

King Saud University

Bundesministerium für Bildung und Forschung

Publisher

Wiley

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