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logo citeas Ródenas, R., Ragel, P., Nieves-Cordones, M., Martínez-Martínez, A., Amo, J., Lara, A., … Rubio, F. (2021, January 29). Insights into the mechanisms of transport and regulation of the arabidopsis high-affinity K+ transporter HAK51. Plant Physiology. Oxford University Press (OUP). http://doi.org/10.1093/plphys/kiab028
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Título

Insights into the Mechanisms of Transport and Regulation of the Arabidopsis High-affinity K+ Transporter HAK5

AutorRódenas, Reyes CSIC; Ragel, Paula CSIC ORCID; Nieves-Cordones, Manuel CSIC ORCID ; Martínez-Martínez, Almudena CSIC ORCID; Amo Pérez, Jesús CSIC ORCID; Lara Hurtado, Alberto CSIC; Martínez, Vicente CSIC ORCID; Quintero, Francisco J. CSIC ORCID ; Pardo, José M. CSIC ORCID ; Rubio, Francisco CSIC ORCID
Fecha de publicación2021
EditorOxford University Press
CitaciónPlant Physiology, 185: 1860 (2021)
ResumenThe high-affinity K+ transporter HAK5 from Arabidopsis (Arabidopsis thaliana) is essential for K+ acquisition and plant growth at low micromolar K+ concentrations. Despite its functional relevance in plant nutrition, information about functional domains of HAK5 is scarce. Its activity is enhanced by phosphorylation via the AtCIPK23/AtCBL1-9 complex. Based on the recently published three-dimensionalstructure of the bacterial ortholog KimA from Bacillus subtilis, we have modeled AtHAK5 and, by a mutational approach, identified residues G67, Y70, G71, D72, D201, and E312 as essential for transporter function. According to the structural model, residues D72, D201, and E312 may bind K+, whereas residues G67, Y70, and G71 may shape the selective filter for K+, which resembles that of K+shaker-like channels. In addition, we show that phosphorylation of residue S35 by AtCIPK23 is required for reaching maximal transport activity. Serial deletions of the AtHAK5 C-terminus disclosed the presence of an autoinhibitory domain located between residues 571 and 633 together with an AtCIPK23-dependent activation domain downstream of position 633. Presumably, autoinhibition of AtHAK5 is counteracted by phosphorylation of S35 by AtCIPK23. Our results provide a molecular model for K+ transport and describe CIPK-CBL-mediated regulation of plant HAK transporters.
Versión del editorhttps://doi.org/10.1093/plphys/kiab028
URIhttp://hdl.handle.net/10261/250273
DOI10.1093/plphys/kiab028
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