A cDNA encoding a novel inwardly rectifying potassium (K+(in)) channel, LKT1, was cloned from a root-hair-specific cDNA library of tomato (Lycopersicon esculentum Mill.). The LKT1 mRNA was shown to be most strongly expressed in root hairs by Northern blot analysis. The LKT1 channel is a member of the AKT family of K+(in) channels previously identified in Arabidopsis thaliana (L.) Heynh. and potato (Solanum tuberosum L.). Moreover, LKT1 is closely related (97% identical amino acids) to potato SKT1. An electrophysiological comparison of the two channels should therefore assist the identification of possible molecular bases for functional differences. For, this comparison, both channels were functionally expressed and electrophysiologically characterised within the same expression system, i.e. Xenopus laevis oocytes. Voltage-clamp measurements identified LKT1 as a K(+)-selective inward rectifier which activates with slow kinetics upon hyperpolarising voltage pulses to potentials more negative than -50 mV. The activation potential of LKT1 is shifted towards positive potentials with respect to SKT1 which might be due to single amino acid exchanges in the rim of the channel's pore region or in the S4 domain. Like SKT1, LKT1 reversibly activated upon shifting the external pH from 6.6 to 5.5, which indicates a physiological role for pH-dependent regulation of AKT-type K+(in) channels. The pharmacological inhibitor Cs+, applied externally, inhibited K+(in) currents mediated by LKT1 and SKT1 half-maximally with a concentration (IC50) of 21 microM and 17 microM, respectively. In conclusion, LKT1 may serve as a low-affinity influx pathway for K+ into root hair cells. Comparison of homologous K+(in) rectifiers from different plant species expressed in the same heterologous system allows conclusions to be drawn in respect to structure-function relationships.
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Plant Physiol Biochem
February 2024
Departamento de Nutrición Vegetal, Centro de Edafología y Biología Aplicada Del Segura- CSIC, Murcia, Spain. Electronic address:
The beneficial effects of Na as a substitute for K have been well-documented at the physiological level. However, the transport systems and regulatory mechanisms that allow Na acquisition under K deficiency remain poorly understood in the majority of land plants. In tomato, SlCIPK23 kinase was involved in Na accumulation in K-starved plants, in addition to activating the LKT1 K channel and the K transporter SlHAK5.
View Article and Find Full Text PDFPlant Cell Environ
November 2023
Dpto. Biología del Estrés y Patología Vegetal, Centro de Edafología y Biología Aplicada del Segura, Consejo Superior de Investigaciones Científicas, Espinardo, Murcia, Spain.
Climate change exacerbates abiotic stresses like salinization, negatively impacting crop yield, so development of strategies, like using salt-tolerant rootstocks, is crucial. The CALCINEURIN B-LIKE 10 (SlCBL10) gene has been previously identified as a positive regulator of salt tolerance in the tomato shoot. Here, we report a different function of SlCBL10 in tomato shoot and root, as disruption of SlCBL10 only induced salt sensitivity when it was used in the scion but not in the rootstock.
View Article and Find Full Text PDFFront Microbiol
October 2021
ICAR-National Bureau of Agriculturally Important Microorganisms, Maunath Bhanjan, India.
Endophytic bacilli of ethano-botanical plant were screened for salt stress-alleviating traits in tomato. Four promising endophytes ( BTL5, GTR8, GTR11, and GTS16) were used in this study. Confocal scanning laser microscopic studies revealed the inter-genera colonization of endophytes in tomato plants, giving insights for widening the applicability of potential endophytes to other crops.
View Article and Find Full Text PDFPlant Cell Environ
December 2021
Departamento de Nutrición Vegetal, Centro de Edafología y Biología Aplicada del Segura-CSIC, Murcia, Spain.
Regulation of root transport systems is essential under fluctuating nutrient supply. In the case of potassium (K ), HAK/KUP/KT K transporters and voltage-gated K channels ensure root K uptake in a wide range of K concentrations. In Arabidopsis, the CIPK23/CBL1-9 complex regulates both transporter- and channel-mediated root K uptake.
View Article and Find Full Text PDFPhysiol Plant
August 2017
Departamento de Biología Aplicada, Universidad Miguel Hernández, Alicante, 03312, Spain.
Regulation of essential macronutrients acquisition by plants in response to their availability is a key process for plant adaptation to changing environments. Here we show in tomato and Arabidopsis plants that when they are subjected to NO , PO and SO deprivation, low-affinity K uptake and K translocation to the shoot are reduced. In parallel, these nutritional deficiencies produce reductions in the messenger levels of the genes encoding the main systems for low-affinity K uptake and K translocation, i.
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