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Nedved, D.

Publications and source records attributed to Nedved, D..

4 recordsLinked to original sources

A tonoplast cytokinin riboside transporter gates intracellular hormone availability at the plant-microbe interface

Cytokinin ribosides are major mobile and precursor forms of cytokinins, plant hormones whose transport and subcellular distribution shape developmental and stress responses. Here, we identify Arabidopsis thaliana EQUILIBRATIVE NUCLEOSIDE TRANSPORTER1 (ENT1) as a tonoplast-localized cytokinin riboside transporter. Tissue-specific subcellular analysis under native regulatory elements localized ENT1 predominantly to the tonoplast of root epidermal and lateral root cap cells, where it gates intracellular cytokinin riboside availability. Accordingly, ENT1 overexpression enhanced cytokinin riboside sensitivity and signalling, whereas loss of ENT1 altered adenosine metabolism and disrupted cytokinin homeostasis, leading to the accumulation of multiple zeatin-type cytokinins. ENT1-dependent cytokinin riboside compartmentalization was required for beneficial microbe-induced protection, as ent1 mutants failed to acquire protection against the fungal pathogen Botrytis cinerea and the bacterial pathogen Pseudomonas syringae pv. tomato DC3000. These findings reveal a vacuolar gatekeeping mechanism that controls intracellular cytokinin riboside availability and links hormone compartmentalization to beneficial microbe-dependent plant defence.

plant biology↗

The role of IAA and its transport in the complex streptophyte algae Chara braunii

The role of auxin indole-3-acetic acid (IAA), a phytohormone with numerous morphogenic functions, is now well-established in land plants. Although the role of IAA and its transport in algae remains unclear, PIN-driven auxin export is probably an ancient and conserved trait within Streptophytes. Among streptophyte algae, Chara represents a genus with a considerable degree of complexity in body arrangement. This study investigates the auxin response and characterizes homologs of land plant PIN auxin efflux carriers in Chara braunii. Through regeneration experiments, we observed that IAA significantly promotes elongation of thallus and side branch development upon thallus tip decapitation, indicating an effect on morphogenesis. We show that IAA is actively uptaken and metabolized by thallus cells and that this process is influenced by N-1-naphthylphthalamic acid (NPA). To elucidate the underlying mechanisms, we cloned and sequenced the most expressed Chara braunii PINs, CbPINa and CbPINc. Using epitope-specific antibodies, we showed their presence in the plasma membrane (PM) of vegetative internodal cells and generative antheridial cells. Functional tests in tobacco BY-2 cells, supported by in silico docking of IAA and NPA to CbPINa and CbPINc, showed that PM-localized CbPINa interferes with auxin transport in contrast to ER-localized CbPINc. Finally, our phosphoproteome analysis indicated that IAA rapidly induces specific phosphorylation events, including RAF-like kinase phosphorylation, highlighting a potential role for IAA in fast signaling processes in Chara braunii. Altogether, we provide new insights into IAA role in Chara braunii morphogenesis and suggest that while the canonical auxin transport mechanism may not be conserved, auxin still may likely play a role in rapid signaling pathways in this close relative of land plants.

plant biology↗

Comprehensive Model of Cell-to-Cell Cytokinin Transport Reveals A Specific Mode of Cytokinin Riboside Influx

1Ribosylated forms of plant hormones cytokinins (CKs) are the dominant CK species translocated at long distances. Their particular roles in plant physiology imply the existence of a yet uncharacterized CK riboside-specific membrane transport system. In this work, we report significant differences in the kinetics of the membrane transport of CK nucleobases and ribosides and the overall affinity of membrane-bound carriers towards the two CK forms. We show that CK ribosides can inhibit the uptake of CK nucleobases in tobacco Bright Yellow 2 cell suspensions but not vice versa, confirming the existence of a membrane transport system that strictly recognizes CK ribosides. We further characterize the membrane transport of CK nucleobases and ribosides mediated by AtENT3 (EQULIBRATIVE NUCLEOSIDE TRANSPORTER 3), showing its preference towards trans-zeatin riboside (tZR) over isopentenyl adenosine (iPR). With the molecular docking and molecular dynamics, we assess the interactions among the side chain of tZR and AtENT3 residues Tyr61 and Asp129, which are conserved in all AtENTs but not in the ENTs from non-plant species. Lastly, we show that atent3 mutation affects shoot phenotype, demonstrating the impact of CK riboside membrane transport on shoot development.

plant biology↗

Cytokinin Dehydrogenase in Xylem Sap Reveals A Direct Link Between Cytokinin Metabolism and Long-Distance Transport

Metabolic degradation of plant hormones cytokinins (CKs) co-regulates their homeostasis and signalling. In this work, we employed a large-scale bioinformatical analysis to address a diversity of cytokinin oxidase/dehydrogenase (CKX) substrate specificities previously described in several case studies. We present a three-way correlation of the entire CKX amino acid sequences, a variable motif involved in substrate binding, and subcellular localizations predicted by a deep learning model. This correlation is conserved in monocotyledonous plants, suggesting that the CKX diversity in a single species allows a precise tuning of the CK homeostasis. Following these findings, we detected CKX activity in xylem sap for the first time, using the oat (Avena sativa) as a model plant. Further investigation of the substrate specificity and glycosylation of this xylem-located CKX suggested that it originates in roots. We have identified 27 putative CKXs in oats and attributed the xylem-located activity to the extracellular isoforms AsCKX1a,c,d. Finally, we show that the xylem-located CKX activity responds to the nitrate supply, highlighting its physiological relevance. Taken together, we show that CKX directly modulates root-to-shoot CK translocation through metabolic degradation of the transported CKs.

plant biology↗