NADP-malic enzyme 1 couples ABA signaling to ROS-auxin patterning to restrict Arabidopsis root growth
Fu, Y.; Bouzid, M.; Klamke, M.; Schulze Ising, E.-M.; Sosa, M. M.; Poschmann, G.; Wewer, V.; Metzger, S.; Saigo, M.; Maurino, V. G.
Show abstract
Abscisic acid (ABA) restricts primary root growth by reshaping reactive oxygen species (ROS) dynamics and hormone signaling at the root apex, yet how cellular reductant supply for redox homeostasis is integrated into this response remains unclear. Here, we show that the cytosolic NADP-dependent malic enzyme 1 (NADP-ME1) is required for full ABA inhibition of Arabidopsis primary root elongation after germination. Three independent me1 loss-of-function mutants retained significant elongation of primary roots under ABA compared with wild type. In wild type, ABA induced an asymmetric auxin response at the root tip, whereas me1 roots failed to establish this auxin asymmetry and instead accumulated superoxide, indicating disrupted ROS balance. Pharmacological perturbation of auxin transport and ethylene biosynthesis/signaling attenuated the mutant phenotype, linking NADP-ME1 function to auxin-ethylene interactions during ABA-regulated growth. NADP-ME1 loss amplifies ABA-dependent transcriptional rewiring, including induction of oxidative stress and depression of growth-associated hormone modules. Co-immunoprecipitation coupled with bimolecular fluorescence complementation identified ascorbate peroxidase 1 (APX1) and major latex protein-like 34 (MLP34) as NADP-ME1 interaction partners, suggesting functional coupling between NADPH production and ROS detoxification. Together, our results support a model in which NADP-ME1 shapes the superoxide/H2O2 balance to control auxin patterning at the root tip and thereby execute ABA-mediated growth inhibition. One-sentence summaryNADP-ME1 is required for full ABA inhibition of Arabidopsis primary root growth by shaping root-tip ROS balance to drive ROS-dependent auxin patterning and auxin-ethylene crosstalk.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- ETHYLENE RESPONSE FACTOR 115 integrates jasmonate and cytokinin signaling machineries to repress adventitious rooting in Arabidopsis 97%
- A Phosphorus-Limitation Induced, Functionally Conserved DUF506 Protein is a Repressor of Root Hair Elongation in Arabidopsis thaliana 97%
- A plastidial retrograde-signal potentiates biosynthesis of systemic stress response activators 97%
Similar papers in this journal
- Light activates the translational regulatory GCN2 kinase via reactive oxygen species emanating from the chloroplast 97%
- Cell wall extensin arabinosylation is required for root directional response to salinity 97%
- Arabidopsis Casein Kinase 2 triggers Stem Cell Exhaustion under Al Toxicity and Phosphate Deficiency Through activation of the DNA Damage Response pathway 96%
Similar papers in this journal
- Arabidopsis lines with modified ascorbate concentrations reveal a link between ascorbate and auxin biosynthesis 97%
- Diphthamide formation in Arabidopsis requires DPH1-interacting DPH2 for light and oxidative stress resistance 97%
- IRONMAN Tunes Responses to Iron Deficiency in Concert with Environmental pH 96%
Similar papers in this journal
- IBA endogenous auxin regulates Arabidopsis root system development in a glutathione-dependent way and is important for adaptation to phosphate deprivation. 97%
- MYB12 spatiotemporally represses TMO5/LHW-mediated transcription in the Arabidopsis root meristem 97%
- Jasmonate inhibits adventitious root initiation through transcriptional repression of CKX1 and activation of RAP2.6L transcription factor in Arabidopsis 97%
Similar papers in this journal
- A complex tissue-specific interplay between the Arabidopsis transcription factors AtMYB68, AtHB23, and AtPHL1 modulates primary and lateral root development and adaptation to salinity 96%
- Altered metal distribution in the sr45-1 Arabidopsis mutant causes developmental defects 96%
- Nitrate activates a MKK3-dependent MAPK module via NLP transcription factors in Arabidopsis 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.