LBD-type transcription factors suppress local and systemic nitrogen responses through distinct regulatory pathways
Kiba, T.; Takahashi, H.; Monden, K.; Sada, Y.; Koshihara, K.; Sato, M.; Bellegarde, F.; Hachiya, T.; Hirai, M. Y.; Yanagisawa, S.; Sakakibara, H.
Show abstract
Nitrogen (N) is a major determinant of plant growth and productivity. Because soil N availability and internal N demand fluctuate, plants have evolved sophisticated mechanisms to coordinate N acquisition and utilization at the whole-plant level. However, how this coordination is achieved remains poorly understood. Here, we show that N-inducible LATERAL ORGAN BOUNDARIES DOMAIN transcription factors LBD37, LBD38, and LBD39 (LBDs) function as repressors of local N uptake and assimilation and systemic N-demand signaling in Arabidopsis. Triple mutants lacking these three LBDs displayed enhanced nitrate influx and increased accumulation of nitrate, amino acids, and total N. Transcriptome analysis identified an array of N-starvation- and nitrate-inducible genes derepressed in shoots and roots, including C-TERMINALLY ENCODED PEPTIDE (CEP) and CEP DOWNSTREAM (CEPD) genes, as well as genes involved in N uptake and assimilation. Grafting and genetic analyses revealed that LBDs gate the systemic N-demand signaling relay by repressing CEP and CEPD expression organ-autonomously. We also found that LBDs locally repress genes involved in N uptake and assimilation through a distinct regulatory mechanism. We propose that LBDs are key transcriptional repressors in a regulatory framework for optimizing N acquisition and utilization under fluctuating N conditions at the whole-plant level.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Diversification of gene expression across extremophytes and stress-sensitive species in the Brassicaceae 95%
- Humidity-driven ABA depletion determines plant-pathogen competition for leaf water 95%
- Pathogen effector recognition-dependent association of NRG1 with EDS1 and SAG101 in TNL receptor immunity 94%
Similar papers in this journal
Similar papers in this journal
- Wounding activates the HSFA1 transcription factors to promote cellular reprogramming in Arabidopsis 95%
- The minimal cell-cycle control system in Marchantia as a framework for understanding plant cell proliferation 94%
- Gene expression divergence following gene and genome duplications in spatially resolved plant transcriptomes 94%
Similar papers in this journal
- Evolution of vascular plants through redeployment of ancient developmental regulators 94%
- S1 basic leucine zipper transcription factors shape plant architecture by controlling C/N partitioning to apical and lateral organs 94%
- The Arabidopsis NRT1/PTR FAMILY Protein NPF7.3/NRT1.5 is an Indole-3-butyric Acid Transporter Involved in Root Gravitropism 94%
Similar papers in this journal
- ITPK1 is an InsP6/ADP phosphotransferase that controls systemic phosphate homeostasis in Arabidopsis 93%
- Cell fate plasticity of xylem-pole-pericycle in Arabidopsis roots 93%
- The Arabidopsis histone H3K4me3-binding ALFIN-like proteins mediate histone H2A ubiquitination and coordinate diverse chromatin modifications 92%
"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.