Salicylic acid represses primary root growth through the Glucose-Target of Rapamycin-E2Fa pathway in Arabidopsis
Rawat, S. S.; Laxmi, A.
Show abstract
In addition to their role as energy sources, sugars function as signaling molecules, modulating gene expression. Plants perceive nutrient availability and translate this information into cellular signals, to trigger various developmental responses, including primary root growth. In particular, glucose stimulates root development by activating the root meristem. Recent studies have documented the role of the defense hormone, salicylic acid (SA) as a negative regulator of root growth and developmental processes. Here, we characterized the modulation of primary root growth by the cross-talk of glucose and SA. Our results indicate that auxin is a critical mediator of SA-induced root growth inhibition. Attenuation of auxin signaling or transport pathways alters the inhibitory effect of SA on root growth. Moreover, we provide evidence for the involvement of the role of Target of Rapamycin (TOR) signaling in SA-induced root growth repression. Furthermore, SA negatively regulates the expression of E2Fa, a key transcription factor required for cell cycle progression and root growth and development. Our findings elucidate mechanism(s) whereby SA, through the interconnected glucose, auxin and TOR signaling pathways, inhibits primary root growth.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- 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%
- ETHYLENE RESPONSE FACTOR 115 integrates jasmonate and cytokinin signaling machineries to repress adventitious rooting in Arabidopsis 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%
- Jasmonate inhibits adventitious root initiation through transcriptional repression of CKX1 and activation of RAP2.6L transcription factor in Arabidopsis 97%
- GOLVEN peptides regulate lateral root spacing as part of a negative feedback loop on the establishment of auxin maxima 97%
Similar papers in this journal
- Jasmonic Acid coordinates with Light, Glucose and Auxin signalling in Regulating Branching Angle of Arabidopsis Lateral Roots 98%
- TOR coordinates Cytokinin and Gibberellin signals mediating development and defense 97%
- Constitutive expression of JASMONATE RESISTANT 1 elevates content of several jasmonates and primes Arabidopsis thaliana to better withstand drought 96%
Similar papers in this journal
"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.