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The CEP5 Peptide Promotes Abiotic Stress Tolerance, As Revealed by Quantitative Proteomics, and Attenuates the AUX/IAA Equilibrium in Arabidopsis
- Source :
- MOLECULAR & CELLULAR PROTEOMICS, Molecular & Cellular Proteomics : MCP
- Publication Year :
- 2020
-
Abstract
- The proteome and phosphoproteome of CEP5 overexpressing Arabidopsis seedlings have been determined. This revealed that CEP5 impacts abiotic stress-related processes. Subsequent genetic, physiological, biochemical, and pharmacological results demonstrated that CEP5-mediated signaling is relevant for osmotic and drought stress tolerance in Arabidopsis. Furthermore, CEP5 specifically counteracts auxin effects by stabilizing AUX/IAA transcriptional repressors.<br />Graphical Abstract Highlights • Quantitative Arabidopsis (phospho)proteomes of C-TERMINALLY ENCODED PEPTIDE 5 (CEP5). • CEP5 impacts abiotic stress-related processes and counteracts auxin effects. • CEP5 signaling stabilizes AUX/IAA transcriptional repressors. • Novel peptide-dependent control mechanism that tunes auxin signaling.<br />Peptides derived from non-functional precursors play important roles in various developmental processes, but also in (a)biotic stress signaling. Our (phospho)proteome-wide analyses of C-TERMINALLY ENCODED PEPTIDE 5 (CEP5)-mediated changes revealed an impact on abiotic stress-related processes. Drought has a dramatic impact on plant growth, development and reproduction, and the plant hormone auxin plays a role in drought responses. Our genetic, physiological, biochemical, and pharmacological results demonstrated that CEP5-mediated signaling is relevant for osmotic and drought stress tolerance in Arabidopsis, and that CEP5 specifically counteracts auxin effects. Specifically, we found that CEP5 signaling stabilizes AUX/IAA transcriptional repressors, suggesting the existence of a novel peptide-dependent control mechanism that tunes auxin signaling. These observations align with the recently described role of AUX/IAAs in stress tolerance and provide a novel role for CEP5 in osmotic and drought stress tolerance.
- Subjects :
- Proteomics
Osmosis
Proteome
Transcription, Genetic
ENHANCES DROUGHT TOLERANCE
Arabidopsis
Biochemistry
Analytical Chemistry
Gene Expression Regulation, Plant
WATER
mass spectrometry
Plant biology
chemistry.chemical_classification
0303 health sciences
030302 biochemistry & molecular biology
phosphoproteome
Biochemistry and Molecular Biology
food and beverages
REGULATE ROOT
Adaptation, Physiological
Droughts
Cell biology
protein degradation
AUXIN RESPONSE
Plant hormone
signal transduction
EXPRESSION
Proteasome Endopeptidase Complex
Osmotic shock
Protein degradation
Biology
label-free quantification
developmental biology
03 medical and health sciences
Stress, Physiological
Auxin
Molecular Biology
030304 developmental biology
hormones
Indoleacetic Acids
RECEPTOR
Arabidopsis Proteins
Abiotic stress
Research
NUCLEAR-LOCALIZATION
KINASES
fungi
Biology and Life Sciences
Biological Transport
stress response
Biotic stress
Phosphoproteins
biology.organism_classification
GENE
OSMOTIC-STRESS
chemistry
Seedlings
Peptides
Developmental biology
Subjects
Details
- Language :
- English
- ISSN :
- 15359476 and 15359484
- Database :
- OpenAIRE
- Journal :
- MOLECULAR & CELLULAR PROTEOMICS, Molecular & Cellular Proteomics : MCP
- Accession number :
- edsair.doi.dedup.....933c853314075c17c2a57730ba032750