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The ethylene response factor AtERF4 negatively regulates the iron deficiency response in Arabidopsis thaliana
- Source :
- PLoS ONE, Vol 12, Iss 10, p e0186580 (2017), PLoS ONE
- Publication Year :
- 2017
- Publisher :
- Public Library of Science (PLoS), 2017.
-
Abstract
- Iron (Fe) deficiency is one of many conditions that can seriously damage crops. Low levels of photosynthesis can lead to the degradation of chlorophyll content and impaired respiration in affected plants, which together cause poor growth and reduce quality. Although ethylene plays an important role in responses to Fe deficiency, a limited number of studies have been carried out on ethylene response factor (ERFs) as components of plant regulation mechanisms. Thus, this study aimed to investigate the role of AtERF4 in plant responses to Fe deficiency. Results collected when Arabidopsis thaliana was grown under Fe deficient conditions as well as in the presence of 1-aminocyclopropane-1-carboxylic acid (ACC) revealed that leaf chlorosis did not occur over short timescales and that chloroplast structural integrity was retained. At the same time, expression of the chlorophyll degradation-related genes AtPAO and AtCLH1 was inhibited and net H+ root flux was amplified. Our results show that chlorophyll content was enhanced in the mutant erf4, while expression of the chlorophyll degradation gene AtCLH1 was reduced. Ferric reductase activity in roots was also significantly higher in the mutant than in wild type plants, while erf4 caused high levels of expression of the genes AtIRT1 and AtHA2 under Fe deficient conditions. We also utilized yeast one-hybrid technology in this study to determine that AtERF4 binds directly to the AtCLH1 and AtITR1 promoter. Observations show that transient over-expression of AtERF4 resulted in rapid chlorophyll degradation in the leaves of Nicotiana tabacum and the up-regulation of gene AtCLH1 expression. In summary, AtERF4 plays an important role as a negative regulator of Fe deficiency responses, we hypothesize that AtERF4 may exert a balancing effect on plants subject to nutrition stress.
- Subjects :
- Chlorophyll
Pigments
0106 biological sciences
0301 basic medicine
Leaves
Chloroplasts
Nicotiana tabacum
Amino Acid Motifs
Arabidopsis
Amino Acids, Cyclic
Gene Expression
lcsh:Medicine
Plant Science
Plant Roots
Biochemistry
01 natural sciences
chemistry.chemical_compound
Gene Expression Regulation, Plant
Medicine and Health Sciences
Arabidopsis thaliana
Plant Hormones
lcsh:Science
Multidisciplinary
Chlorosis
biology
Organic Compounds
Plant Biochemistry
Plant Anatomy
Nutritional Deficiencies
Eukaryota
food and beverages
Iron Deficiencies
Plants
Cell biology
Chloroplast
Chemistry
Phenotype
Experimental Organism Systems
Physical Sciences
Cellular Structures and Organelles
Cellular Types
Research Article
Plant Cell Biology
Arabidopsis Thaliana
Materials Science
Glycine
Brassica
Genes, Plant
Research and Analysis Methods
Models, Biological
Ethylene
03 medical and health sciences
Model Organisms
Plant and Algal Models
Plant Cells
DNA-binding proteins
Genetics
Gene Regulation
Amino Acid Sequence
Iron deficiency (plant disorder)
Materials by Attribute
Nutrition
Organic Pigments
Arabidopsis Proteins
Organic Chemistry
fungi
lcsh:R
Chemical Compounds
Organisms
Wild type
Biology and Life Sciences
Proteins
Cell Biology
Ethylenes
biology.organism_classification
Hormones
Regulatory Proteins
Repressor Proteins
030104 developmental biology
chemistry
Mutation
Iron Deficiency
lcsh:Q
Transcription Factors
010606 plant biology & botany
Subjects
Details
- Language :
- English
- ISSN :
- 19326203
- Volume :
- 12
- Issue :
- 10
- Database :
- OpenAIRE
- Journal :
- PLoS ONE
- Accession number :
- edsair.doi.dedup.....5c9831a0a2047a76d99073cb6d08f69d