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1.
Genet Mol Biol ; 46(1 Suppl 1): e20220166, 2023.
Article de Anglais | MEDLINE | ID: mdl-36706026

RÉSUMÉ

Abiotic stresses such as nutritional imbalance, salt, light intensity, and high and low temperatures negatively affect plant growth and development. Through the course of evolution, plants developed multiple mechanisms to cope with environmental variations, such as physiological, morphological, and molecular adaptations. Epigenetic regulation, transcription factor activity, and post-transcriptional regulation operated by RNA molecules are mechanisms associated with gene expression regulation under stress. Epigenetic regulation, including histone and DNA covalent modifications, triggers chromatin remodeling and changes the accessibility of transcription machinery leading to alterations in gene activity and plant homeostasis responses. Soybean is a legume widely produced and whose productivity is deeply affected by abiotic stresses. Many studies explored how soybean faces stress to identify key elements and improve productivity through breeding and genetic engineering. This review summarizes recent progress in soybean gene expression regulation through epigenetic modifications and circRNAs pathways, and points out the knowledge gaps that are important to study by the scientific community. It focuses on epigenetic factors participating in soybean abiotic stress responses, and chromatin modifications in response to stressful environments and draws attention to the regulatory potential of circular RNA in post-transcriptional processing.

2.
J Plant Physiol ; 253: 153261, 2020 Oct.
Article de Anglais | MEDLINE | ID: mdl-32947244

RÉSUMÉ

MicroRNAs (miRNAs) are small non-coding molecules that modulate gene expression through targeting mRNA by specific-sequence cleavage, translation inhibition, or transcriptional regulation. miRNAs are key molecules in regulatory networks in abiotic stresses such as salt stress and water deficit in plants. Throughout the world, soybean is a critical crop, the production of which is affected by environmental stress conditions. In this study, RNA-Seq libraries from leaves of soybean under salt treatment were analyzed. 17 miRNAs and 31 putative target genes were identified with inverse differential expression patterns, indicating miRNA-target interaction. The differential expression of six miRNAs, including miR482bd-5p, and their potential targets, were confirmed by RT-qPCR. The miR482bd-5p expression was repressed, while its potential HEC1 and BAK1 targets were increased. Polyethylene glycol experiment was used to simulate drought stress, and miR482bd-5p, HEC1, and BAK1 presented a similar expression pattern, as found in salt stress. Histone modifications occur in response to abiotic stress, where histone deacetylases (HDACs) can lead to gene repression and silencing. The miR482bd-5p epigenetic regulation by histone deacetylation was evaluated by using the SAHA-HDAC inhibitor. The miR482bd-5p was up-regulated, and HEC1 was down-regulated under SAHA-salt treatment. It suggests an epigenetic regulation, where the miRNA gene is repressed by HDAC under salt stress, reducing its transcription, with an associated increase in the HEC1 target expression.


Sujet(s)
Épigenèse génétique , Régulation de l'expression des gènes végétaux/effets des médicaments et des substances chimiques , Glycine max/effets des médicaments et des substances chimiques , Inhibiteurs de désacétylase d'histone/pharmacologie , microARN/génétique , Stress physiologique/effets des médicaments et des substances chimiques , Banque de gènes , Pression osmotique/effets des médicaments et des substances chimiques , Feuilles de plante/effets des médicaments et des substances chimiques , Feuilles de plante/génétique , Feuilles de plante/physiologie , ARN messager/génétique , ARN des plantes/génétique , RNA-Seq , Stress salin/effets des médicaments et des substances chimiques , Glycine max/génétique , Glycine max/physiologie
3.
Mol Biol Rep ; 47(4): 2871-2888, 2020 Apr.
Article de Anglais | MEDLINE | ID: mdl-32227253

RÉSUMÉ

Soybean is an economically important plant, and its production is affected in soils with high salinity levels. It is important to understand the adaptive mechanisms through which plants overcome this kind of stress and to identify potential genes for improving abiotic stress tolerance. RNA-Seq data of two Glycine max cultivars, a drought-sensitive (C08) and a tolerant (Conquista), subjected to different periods of salt stress were analyzed. The transcript expression profile was obtained using a transcriptogram approach, comparing both cultivars and different times of treatment. After 4 h of salt stress, Conquista cultivar had 1400 differentially expressed genes, 647 induced and 753 repressed. Comparative expression revealed that 719 genes share the same pattern of induction or repression between both cultivars. Among them, 393 genes were up- and 326 down-regulated. Salt stress also modified the expression of 54 isoforms of miRNAs in Conquista, by the maturation of 39 different pre-miRNAs. The predicted targets for 12 of those mature miRNAs also have matches with 15 differentially expressed genes from our analyses. We found genes involved in important pathways related to stress adaptation. Genes from both ABA and BR signaling pathways were modulated, with possible crosstalk between them, and with a likely post-transcriptional regulation by miRNAs. Genes related to ethylene biosynthesis, DNA repair, and plastid translation process were those that could be regulated by miRNA.


Sujet(s)
Glycine max/génétique , Stress salin/génétique , Tolérance au sel/génétique , Adaptation physiologique/génétique , Agriculture/méthodes , Sécheresses , Analyse de profil d'expression de gènes/méthodes , Régulation de l'expression des gènes végétaux/génétique , Salinité , Transduction du signal/génétique , Stress physiologique/génétique , Facteurs de transcription/génétique , Transcriptome/génétique
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