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Small But Powerful: MicroRNA-Derived Peptides Promote Grape Adventitious Root Formation
- Source :
- Plant Physiol
- Publication Year :
- 2020
-
Abstract
- One of the biggest challenges in clonal propagation of grapevine (Vitis vinifera) is difficulty of rooting. Adventitious root initiation and development are the critical steps in the cutting and layering process of grapevine, but the molecular mechanism of these processes remains unclear. Previous reports have found that microRNA (miRNA)-encoded peptides (miPEPs) can regulate plant root development by increasing the transcription of their corresponding primary miRNA. Here, we report the role of a miPEP in increasing adventitious root formation in grapevine. In this study, we performed a global analysis of miPEPs in grapevine and characterized the function of vvi-miPEP171d1, a functional, small peptide encoded by primary-miR171d. There were three small open reading frames in the 500-bp upstream sequence of pre-miR171d. One of them encoded a small peptide, vvi-miPEP171d1, which could increase the transcription of vvi-MIR171d. Exogenous application of vvi-miPEP171d1 to grape tissue culture plantlets promoted adventitious root development by activating the expression of vvi-MIR171d. Interestingly, neither exogenous application of the vvi-miPEP171d1 peptide nor overexpression of the vvi-miPEP171d1 coding sequence resulted in phenotypic changes in Arabidopsis (Arabidopsis thaliana). Similarly, application of synthetic ath-miPEP171c, the small peptide encoded by the Arabidopsis ortholog of vvi-MIR171d, inhibited the growth of primary roots and induced the early initiation of lateral and adventitious roots in Arabidopsis, while it had no effect on grape root development. Our findings reveal that miPEP171d1 regulates root development by promoting vvi-MIR171d expression in a species-specific manner, further enriching the theoretical research into miPEPs.
- Subjects :
- 0106 biological sciences
Root formation
Regulation of gene expression
Indoleacetic Acids
Physiology
Plant Science
Biology
Plant genomes
biology.organism_classification
01 natural sciences
Cell biology
MicroRNAs
Gene Expression Regulation, Plant
Arabidopsis
microRNA
Genetics
Vitis
cardiovascular diseases
Peptides
Lateral root formation
Gene
Transcription factor
Research Articles
010606 plant biology & botany
Subjects
Details
- ISSN :
- 15322548
- Volume :
- 183
- Issue :
- 2
- Database :
- OpenAIRE
- Journal :
- Plant physiology
- Accession number :
- edsair.doi.dedup.....67b2b62763e07c165e6e084c519eb170