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Updated: Mar 21, 2026

mirMachine: A One-Stop Shop for Plant miRNA Annotation
Published on: May 1, 2021
Bioinformatic and experimental analyses revealed pathogen-derived pathoPEP candidates predicted to control plant
Emmanuel Clostres1, Christophe Penno1,2, Abdelhak El-Amrani1
1Univ Rennes, CNRS, ECOBIO - UMR 6553, Rennes 35000, France.
Abstract:
The partners of an ecological association tend to copy the biological system of their hosts. We hypothesized that microorganisms, particularly pathogens, have acquired the ability to express short peptides (pathoPEPs) homologous to host miPEPs, thus modulating the expression of the corresponding host microRNA (miRNA) and the function of miRNA-targeted genes. The pathosystem involving interactions between Brassica napus and its pathogen Plasmodiophora brassicae was studied. The data set contains RNA-seq and ribosomal profiling from two plant genotypes inoculated with one pathogen isolate. Using in silico analysis, we identified three putative pathoPEPs produced by P. brassicae and their targeted plant miRNA genes. A link between the level of infection of B. napus by P. brassicae and the expression of pathoPEPs and their targeted miRNA genes was found, with the expression of the latter two being inversely related. Finally, we identified differential expression and translation of genes predicted to be targets of pathoPEP-regulated miRNAs. These genes, involved in auxin pathway, immune defense, root architecture, or carbohydrate metabolism, are thought to enable P. brassicae, through its pathoPEPs, to hijack plant's metabolic pathways (e.g., hormonal pathways, sugar synthesis, root morphology), thereby facilitating its invasion. Using in silico approaches, the involvement of miPEPs from this host-pathogen system as a host post-transcriptional regulatory pathway is described herein for the first time.
Insights
Pathogens like Plasmodiophora brassicae produce small peptides (pathoPEPs) that mimic host peptides, altering microRNA (miRNA) regulation in plants such as Brassica napus to facilitate infection. This study reveals a novel host-pathogen interaction mechanism.
Area of Science:
- Plant pathology
- Molecular biology
- Microbial genetics
Background:
- Ecological associations often involve mimicry between hosts and symbionts.
- Microorganisms, especially pathogens, may evolve to express peptides that interfere with host regulatory systems.
Purpose of the Study:
- To investigate if pathogens express peptides (pathoPEPs) mimicking host microRNA peptides (miPEPs).
- To determine if these pathoPEPs modulate host microRNA (miRNA) expression and target genes in the Brassica napus-Plasmodiophora brassicae pathosystem.
Main Methods:
- Utilized RNA sequencing and ribosomal profiling on two plant genotypes inoculated with P. brassicae.
- Performed in silico analysis to identify putative pathoPEPs and their targeted plant miRNA genes.
- Analyzed the correlation between infection levels, pathoPEP expression, and miRNA gene expression.
Main Results:
- Identified three putative pathoPEPs from P. brassicae targeting specific B. napus miRNA genes.
- Found an inverse relationship between pathoPEP/miRNA gene expression and P. brassicae infection levels.
- Observed differential expression and translation of genes regulated by pathoPEP-modulated miRNAs, impacting plant pathways.
Conclusions:
- PathoPEPs from P. brassicae can hijack host metabolic pathways, including hormonal and immune responses, via miRNA regulation.
- This represents a novel mechanism for pathogens to manipulate host post-transcriptional regulation for invasion.
- The study highlights the role of miPEPs in host-pathogen interactions and plant defense evasion.
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