Skip to content
Open access

A conserved small RNA-generating gene cluster undergoes sequence diversification and contributes to plant immunity

Aug 2026 · Nature Communications · 1 citation

TL;DR

It is reported that siRNA production is an ancient function of a conserved clade of a conserved clade of PPR genes that undergo extensive within-species diversification and accumulation of high-impact variations including pseudogenization, leading to the accumulation of a diverse siRNA pool.

Abstract

Small RNA-mediated gene silencing contributes to plant immunity. The secondary small interfering RNA (siRNA) pathway promotes defense by silencing target genes in invading fungal and oomycete pathogens. Many secondary siRNAs are derived from transcripts potentially encoding pentatricopeptide repeat (PPR) proteins. Here, we report that siRNA production is an ancient function of a conserved clade of PPR genes that undergo extensive within-species diversification. In Arabidopsis thaliana , siRNA-source PPR s are physically clustered on Chromosome 1. These sequences are diversified through gene duplication followed by sequence diversification and accumulation of high-impact variations including pseudogenization, leading to the accumulation of a diverse siRNA pool. These features are consistent with the engagement of PPR -siRNAs in a co-evolutionary arms race with the pathogens. This study defines siRNA-producing PPR s as a class of defense genes and highlights the potential of PPR -siRNA-based engineering as a strategy to enhance disease resistance.

Read PDF

Similar papers

Open access Aug 2026

Potential for gene silencing by piwi-interacting RNA in three lepidopterans

The piwi-interacting RNA (piRNA) pathway is investigated as an alternative, mechanistically distinct gene silencing system in Spodoptera frugiperda, Plutella xylostella, and Cydia pomonella to provide a mechanistic and design framework for next-generation RNA-based biopesticides.

Santosh Poudel, Kevin Quito, Mosharrof Mondal et al. · 0 citations
Open access Aug 2026

Virus-induced gene silencing as a tool for functional genomics in weeds: Challenges and future directions

Virus-induced gene silencing provides a tractable approach to investigate genes associated with herbicide resistance, metabolic adaptation, and stress tolerance and highlights VIGS as a versatile biotechnology for elucidating gene function and supporting next-generation strategies in plant improvement and integrated pe...

É. F. Capelari, Márcia Margis-Pinheiro, A. Merotto et al. · 0 citations
Open access Sep 2026

Protein-independent regulation by transgene-derived small interfering RNAs rewires endogenous regulatory networks to enhance plant growth, architecture, and drought performance

These findings show that transgene-derived siRNAs act independently of protein function to rewire endogenous regulatory networks, providing a potential strategy to optimize crop architecture and yield.

Gustavo J. Vannay, Joaquín E. García, J. Murguia et al. · 0 citations
Open access Aug 2026

Botrytis virus X ORF2 suppresses RNA silencing in a trigger-restricted manner and is associated with altered Dicer-like gene expression in Botrytis cinerea

This study identifies Botrytis virus X (BVX) ORF2 (X2) as a trigger-restricted suppressor that enhances GFP accumulation in plant-based assays initiated by sense RNA but does not suppress silencing initiated by defined hairpin-derived siRNA or miRNA-guided pathways.

Fayruza Lalany, Sarah C. Drury, M. Fall et al. · 0 citations
Open access Sep 2026

Multiple Argonaute complexes orchestrate epigenetic silencing in the Arabidopsis germline

Small RNAs (sRNAs) are widespread across diverse flowering plant species and play important roles regulating reproduction and environmental responses. However, how sRNAs exert their function is largely unknown, likely due to their typical origin in non-genic regions, the lack of distinct gene targets, and the spars...

Jin-Cheng Long, Chao Yang, Shu-Juan Xu et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.