Specific and efficient translation inhibition–transcription activation resistance module against viruses in plants

Positive-sense RNA viruses using subgenomic RNAs (sgRNAs) cause severe crop losses, yet this conserved feature has rarely been exploited for antiviral engineering. Here, we constructed a virus-activated synthetic immune circuit, wherein viral sgRNA production drives host defense responses via a translation inhibition–transcription activation (TI-TA) module. An optimized translational repression element (dsBC) minimized basal expression while enabling virus-specific activation of resistance-inducing proteins (RIPs) by cognate viral sgRNA promoters. This circuit functioned against three major sgRNA-producing viruses—pepino mosaic virus (PepMV), tobacco mosaic virus (TMV), and cucumber mosaic virus (CMV)—in Nicotiana benthamiana , tomato, and Arabidopsis thaliana , with cross-resistance to related viruses. RIP expression was strictly triggered by viral infection, conferring robust resistance without detectable growth penalties. This programmable strategy provides a versatile platform for engineering resistance against diverse sgRNA-producing RNA viruses and offers a conceptual framework for developing synthetic antiviral immunity in plants.

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Publication Details

Journal
Science Advances
Published
2026-09-25
DOI
https://doi.org/10.1126/sciadv.aeg0007
Primary Topic
Plant Virus Research Studies
Type
article
Field-Weighted Citation Impact
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article

Specific and efficient translation inhibition–transcription activation resistance module against viruses in plants

Xueping Zhou, Fangfang Li, Xinxin Yang, Zhaolei Li et al.
Science Advances
Plant Virus Research Studies
article

Specific and efficient translation inhibition–transcription activation resistance module against viruses in plants

Xueping Zhou, Fangfang Li, Xinxin Yang, Zhaolei Li, Ziyan Xu, Hao He, Jing Zhang, Yuan Chen, Ruobin Lu
article en

Abstract

Positive-sense RNA viruses using subgenomic RNAs (sgRNAs) cause severe crop losses, yet this conserved feature has rarely been exploited for antiviral engineering. Here, we constructed a virus-activated synthetic immune circuit, wherein viral sgRNA production drives host defense responses via a translation inhibition–transcription activation (TI-TA) module. An optimized translational repression element (dsBC) minimized basal expression while enabling virus-specific activation of resistance-inducing proteins (RIPs) by cognate viral sgRNA promoters. This circuit functioned against three major sgRNA-producing viruses—pepino mosaic virus (PepMV), tobacco mosaic virus (TMV), and cucumber mosaic virus (CMV)—in Nicotiana benthamiana , tomato, and Arabidopsis thaliana , with cross-resistance to related viruses. RIP expression was strictly triggered by viral infection, conferring robust resistance without detectable growth penalties. This programmable strategy provides a versatile platform for engineering resistance against diverse sgRNA-producing RNA viruses and offers a conceptual framework for developing synthetic antiviral immunity in plants.

Science AdvancesVol. 12(39)
Zhejiang A & F University (CN), Westlake University (CN), Institute of Plant Protection (CN), Chinese Academy of Agricultural Sciences (CN), China National Rice Research Institute (CN), Zhejiang University (CN)
Good health and well-being
Openalex Percentile: Top 13%
Plant Virus Research Studies
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Specific and efficient translation inhibition–transcription activation resistance module against viruses in plants — Xueping Zhou, Fangfang Li, et al. · Science Advances (2026) | TGRS Research Map | TGRS