A binding-activated CRISPR/dCas13X imaging system enables precise RNA tracking in plants

Visualizing the spatiotemporal dynamics of native RNA molecules with single-transcript-level sensitivity in living plant cells remains a formidable challenge due to the high background noise caused by the unique cellular architecture of plants. Here, using transiently transformed Nicotiana benthamiana cells and stable Arabidopsis thaliana lines, we present a high-signal-to-noise RNA imaging platform that couples CRISPR–dCas13X with a binding-associated fluorescence stabilization strategy. We identified a novel plant-specific degron that selectively targets unbound probes for proteasomal degradation while preserving target-associated signal in a manner consistent with binding-dependent protection, enabling high-fidelity detection of endogenous mRNA puncta with minimal perturbation. Leveraging this platform, we characterized dynamics of FT mRNA trafficking in living plant cells, including plasmodesmata-targeting, cell-to-cell trafficking, and long-distance movement. Loss-of-function analysis further identified the established RNA-binding protein GRP7 as a factor that contributes to efficient FT mRNA transport. This work establishes a useful toolkit for investigating plant RNA biology and provides mechanistic insight into the systemic transport of florigenic signals.

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Publication Details

Journal
PLoS Biology
Published
2026-10-06
DOI
https://doi.org/10.1371/journal.pbio.3004043
Primary Topic
Plant Molecular Biology Research
Type
article
Field-Weighted Citation Impact
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article

A binding-activated CRISPR/dCas13X imaging system enables precise RNA tracking in plants

Yucheng Shen, Miaomiao Lei, Jiuyuan Bai, Chenxu Liu et al.
PLoS Biology
Plant Molecular Biology Research
article

A binding-activated CRISPR/dCas13X imaging system enables precise RNA tracking in plants

Yucheng Shen, Miaomiao Lei, Jiuyuan Bai, Chenxu Liu, Yun Zhao, yiran tao, Jiayu Zhang, Qicong Li
article en

Abstract

Visualizing the spatiotemporal dynamics of native RNA molecules with single-transcript-level sensitivity in living plant cells remains a formidable challenge due to the high background noise caused by the unique cellular architecture of plants. Here, using transiently transformed Nicotiana benthamiana cells and stable Arabidopsis thaliana lines, we present a high-signal-to-noise RNA imaging platform that couples CRISPR–dCas13X with a binding-associated fluorescence stabilization strategy. We identified a novel plant-specific degron that selectively targets unbound probes for proteasomal degradation while preserving target-associated signal in a manner consistent with binding-dependent protection, enabling high-fidelity detection of endogenous mRNA puncta with minimal perturbation. Leveraging this platform, we characterized dynamics of FT mRNA trafficking in living plant cells, including plasmodesmata-targeting, cell-to-cell trafficking, and long-distance movement. Loss-of-function analysis further identified the established RNA-binding protein GRP7 as a factor that contributes to efficient FT mRNA transport. This work establishes a useful toolkit for investigating plant RNA biology and provides mechanistic insight into the systemic transport of florigenic signals.

PLoS BiologyVol. 24(10)
Sichuan University (CN)
Openalex Percentile: Top 14%
Plant Molecular Biology Research
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