Genetically engineered RNA inducers of proximity for protein regulation

Current genetic engineering technology that based on complementary base pairing for target recognition is a powerful tool to control protein expression at DNA or RNA levels. Nonetheless, limited research has utilized genetic strategies to directly manipulate proteins. To address this gap, we have developed a method of genetically engineered RNA inducers of proximity (GENRIP), one strategy that leverages RNA structure-dependent protein recognition to precisely regulate protein activity. GENRIP is a modular and bifunctional RNA comprising two kinds of motifs: a conserved RNA motif that recruits endogenous RNA-binding enzymes for protein modification, and a variable motif responsible for recognizing different proteins of interest (POIs). By inducing proximity between effector enzymes and POIs, GENRIP enables precise post-translational modification of POIs. Using the RNA-binding E3 ligase MEX3A and RNA-binding kinase CamK as model effectors, we have demonstrated its capability to achieve ubiquitination-mediated degradation and phosphorylation-induced activation of POI, respectively. Furthermore, GENRIP offers superior advantages in modularity, programmability, precise subcellular localization targeting, and cell-type selectivity. This approach represents a paradigm shift in genetic engineering, holding profound implications in the field of post-translational protein regulation. Current genetic engineering techniques enable protein modulation at the DNA/RNA levels. Here, the authors design an RNA platform to bring target protein and effector enzyme into proximity, realizing direct protein regulation.

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Publication Details

Journal
Nature Communications
Published
2026-10-06
DOI
https://doi.org/10.1038/s41467-026-78162-z
Primary Topic
RNA Research and Splicing
Type
article
Field-Weighted Citation Impact
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article

Genetically engineered RNA inducers of proximity for protein regulation

王文喜, Sitao Xie, Baoyin Liu, Xiaohong Fang et al.
Nature Communications
RNA Research and Splicing
article

Genetically engineered RNA inducers of proximity for protein regulation

王文喜, Sitao Xie, Baoyin Liu, Xiaohong Fang, Lubin Qi, Na Xu, Wei Zhou, Ruibin Jiang, Wang Jia, Yifei Jiang, Xin Lai, Yuxin Liang
article en

Abstract

Current genetic engineering technology that based on complementary base pairing for target recognition is a powerful tool to control protein expression at DNA or RNA levels. Nonetheless, limited research has utilized genetic strategies to directly manipulate proteins. To address this gap, we have developed a method of genetically engineered RNA inducers of proximity (GENRIP), one strategy that leverages RNA structure-dependent protein recognition to precisely regulate protein activity. GENRIP is a modular and bifunctional RNA comprising two kinds of motifs: a conserved RNA motif that recruits endogenous RNA-binding enzymes for protein modification, and a variable motif responsible for recognizing different proteins of interest (POIs). By inducing proximity between effector enzymes and POIs, GENRIP enables precise post-translational modification of POIs. Using the RNA-binding E3 ligase MEX3A and RNA-binding kinase CamK as model effectors, we have demonstrated its capability to achieve ubiquitination-mediated degradation and phosphorylation-induced activation of POI, respectively. Furthermore, GENRIP offers superior advantages in modularity, programmability, precise subcellular localization targeting, and cell-type selectivity. This approach represents a paradigm shift in genetic engineering, holding profound implications in the field of post-translational protein regulation. Current genetic engineering techniques enable protein modulation at the DNA/RNA levels. Here, the authors design an RNA platform to bring target protein and effector enzyme into proximity, realizing direct protein regulation.

Nature Communications
University of Science and Technology of China (CN), Hefei University of Technology (CN), Chinese Academy of Sciences (CN), Zhejiang Cancer Hospital (CN), Zhejiang Institute of Special Equipment Inspection (CN), Institute of Chemistry (CN), Hangzhou Institute of Medicine, Chinese Academy of Sciences (CN)
Openalex Percentile: Top 22%
RNA Research and Splicing
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