Tandem RNA-binding domain architecture drives PKR activation through an intramolecular interface

Tandem repeats of RNA-binding domains (RBDs), often linked by intrinsically disordered sequences, are prevalent among RNA-binding proteins (RBPs). The inherent flexibility of these arrangements, however, raises the question of whether such domains can adopt defined configurations critical for function. Here, we reveal that in Protein Kinase R (PKR)—an RBP that triggers the innate immune response upon sensing double-stranded RNAs (dsRNAs)—its two dsRNA-binding domains (dsRBDs) assemble into a unique architecture through intramolecular interactions. This dsRBD1:dsRBD2 interface allows PKR to convert diffusive, transient contacts with RNA into a stabilized complex on the duplex, establishing a scaffold required for downstream protein dimerization and phosphorylation. Disrupting this dsRBD1:dsRBD2 interface dismantles the tandem dsRBD architecture and severely impairs PKR activity both in vitro and in cells. Together, these findings uncover an exceptional advantage of the tandem dsRBD arrangement and underscore intramolecular RBD coupling as a mechanism for regulating RBP activity.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-30
DOI
https://doi.org/10.1073/pnas.2605220123
Primary Topic
RNA regulation and disease
Type
article
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article

Tandem RNA-binding domain architecture drives PKR activation through an intramolecular interface

Yi-Feng Xu, Jiaquan Liu, Ming Rao, Chong Han et al.
Proceedings of the National Academy of Sciences
RNA regulation and disease
article

Tandem RNA-binding domain architecture drives PKR activation through an intramolecular interface

Yi-Feng Xu, Jiaquan Liu, Ming Rao, Chong Han, Ling‐Ling Chen, Shao-Qing Zhang, Chen Li
article en

Abstract

Tandem repeats of RNA-binding domains (RBDs), often linked by intrinsically disordered sequences, are prevalent among RNA-binding proteins (RBPs). The inherent flexibility of these arrangements, however, raises the question of whether such domains can adopt defined configurations critical for function. Here, we reveal that in Protein Kinase R (PKR)—an RBP that triggers the innate immune response upon sensing double-stranded RNAs (dsRNAs)—its two dsRNA-binding domains (dsRBDs) assemble into a unique architecture through intramolecular interactions. This dsRBD1:dsRBD2 interface allows PKR to convert diffusive, transient contacts with RNA into a stabilized complex on the duplex, establishing a scaffold required for downstream protein dimerization and phosphorylation. Disrupting this dsRBD1:dsRBD2 interface dismantles the tandem dsRBD architecture and severely impairs PKR activity both in vitro and in cells. Together, these findings uncover an exceptional advantage of the tandem dsRBD arrangement and underscore intramolecular RBD coupling as a mechanism for regulating RBP activity.

Proceedings of the National Academy of SciencesVol. 123(40)
Shanghai Jiao Tong University (CN), Center for Excellence in Molecular Cell Science (CN)
Openalex Percentile: Top 19%
RNA regulation and disease
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Tandem RNA-binding domain architecture drives PKR activation through an intramolecular interface — Yi-Feng Xu, Jiaquan Liu, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS