VIPR RNA-guided DNA recognition by noncontiguous geometric triplex formation

Viral interference programmable repeat (VIPR) systems use a noncontiguous code for RNA-guided transcriptional silencing. How the Vipr protein and a VIPR RNA (vrRNA) comprising alternating GGY and NN segments achieve precise DNA targeting is unknown. Here, we present 21 cryo-electron microscopy structures that help explain the mechanism of target engagement. Vipr protomers oligomerize along the vrRNA to form a right-handed helical filament, sequestering each GGY motif and positioning the adjacent NN bases for target base pairing. DNA binding, in which every third nucleotide is skipped, results in a gapped vrRNA-DNA hybrid helix that encircles the nontarget DNA strand to form a geometric triplex. These findings suggest that triplex-mediated target-strand handoff could enable noncontiguous and programmable RNA-guided DNA recognition in VIPR systems.

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Publication Details

Journal
Science
Published
2026-09-17
DOI
https://doi.org/10.1126/science.aei3472
Citations
2
Primary Topic
DNA and Nucleic Acid Chemistry
Type
article
Field-Weighted Citation Impact
5.45

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article

VIPR RNA-guided DNA recognition by noncontiguous geometric triplex formation

Owen T. Tuck, Trevor Docter, Zeyuan Zhang, Stephen G. Brohawn et al.
2 citations
Science
DNA and Nucleic Acid Chemistry
5.45
article

VIPR RNA-guided DNA recognition by noncontiguous geometric triplex formation

Owen T. Tuck, Trevor Docter, Zeyuan Zhang, Stephen G. Brohawn, Jennifer A. Doudna, Santiago C. Lopez, Peter H. Yoon, Kenneth J. Loi, Luis E. Valentin-Alvarado
article en
2 citations

Abstract

Viral interference programmable repeat (VIPR) systems use a noncontiguous code for RNA-guided transcriptional silencing. How the Vipr protein and a VIPR RNA (vrRNA) comprising alternating GGY and NN segments achieve precise DNA targeting is unknown. Here, we present 21 cryo-electron microscopy structures that help explain the mechanism of target engagement. Vipr protomers oligomerize along the vrRNA to form a right-handed helical filament, sequestering each GGY motif and positioning the adjacent NN bases for target base pairing. DNA binding, in which every third nucleotide is skipped, results in a gapped vrRNA-DNA hybrid helix that encircles the nontarget DNA strand to form a geometric triplex. These findings suggest that triplex-mediated target-strand handoff could enable noncontiguous and programmable RNA-guided DNA recognition in VIPR systems.

ScienceVol. 393(6817)
QB3 (US), Gladstone Institutes (US), Howard Hughes Medical Institute (US), Lawrence Berkeley National Laboratory (US), University of California, San Francisco (US), Innovative Genomics Institute (US), University of California, Berkeley (US)
National Science Foundation
Openalex Percentile: Top 4%
DNA and Nucleic Acid Chemistry
5.45
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VIPR RNA-guided DNA recognition by noncontiguous geometric triplex formation — Owen T. Tuck, Trevor Docter, et al. · Science (2026) | TGRS Research Map | TGRS