Supramolecular Interactions Modulate RNA:DNA Folding Observed via Nanopore Sensing

T Thieme T. Schmidt (Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK) M Max K. Earle (Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK) G Gerardo Patiño‐Guillén (Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK) Y Yunxuan Li R Raluca‐Elena Alexii (Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK) J Jeremy J. Baumberg U Ulrich F. Keyser C Casey M. Platnich

Abstract

Abstract DNA and RNA nanotechnology enables the precise assembly of molecular architectures, with applications in bioengineering, supramolecular chemistry, and sensing. The material properties of these biopolymers can be adjusted covalently or, more simply, through non‐covalent interactions with small molecules. Herein, we demonstrate the use of urea, an abundant and inexpensive small molecule, to modulate the stiffness of RNA:DNA hybrid nanostructures. Our results suggest that supramolecular interactions between urea and the A‐form‐like helix rigidify the hybrid polymers, as evidenced by both solid‐state nanopore measurements and atomic force microscopy. Nanopore sensing reveals that preparing topologically‐barcoded RNA:DNA hybrids in urea results in a 50% reduction in folded translocations. This decrease in folded events improves the proportion of useable data points, paving the way for the robust detection of low‐abundance RNA analytes at the single‐molecule level.

Article Details

Volume / Issue Vol. 64, Issue 45
Published November 03, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

T

Thieme T. Schmidt

Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK

M

Max K. Earle

Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK

G

Gerardo Patiño‐Guillén

Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK

Y

Yunxuan Li

R

Raluca‐Elena Alexii

Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0US UK

J

Jeremy J. Baumberg

U

Ulrich F. Keyser

C

Casey M. Platnich