Controlling DNA–RNA strand displacement kinetics with base distribution

E Eryk J. Ratajczyk (Department of Physics, Rudolf Peierls Centre for Theoretical Physics) J Jonathan Bath (Department of Physics) P Petr Šulc (School of Molecular Sciences) J Jonathan P. K. Doye (Department of Chemistry) A Ard A. Louis (Department of Physics, Rudolf Peierls Centre for Theoretical Physics) A Andrew J. Turberfield (Department of Physics)

Abstract

DNA–RNA hybrid strand displacement underpins the function of many natural and engineered systems. Understanding and controlling factors affecting DNA–RNA strand displacement reactions is necessary to enable control of processes such as CRISPR-Cas9 gene editing. By combining multiscale modeling with strand displacement experiments, we show that the distribution of bases within the displacement domain has a very strong effect on reaction kinetics, a feature unique to DNA–RNA hybrid strand displacement. Merely by redistributing bases within a displacement domain of fixed base composition, we are able to design sequences whose reaction rates span more than four orders of magnitude. We extensively characterize this effect in reactions involving the invasion of dsDNA by an RNA strand, as well as the invasion of a hybrid duplex by a DNA strand. In all-DNA strand displacement reactions, we find a predictable but relatively weak sequence dependence, confirming that DNA–RNA strand displacement permits far more thermodynamic and kinetic control than its all-DNA counterpart. We show that oxNA, a recently introduced coarse-grained model of DNA–RNA hybrids, can reproduce trends in experimentally observed reaction rates. We also develop a simple kinetic model for predicting strand displacement rates. On the basis of these results, we argue that base distribution effects may play an important role in natural R-loop formation and in the function of the guide RNAs that direct CRISPR-Cas systems.

Article Details

Volume / Issue Vol. 122, Issue 23
Published June 10, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

E

Eryk J. Ratajczyk

Department of Physics, Rudolf Peierls Centre for Theoretical Physics

J

Jonathan Bath

Department of Physics

P

Petr Šulc

School of Molecular Sciences

J

Jonathan P. K. Doye

Department of Chemistry

A

Ard A. Louis

Department of Physics, Rudolf Peierls Centre for Theoretical Physics

A

Andrew J. Turberfield

Department of Physics