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March 27, 2026Nature6 citationsOpen Access

Structural basis of supercoiling-induced CRISPR–Cas9 off-target activity

QSQuentin M. SmithSWSylvia WhittleRARicardo Aramayo

Key Points

  • This research aims to understand how negative supercoiling affects CRISPR-Cas9's off-target activity at a molecular level.
  • Utilized negative supercoiling (−)SC DNA minicircles for experimentation.
  • Applied cryo-electron microscopy to visualize Cas9 in both on-target and off-target configurations.
  • Analyzed structural changes and binding conformations of Cas9.
  • Observed structural defects in DNA due to supercoiling, resolved by Cas9 binding.
  • Identified a catalytically competent conformation of the Cas9 HNH domain.
  • Discovered new DNA-RNA mismatch geometries and their dependence on topological context.

Abstract

Abstract CRISPR–Cas9 is a powerful genome-editing tool 1 , but genome-wide off-target activity can hinder therapeutic applications. Negative supercoiling ((−)SC) has been implicated in off-target activity, but a molecular-level understanding is lacking. Here, using (−)SC DNA minicircles, we observe supercoiling-driven structural defects in the DNA that are resolved by Cas9 binding. Cryo-electron microscopy structures of Cas9 bound in both the on-target and off-target configurations highlight that the Cas9 HNH domain is poised in a more catalytically competent conformation. New DNA–RNA mismatch geometries are accommodated across the protospacer and structural plasticity in the protospacer adjacent motif distal region of the protospacer is topology dependent. Together, our study reveals the molecular basis for (−)SC-induced Cas9 targeting and provides a framework for the design of next-generation high-fidelity CRISPR effectors with topological context.

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Cite This Study

Smith et al. (2026) studied this question.

synapsesocial.com/papers/69c61fa915a0a509bde182b3https://doi.org/10.1038/s41586-026-10255-7
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