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April 17, 2026Nature3 citationsOpen Access

Molecular basis for methylation-sensitive editing by Cas9

MRMitchell O. RothYSYuerong ShuYZYu Zhao

Key Points

  • To explore the functionality of methylation-sensitive Cas9 (ThermoCas9) in genome editing by understanding its binding interactions with methylated DNA.
  • Performed biochemical assays to assess binding and cleavage activity of ThermoCas9 on different PAM sequences.
  • Utilized cryo-electron microscopy to determine structures of ThermoCas9 in pre-cleavage and post-cleavage states.
  • Demonstrated methylation-sensitive editing capabilities in human cell lines, especially those with distinct DNA methylation patterns.
  • ThermoCas9 showed reduced activity upon methylation of the fifth cytosine in PAM sequences.
  • Cryo-EM revealed structural insights into the binding mechanism of unmethylated PAM sequences.
  • The enzyme effectively targeted hypomethylated luminal expression signature genes in breast cancer cells.

Abstract

The bacterial CRISPR–Cas9 (Cas9) nuclease has become a powerful genome manipulation tool for a wide range of organisms1–3. However, it has yet to fully leverage the pervasive presence of DNA methylation in genomes4–10. Here, to fill this gap, we report biochemical, structural and human genome-editing characterizations of a methylation-sensitive Cas9 (ThermoCas9). ThermoCas9 efficiently binds to and cleaves DNA upstream of its protospacer adjacent motif (PAM) 5′-NNNNCGA-3′ or 5′-NNNNCCA-3′ in vitro. Methylation of the fifth cytosine in either PAM sequence (5mCpG or 5mCpC), however, significantly inhibits ThermoCas9 activity. Cryo-electron microscopy structures of ThermoCas9 in pre-cleavage and post-cleavage states at 2.8 Å and 2.2 Å resolution, respectively, reveal the molecular basis for the stringent requirement of the unmethylated cytosine in PAM binding and provide guidance for further enzyme engineering. We demonstrate methylation-sensitive editing by ThermoCas9 in human cell lines with distinct DNA methylation landscapes. Moreover, we demonstrate that a catalytically enhanced ThermoCas9 efficiently targets luminal expression signature genes that are consistently hypomethylated in patients with breast cancer. Owing to its sensitivity to DNA methylation, ThermoCas9 can specifically target cells with disease-related hypomethylation, which adds another layer of precision to genome-editing technologies. ThermoCas9, a genome-editing enzyme that is sensitive to the DNA methylation status of the target locus, is characterized and shows promise for targeting hypomethylated DNA regions in cancer cells.

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Cite This Study

Roth et al. (2026) studied this question.

synapsesocial.com/papers/69e1cfcb5cdc762e9d858c0fhttps://doi.org/10.1038/s41586-026-10384-z
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