<p>DNA methylation is a crucial epigenetic mechanism that regulates gene expression. Precise editing of DNA methylation has emerged as a promising tool for dissecting its biological function. However, challenges in delivery have limited most applications of DNA methylation editing to in vitro systems. Here, we develop two transgenic mouse lines harboring an inducible dCas9-DNMT3A or dCas9-TET1 editor to enable tissue-specific DNA methylation editing in vivo. We demonstrate that targeted methylation of the <i>Psck9</i> promoter in the liver of dCas9-DNMT3A mice results in decreased <i>Pcsk9</i> expression and a subsequent reduction in serum low-density lipoprotein cholesterol level. Targeted demethylation of the <i>Mecp2</i> promoter in dCas9-TET1 mice reactivates <i>Mecp2</i> expression from the inactive X chromosome and rescues neuronal nuclear size in <i>Mecp2</i><sup><i>+/-</i></sup> mice. Genome-wide sequencing analyses reveal minimal transcriptional off-targets, demonstrating the specificity of the system. These results demonstrate the feasibility and versatility of methylation editing, to functionally interrogate DNA methylation in vivo.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Editing DNA methylation in vivo

  • Richard Pan,
  • Jingwei Ren,
  • Xinyue Chen,
  • Luis F. Flores,
  • Rachel V. L. Gonzalez,
  • Andre Antonio Adonnino,
  • Brandon Lofts,
  • Jennifer Waldo,
  • Julian Halmai,
  • Orrin Devinsky,
  • Kyle Fink,
  • X. Shawn Liu

摘要

DNA methylation is a crucial epigenetic mechanism that regulates gene expression. Precise editing of DNA methylation has emerged as a promising tool for dissecting its biological function. However, challenges in delivery have limited most applications of DNA methylation editing to in vitro systems. Here, we develop two transgenic mouse lines harboring an inducible dCas9-DNMT3A or dCas9-TET1 editor to enable tissue-specific DNA methylation editing in vivo. We demonstrate that targeted methylation of the Psck9 promoter in the liver of dCas9-DNMT3A mice results in decreased Pcsk9 expression and a subsequent reduction in serum low-density lipoprotein cholesterol level. Targeted demethylation of the Mecp2 promoter in dCas9-TET1 mice reactivates Mecp2 expression from the inactive X chromosome and rescues neuronal nuclear size in Mecp2+/- mice. Genome-wide sequencing analyses reveal minimal transcriptional off-targets, demonstrating the specificity of the system. These results demonstrate the feasibility and versatility of methylation editing, to functionally interrogate DNA methylation in vivo.