Small Molecule‐Inducible and Photoactivatable Cellular RNA N1‐Methyladenosine Editing
N1‐methyladenosine (m1A) modification is one of the most prevalent epigenetic modifications on RNA. Given the vital role of m1A modification in RNA processing such as splicing, stability and translation, developing a precise and controllable m1A editing tool is pivotal for in‐depth investigating the...
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Veröffentlicht in: | Angewandte Chemie International Edition 2024-06, Vol.63 (26), p.e202320029-n/a |
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Zusammenfassung: | N1‐methyladenosine (m1A) modification is one of the most prevalent epigenetic modifications on RNA. Given the vital role of m1A modification in RNA processing such as splicing, stability and translation, developing a precise and controllable m1A editing tool is pivotal for in‐depth investigating the biological functions of m1A. In this study, we developed an abscisic acid (ABA)‐inducible and reversible m1A demethylation tool (termed AI‐dm1A), which targets specific transcripts by combining the chemical proximity‐induction techniques with the CRISPR/dCas13b system and ALKBH3. We successfully employed AI‐dm1A to selectively demethylate the m1A modifications at A8422 of MALAT1 RNA, and this demethylation process could be reversed by removing ABA. Furthermore, we validated its demethylation function on various types of cellular RNAs including mRNA, rRNA and lncRNA. Additionally, we used AI‐dm1A to specifically demethylate m1A on ATP5D mRNA, which promoted ATP5D expression and enhanced the glycolysis activity of tumor cells. Conversely, by replacing the demethylase ALKBH3 with methyltransferase TRMT61A, we also developed a controllable m1A methylation tool, namely AI‐m1A. Finally, we caged ABA by 4,5‐dimethoxy‐2‐nitrobenzyl (DMNB) to achieve light‐inducible m1A methylation or demethylation on specific transcripts. Collectively, our m1A editing tool enables us to flexibly study how m1A modifications on specific transcript influence biological functions and phenotypes.
This study combines the CRISPR/dCas13b and chemical induced proximity (CIP) techniques to develop a small molecule‐induced photo‐controllable m1A demethylation editing tool (termed AI‐dm1A) as well as an m1A methylation editing tool (termed AI‐m1A). These m1A editing tools are able to regulate the biological function of targeted RNAs by modulating m1A modifications, which in turn influences cell functions. |
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ISSN: | 1433-7851 1521-3773 1521-3773 |
DOI: | 10.1002/anie.202320029 |