Department of Biomedical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing, 211106, P. R. China.
Department of Pharmacology, Physiology, and Cancer Biology, Sidney Kimmel Cancer Center, Thomas Jefferson University, Philadelphia, Pennsylvania, 19107, USA.
Adv Sci (Weinh). 2023 May;10(14):e2207357. doi: 10.1002/advs.202207357. Epub 2023 Mar 13.
Adenosine-to-inosine RNA editing critically affects the response of cancer therapies. However, comprehensive identification of drug resistance-related RNA editing events and systematic understanding of how RNA editing mediates anticancer drug resistance remain unclear. Here, 7157 differential editing sites (DESs) are identified from 98 127 informative RNA editing sites in tumor tissues, many of which are validated in cancer cell lines. Diverse editing patterns of DESs are discovered in resistant samples, which could not be fully explained by adenosine deaminase acting on RNA enzymes. Some RNA-binding proteins are identified that potentially regulate these editing events. Notably, the DESs are significantly enriched in 3'-untranslated regions (3'-UTRs). The impact of DESs in 3'-UTR on the microRNA (miRNA) regulations is explored, and some triplets (DES, miRNA, and gene) that may contribute to drug resistance are identified. In addition, it is determined that the functions of genes enriched with DESs are associated with drug resistance, such as apoptosis, drug metabolism, and DNA synthesis involved in DNA repair. An online resource (http://www.jianglab.cn/REDR/) to support convenient retrieval of DESs is also built. The findings reveal the landscape and potential regulatory mechanism of RNA editing in drug resistance, providing new therapeutic targets for reversing drug resistance.
腺嘌呤到肌苷的 RNA 编辑对癌症治疗的反应有重大影响。然而,药物耐药相关的 RNA 编辑事件的全面鉴定以及 RNA 编辑如何介导抗癌药物耐药性的系统理解仍不清楚。在这里,从肿瘤组织中的 98,127 个有意义的 RNA 编辑位点中鉴定出了 7157 个差异编辑位点 (DESs),其中许多在癌细胞系中得到了验证。在耐药样本中发现了 DESs 的不同编辑模式,这不能完全用 RNA 酶作用的腺苷脱氨酶来解释。鉴定出了一些可能调节这些编辑事件的 RNA 结合蛋白。值得注意的是,DESs 在 3'-非翻译区 (3'-UTR) 中显著富集。探索了 DESs 在 3'-UTR 对 microRNA (miRNA) 调控的影响,并鉴定出了一些可能导致耐药性的三联体 (DES、miRNA 和基因)。此外,确定了富含 DESs 的基因的功能与耐药性相关,如涉及 DNA 修复的细胞凋亡、药物代谢和 DNA 合成。还构建了一个支持方便检索 DESs 的在线资源 (http://www.jianglab.cn/REDR/)。这些发现揭示了 RNA 编辑在耐药性中的景观和潜在调控机制,为逆转耐药性提供了新的治疗靶点。