Department of Life Science Frontiers, Center for iPS Cell Research and Application, Kyoto University, 53 Kawahara-Cho, Shogoin, Sakyo-Ku, Kyoto, 606-8507, Japan.
Department of Biofunction Research, Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University (TMDU), 2-3-10 Kanda-Surugadai, Chiyoda-ku, Tokyo, 101-0062, Japan.
Nat Commun. 2020 Mar 10;11(1):1297. doi: 10.1038/s41467-020-15061-x.
Synthetic RNA-based gene circuits enable sophisticated gene regulation without the risk of insertional mutagenesis. While various RNA binding proteins have been used for translational repression in gene circuits, the direct translational activation of synthetic mRNAs has not been achieved. Here we develop Caliciviral VPg-based Translational activator (CaVT), which activates the translation of synthetic mRNAs without the canonical 5'-cap. The level of translation can be modulated by changing the locations, sequences, and modified nucleosides of CaVT-binding motifs in the target mRNAs, enabling the simultaneous translational activation and repression of different mRNAs with RNA-only delivery. We demonstrate the efficient regulation of apoptosis and genome editing by tuning translation levels with CaVT. In addition, we design programmable CaVT that responds to endogenous microRNAs or small molecules, achieving both cell-state-specific and conditional translational activation from synthetic mRNAs. CaVT will become an important tool in synthetic biology for both biological studies and future therapeutic applications.
基于合成 RNA 的基因回路可实现复杂的基因调控,而不会有插入突变的风险。虽然已经有各种 RNA 结合蛋白被用于基因回路中的翻译抑制,但尚未实现对合成 mRNA 的直接翻译激活。在这里,我们开发了基于杯状病毒 VPg 的翻译激活子(CaVT),它可以在没有典型 5'-帽的情况下激活合成 mRNA 的翻译。通过改变靶 mRNA 中 CaVT 结合基序的位置、序列和修饰核苷,可调节翻译水平,从而实现不同 mRNA 的 RNA 递呈的同时翻译激活和抑制。我们通过使用 CaVT 调节翻译水平,证明了对细胞凋亡和基因组编辑的高效调控。此外,我们设计了可编程 CaVT,它可响应内源性 microRNA 或小分子,实现源自合成 mRNA 的细胞状态特异性和条件性翻译激活。CaVT 将成为合成生物学中一个重要的工具,可用于生物学研究和未来的治疗应用。