Department of Life Science Frontiers, Center for iPS Cell Research and Application, Kyoto University, 53 Kawahara-cho, Shogoin, Sakyo-ku, Kyoto, 606-8507, Japan.
Graduate School of Medicine, Kyoto University, Yoshida-Konoe-cho, Sakyo-ku, Kyoto, 606-8501, Japan.
Nat Commun. 2023 Apr 19;14(1):2243. doi: 10.1038/s41467-023-37540-7.
Translational modulation based on RNA-binding proteins can be used to construct artificial gene circuits, but RNA-binding proteins capable of regulating translation efficiently and orthogonally remain scarce. Here we report CARTRIDGE (Cas-Responsive Translational Regulation Integratable into Diverse Gene control) to repurpose Cas proteins as translational modulators in mammalian cells. We demonstrate that a set of Cas proteins efficiently and orthogonally repress or activate the translation of designed mRNAs that contain a Cas-binding RNA motif in the 5'-UTR. By linking multiple Cas-mediated translational modulators, we designed and built artificial circuits like logic gates, cascades, and half-subtractor circuits. Moreover, we show that various CRISPR-related technologies like anti-CRISPR and split-Cas9 platforms could be similarly repurposed to control translation. Coupling Cas-mediated translational and transcriptional regulation enhanced the complexity of synthetic circuits built by only introducing a few additional elements. Collectively, CARTRIDGE has enormous potential as a versatile molecular toolkit for mammalian synthetic biology.
基于 RNA 结合蛋白的翻译调控可用于构建人工基因回路,但能够高效且正交调控翻译的 RNA 结合蛋白仍然稀缺。在这里,我们报告了 CARTRIDGE(Cas 响应性翻译调控可整合到不同基因控制中),将 Cas 蛋白重新用作哺乳动物细胞中的翻译调节剂。我们证明了一组 Cas 蛋白能够高效且正交地抑制或激活包含在 5'UTR 中 Cas 结合 RNA 基序的设计 mRNA 的翻译。通过连接多个 Cas 介导的翻译调节剂,我们设计并构建了人工电路,如逻辑门、级联和半减法器电路。此外,我们表明,各种 CRISPR 相关技术,如抗 CRISPR 和分裂 Cas9 平台,也可以被类似地重新用于控制翻译。Cas 介导的转录和翻译调控的结合增强了仅通过引入几个额外元件构建的合成回路的复杂性。总之,CARTRIDGE 作为哺乳动物合成生物学的多功能分子工具包具有巨大的潜力。