MOE Key Laboratory of Bioinformatics, Center for Synthetic and System Biology, School of Life Sciences, Tsinghua University, Beijing, 100084, China.
Center for Cell and Gene Circuit Design, CAS Key Laboratory of Quantitative Engineering Biology, Shenzhen Institute of Synthetic Biology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, 518055, China.
Nat Commun. 2024 Oct 10;15(1):8768. doi: 10.1038/s41467-024-52962-7.
RNAs and their encoded proteins intricately regulate diverse cell types and states within the human body. Dysregulated RNA expressions or mutations can lead to various diseased cell states, including tumorigenesis. Detecting and manipulating these endogenous RNAs offers significant promise for restoring healthy cell states and targeting tumors both in research and clinical contexts. This study presents an RNA-IN and RNA-OUT genetic circuit capable dynamically sensing and manipulating any RNA target in a programmable manner. The RNA-IN module employes a programmable CRISPR-associated protease (CASP) complex for RNA detection, while the RNA-OUT module utilizes an engineered protease-responsive dCas9-VPR activator. Additionally, the CASP module can detect point mutations by harnessing an uncovered dual-nucleotide synergistic switching effect within the CASP complex, resulting in the amplification of point-mutation signals from initially undetectable levels (1.5-fold) to a remarkable 94-fold. We successfully showcase the circuit's ability to rewire endogenous RNA-IN signals to activate endogenous progesterone biosynthesis pathway, dynamically monitor adipogenic differentiation of mesenchymal stem cells (MSCs) and the epithelial-to-mesenchmal trans-differentiation, as well as selective killing of tumor cells. The programmable RNA-IN and RNA-OUT circuit exhibits tremendous potential for applications in gene therapy, biosensing and design of synthetic regulatory networks.
RNAs 及其编码的蛋白质错综复杂地调节着人体内的各种细胞类型和状态。RNA 表达失调或突变会导致各种病变细胞状态,包括肿瘤发生。检测和操纵这些内源性 RNA 为恢复健康的细胞状态和靶向肿瘤提供了重要的前景,无论是在研究还是临床环境中。本研究提出了一种 RNA-IN 和 RNA-OUT 遗传电路,能够以可编程的方式动态感知和操纵任何 RNA 靶标。RNA-IN 模块采用可编程的 CRISPR 相关蛋白酶(CASP)复合物进行 RNA 检测,而 RNA-OUT 模块则利用工程化的蛋白酶反应性 dCas9-VPR 激活剂。此外,CASP 模块还可以通过利用 CASP 复合物内未被发现的双重核苷酸协同切换效应来检测点突变,从而将点突变信号从最初无法检测到的水平(1.5 倍)放大到惊人的 94 倍。我们成功展示了该电路将内源性 RNA-IN 信号重新布线以激活内源性孕激素生物合成途径的能力,能够动态监测间充质干细胞(MSCs)的成脂分化和上皮间充质转化,以及选择性杀伤肿瘤细胞的能力。可编程的 RNA-IN 和 RNA-OUT 电路在基因治疗、生物传感和合成调控网络设计方面具有巨大的应用潜力。