Bagheri Neda, Chamorro Alejandro, Idili Andrea, Porchetta Alessandro
Department of Sciences and Chemical Technologies, University of Rome, Tor Vergata, Via della Ricerca Scientifica 1, 00133, Rome, Italy.
Angew Chem Int Ed Engl. 2024 Apr 22;63(17):e202319677. doi: 10.1002/anie.202319677. Epub 2024 Feb 28.
The RNA-programmed CRISPR effector protein Cas12a has emerged as a powerful tool for gene editing and molecular diagnostics. However, additional bio-engineering strategies are required to achieve control over Cas12a activity. Here, we show that Toehold Switch DNA hairpins, presenting a rationally designed locked protospacer adjacent motif (PAM) in the loop, can be used to control Cas12a in response to molecular inputs. Reconfiguring the Toehold Switch DNA from a hairpin to a duplex conformation through a strand displacement reaction provides an effective means to modulate the accessibility of the PAM, thereby controlling the binding and cleavage activities of Cas12a. Through this approach, we showcase the potential to trigger downstream Cas12a activity by leveraging proximity-based strand displacement reactions in response to target binding. By utilizing the trans-cleavage activity of Cas12a as a signal transduction method, we demonstrate the versatility of our approach for sensing applications. Our system enables rapid, one-pot detection of IgG antibodies and small molecules with high sensitivity and specificity even within complex matrices. Besides the bioanalytical applications, the switchable PAM-engineered Toehold Switches serve as programmable tools capable of regulating Cas12a-based targeting and DNA processing in response to molecular inputs and hold promise for a wide array of biotechnological applications.
RNA编程的CRISPR效应蛋白Cas12a已成为基因编辑和分子诊断的强大工具。然而,需要额外的生物工程策略来实现对Cas12a活性的控制。在此,我们表明,在环中呈现合理设计的锁定原间隔相邻基序(PAM)的托霍尔德开关DNA发夹可用于响应分子输入来控制Cas12a。通过链置换反应将托霍尔德开关DNA从发夹结构重新配置为双链体构象,提供了一种调节PAM可及性的有效方法,从而控制Cas12a的结合和切割活性。通过这种方法,我们展示了通过利用基于邻近的链置换反应响应靶标结合来触发下游Cas12a活性的潜力。通过利用Cas12a的反式切割活性作为信号转导方法,我们证明了我们的方法在传感应用中的多功能性。我们的系统能够在复杂基质中快速、一锅法检测IgG抗体和小分子,具有高灵敏度和特异性。除了生物分析应用外,可切换PAM工程化的托霍尔德开关作为可编程工具,能够响应分子输入调节基于Cas12a的靶向和DNA加工,并有望用于广泛的生物技术应用。