Chen Jiahui, Chen Qiyao, Li Qinxin, Zhou Jiahuan, Huang Sihui, Wang Dandan, Zhou Xiaoshun, Shao Yong
Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, College of Chemistry and Materials Science, Zhejiang Normal University, Jinhua 321004, Zhejiang, P. R. China.
Anal Chem. 2025 Aug 5;97(30):16313-16320. doi: 10.1021/acs.analchem.5c01820. Epub 2025 Jul 23.
Metal-ion-dependent cleavage-active DNAzymes (caDz) are increasingly utilized in fields of sensing, environmental monitoring, and diagnostics. Currently, screening caDz and programming its cleavage activity rely on the "catalytic beacon" approach needing covalent duplex arm modifications by fluorophores and quenchers (thus named AM-caDz). Although this approach is widely used, the tedious modifications for operation limit its utilization in ordinary laboratories. Furthermore, dehybridization of cleaved substrate strands from DNAzyme strands is needed to signal the cleavage events. Thus, the arm length must meet a compromise to keep AM-caDz at a duplex state for cleavage and ensure a dehybridization state after cleavage for signaling, which is highly susceptible to environmental fluctuation. Herein, we developed fluorescent caDz (F-caDz) that can operate in a label-free and dehybridization-free manner. A fluorogen of hypericin (Hyp) was found to be able to specifically associate with the folding catalytic core of the GR5 caDz, resulting in a turn-on fluorescence (thus named F-caDz). The Pb-mediated cleavage subsequently unfolded the catalytic core and released Hyp but without dehybridization of cleaved substrates. The resultant fluorescence alteration was used to evaluate the cleavage activity of F-caDz. Furthermore, this folding catalytic core association did not affect the final cleavage efficiency but caused a modification in the cleavage kinetics. This F-caDz provides a sensitive and specific method to detect Pb. By finding the appropriate fluorogens, this method can be applied to other caDz. We expect that F-caDz will also provide a convenient approach to regulating the cleavage behavior of caDz.
金属离子依赖性切割活性DNA酶(caDz)在传感、环境监测和诊断领域的应用越来越广泛。目前,筛选caDz并对其切割活性进行编程依赖于“催化信标”方法,该方法需要通过荧光团和猝灭剂对双链臂进行共价修饰(因此称为AM-caDz)。尽管这种方法被广泛使用,但操作过程中繁琐的修饰限制了其在普通实验室中的应用。此外,需要将切割后的底物链与DNA酶链解杂交来指示切割事件。因此,臂长必须进行折衷,以保持AM-caDz处于双链状态以便切割,并确保切割后处于解杂交状态以进行信号传递,这对环境波动高度敏感。在此,我们开发了一种可以以无标记、无解杂交方式运行的荧光caDz(F-caDz)。发现金丝桃素(Hyp)荧光团能够特异性地与GR5 caDz的折叠催化核心结合,从而产生开启荧光(因此称为F-caDz)。随后,Pb介导的切割使催化核心展开并释放Hyp,但切割后的底物没有解杂交。产生的荧光变化用于评估F-caDz的切割活性。此外,这种折叠催化核心结合并不影响最终的切割效率,但会导致切割动力学发生改变。这种F-caDz提供了一种灵敏且特异的检测Pb的方法。通过找到合适的荧光团,该方法可应用于其他caDz。我们期望F-caDz也将为调节caDz的切割行为提供一种便捷的方法。