Li Meng-Yin, Ying Yi-Lun, Li Shuang, Wang Ya-Qian, Wu Xue-Yuan, Long Yi-Tao
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, P.R. China.
Chemistry and Biomedicine Innovation Center, Nanjing University, Nanjing 210023, P.R. China.
ACS Nano. 2020 Oct 27;14(10):12571-12578. doi: 10.1021/acsnano.0c03215. Epub 2020 Aug 7.
The simultaneous occurrence of multiple heterogeneous DNA phosphorylation statuses, which include 5' end phosphorylation, 5' end dephosphorylation, 3' end phosphorylation, and 3' end dephosphorylation, is crucial for regulating numerous cellular processes. Although there are many methods for detecting a single type of DNA phosphorylation, the direct and simultaneous identification of DNA phosphorylation/dephosphorylation on the 5' and/or 3' ends remains a challenge, let alone the unveiling of the heterogeneous catalysis processes of related phosphatases and kinases. Taking advantage of the charge-sensitive aerolysin nanopore interface, herein, an orientation-dependent sensing strategy is developed to enhance phosphorylation-site-dependent interaction with the nanopore sensing interface, enabling the direct and simultaneous electric identification of four heterogeneous phosphorylation statuses of a single DNA. By using this strategy, we can directly evaluate the heterogeneous dephosphorylation process of alkaline phosphatase (ALP) at the single-molecule level. Our results demonstrate that the ALP in fetal bovine serum preferentially catalyzes the 3' phosphate rather than both ends. The quantification of endogenous ALP activity in fetal bovine serum could reach the submilli-IU/L level. Our aerolysin measurements provide a direct look at the heterogeneous phosphorylation status of DNA, allowing the unveiling of the dynamic single-molecule functions of kinase and phosphatase.
多种异质DNA磷酸化状态(包括5'端磷酸化、5'端去磷酸化、3'端磷酸化和3'端去磷酸化)的同时出现对于调节众多细胞过程至关重要。尽管有许多检测单一类型DNA磷酸化的方法,但直接并同时鉴定5'和/或3'端的DNA磷酸化/去磷酸化仍然是一个挑战,更不用说揭示相关磷酸酶和激酶的异质催化过程了。在此,利用电荷敏感的气单胞菌溶素纳米孔界面,开发了一种取向依赖性传感策略,以增强与纳米孔传感界面的磷酸化位点依赖性相互作用,从而能够直接并同时对单个DNA的四种异质磷酸化状态进行电学鉴定。通过使用这种策略,我们可以在单分子水平上直接评估碱性磷酸酶(ALP)的异质去磷酸化过程。我们的结果表明,胎牛血清中的ALP优先催化3'磷酸而不是两端。胎牛血清中内源性ALP活性的定量可达到亚毫国际单位/升水平。我们的气单胞菌溶素测量提供了对DNA异质磷酸化状态的直接观察,从而能够揭示激酶和磷酸酶的动态单分子功能。