College of Food Science and Technology, Huazhong Agricultural University, Wuhan 430070, Hubei, China.
Advanced Materials Thrust, Function Hub, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou, Guangdong 511400, China.
Nano Lett. 2024 Aug 7;24(31):9750-9759. doi: 10.1021/acs.nanolett.4c02723. Epub 2024 Jul 25.
(Ago)-based bioassays are popular due to their programmability and directional cleavage capabilities. However, the relatively compact protein structure of Ago limits its cleavage activity (even at the optimal temperature), thus restricting its wider application. Here, we observed that guide DNA (gDNA) with specific structural features significantly enhanced Ago cleavage efficiency. Then, we invented a novel gDNA containing DNAzyme segments (gDNA) that substantially enhanced the Ago cleavage efficency (by 100%). Using a molecular dynamics simulation system, we found that the augmented cleavage efficiency might be attributed to the large-scale global movement of the PIWI domain of Ago and an increased number of cleavage sites. Moreover, this gDNA feature allowed us to create a biosensor that simultaneously and sensitively detected three pathogenic bacteria without DNA extraction and amplification. Our work not only dramatically expands applications of the Ago-based biosensor but also provides unique insight into the protein-DNA interactions.
基于 Ago 的生物测定因其可编程性和定向切割能力而受到青睐。然而,Ago 相对紧凑的蛋白质结构限制了其切割活性(即使在最佳温度下),从而限制了其更广泛的应用。在这里,我们观察到具有特定结构特征的向导 DNA(gDNA)显著提高了 Ago 的切割效率。然后,我们发明了一种新型的含有 DNA 酶片段的 gDNA(gDNA),大大提高了 Ago 的切割效率(提高了 100%)。通过分子动力学模拟系统,我们发现增强的切割效率可能归因于 Ago 的 PIWI 结构域的大规模整体运动和切割位点数量的增加。此外,这种 gDNA 特征使我们能够创建一种生物传感器,无需 DNA 提取和扩增即可同时灵敏地检测三种致病菌。我们的工作不仅极大地扩展了基于 Ago 的生物传感器的应用,而且为蛋白质-DNA 相互作用提供了独特的见解。