Wang Qing, Tan Kaiyue, Wang Hong, Shang Jinhua, Wan Yeqing, Liu Xiaoqing, Weng Xiaocheng, Wang Fuan
College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, P. R. China.
J Am Chem Soc. 2021 May 12;143(18):6895-6904. doi: 10.1021/jacs.1c00570. Epub 2021 Apr 27.
The epigenetic modification of nucleic acids represents a versatile approach for achieving high-efficient control over gene expression and transcription and could dramatically expand their biosensing and therapeutic applications. Demethylase-involved removal of N6-methyladenine (mA) represents one of the vital epigenetic reprogramming events, yet its direct intracellular evaluation and as-guided gene regulation are extremely rare. The endonuclease-mimicking deoxyribozyme (DNAzyme) is a catalytically active DNA that enables the site-specific cleavage of the RNA substrate, and several strategies have imparted the magnificent responsiveness to DNAzyme by using chemical and light stimuli. However, the epigenetic regulation of DNAzyme has remained largely unexplored, leaving a significant gap in responsive DNA nanotechnology. Herein, we reported an epigenetically responsive DNAzyme system through the selection of an exquisite mA-caged DNAzyme that could be specifically activated by FTO (fat mass and obesity-associated protein) demethylation for precise intracellular imaging-directed gene regulation. Based on a systematic investigation, the active DNAzyme configuration was potently disrupted by the site-specific incorporation of mA modification and subsequently restored into the intact DNAzyme structure via the tunable FTO-specific removal of mA-caging groups under a variety of conditions. This orthogonal demethylase-activated DNAzyme amplifier enables the robust and accurate monitoring of FTO and its inhibitors in live cells. Moreover, the simple demethylase-activated DNAzyme facilitates the assembly of an intelligent self-adaptive gene regulation platform for knocking down demethylase with the ultimate apoptosis of tumor cells. As a straightforward and scarless mA removal strategy, the demethylase-activated DNAzyme system offers a versatile toolbox for programmable gene regulation in synthetic biology.
核酸的表观遗传修饰是一种实现对基因表达和转录进行高效控制的通用方法,能够显著拓展其生物传感和治疗应用。涉及去甲基化酶的N6-甲基腺嘌呤(mA)去除是重要的表观遗传重编程事件之一,然而其直接的细胞内评估以及基于此的基因调控极为罕见。模仿核酸内切酶的脱氧核酶(DNAzyme)是一种具有催化活性的DNA,可实现对RNA底物的位点特异性切割,并且有多种策略通过化学和光刺激赋予DNAzyme出色的响应能力。然而,DNAzyme的表观遗传调控在很大程度上仍未得到探索,这在响应性DNA纳米技术领域留下了显著空白。在此,我们报道了一种表观遗传响应性DNAzyme系统,通过筛选一种精巧的mA封闭型DNAzyme,该DNAzyme可被FTO(脂肪量和肥胖相关蛋白)去甲基化特异性激活,用于精确的细胞内成像导向基因调控。基于系统研究,mA修饰的位点特异性掺入有力地破坏了活性DNAzyme的结构,随后在各种条件下通过FTO特异性去除mA封闭基团,将其恢复为完整的DNAzyme结构。这种正交的去甲基化酶激活的DNAzyme放大器能够在活细胞中对FTO及其抑制剂进行强大而准确的监测。此外,简单的去甲基化酶激活的DNAzyme有助于构建一个智能自适应基因调控平台,用于敲除去甲基化酶并最终导致肿瘤细胞凋亡。作为一种直接且无痕的mA去除策略,去甲基化酶激活的DNAzyme系统为合成生物学中的可编程基因调控提供了一个多功能工具箱。