Chemical Sciences Department, Universidad Andres Bello, Santiago, Chile.
Org Biomol Chem. 2024 Aug 22;22(33):6833-6840. doi: 10.1039/d4ob01125b.
The 10-23 DNAzyme, a catalytic DNA molecule with RNA-cleaving activity, has garnered significant interest for its potential therapeutic applications as a gene-silencing agent. However, the lack of a detailed understanding about its mechanism has hampered progress. A recent structural analysis has revealed a highly organized conformation thanks to the stabilization of specific interactions within the catalytic core of the 10-23 DNAzyme, which facilitate the cleavage of RNA. In this configuration, it has been shown that G14 is in good proximity to the cleavage site which suggests its role as a general base, by activating the 2'-OH nucleophile, in the catalysis of the 10-23 DNAzyme. Also, the possibility of a hydrated metal acting as a general acid has been proposed. In this study, through activity assays, we offer evidence of the involvement of general acid-base catalysis in the mechanism of the 10-23 DNAzyme by analyzing its pH-rate profiles and the role of G14, and metal cofactors like Mg and Pb. By substituting G14 with its analogue 2-aminopurine and examining the resultant pH-rate profiles, we propose the participation of G14 in a catalytically relevant proton transfer event, acting as a general base. Further analysis, using Pb as a cofactor, suggests the capability of the hydrated metal ion to act as a general acid. These functional results provide critical insights into the catalytic strategies of RNA-cleaving DNAzymes, revealing common mechanisms among nucleic acid enzymes that cleave RNA.
10-23 DNA 酶是一种具有 RNA 切割活性的催化 DNA 分子,因其作为基因沉默剂的潜在治疗应用而引起了广泛关注。然而,由于缺乏对其机制的详细了解,进展受到了阻碍。最近的结构分析揭示了一种高度组织化的构象,这要归功于催化核心内特定相互作用的稳定,这有助于 RNA 的切割。在这种构象中,已经表明 G14 与切割位点非常接近,这表明它作为一个通用碱基的作用,通过激活 2'-OH 亲核试剂,在 10-23 DNA 酶的催化中起作用。此外,还提出了一种可能的水合金属作为通用酸的可能性。在这项研究中,通过活性测定,我们通过分析其 pH 速率曲线和 G14 的作用以及 Mg 和 Pb 等金属辅因子,为 10-23 DNA 酶的机制中涉及的酸碱催化提供了证据。通过用其类似物 2-氨基嘌呤取代 G14,并检查所得的 pH 速率曲线,我们提出 G14 参与了催化相关的质子转移事件,充当通用碱基。进一步使用 Pb 作为辅因子的分析表明,水合金属离子有能力充当通用酸。这些功能结果为 RNA 切割 DNA 酶的催化策略提供了关键的见解,揭示了切割 RNA 的核酸酶之间的共同机制。