Beijing Institute of Pharmacology and Toxicology, Beijing, China.
Org Biomol Chem. 2011 Aug 21;9(16):5728-36. doi: 10.1039/c1ob05065f. Epub 2011 Jun 29.
With the help of a divalent-metal ion, 10-23 DNAzyme cleaves RNA. Chemical modification of its catalytic loop to make a more efficient enzyme has been a challenge. Our strategy started from its five 2'-deoxyadenosine residues (A5, A9, A11, A12, and A15) in the loop based on the capability of the N7 atom to form hydrogen bonds in tertiary structures. 8-Aza-7-deaza-2'-deoxyadenosine and its analogs with 7-substituents (3-aminopropyl, 3-hydroxylpropyl, or phenethyl) were each used to replace five dA residues, respectively, and their effect on cleavage rate were evaluated under single-turnover conditions. The results indicated that the N7 atom of five dA residues were necessary for catalytic activity, and the N8 atom and 7-substituents were detrimental to the catalytic behavior of 10-23 DNAzyme, except that all these modifications at A9 were favourable for the activity. Especially, DZ-3-9 with 7-(3-aminopropyl)-8-aza-7-deaza-2'-deoxyadenosine (3) at A9 position gave a 12- fold increase of k(obs), compared to the corresponding parent 10-23 DNAzyme. DZ-3-9 was supposed to catalyze the cleavage reaction with the same mechanism as 10-23 DNAzyme based on their very similar pH-dependent and divalent metal ions-dependent cleavage patterns. Introduction of functional groups at A9 position was demonstrated to be a successful and feasible approach for more efficient 10-23 DNAzyme analogs.
在二价金属离子的帮助下,10-23 DNA 酶切割 RNA。对其催化环进行化学修饰以制造更有效的酶一直是一个挑战。我们的策略从其环中的五个 2'-脱氧腺苷残基(A5、A9、A11、A12 和 A15)开始,基于 N7 原子在三级结构中形成氢键的能力。8-氮杂-7-脱氮-2'-脱氧腺苷及其带有 7-取代基(3-氨基丙基、3-羟基丙基或苯乙基)的类似物分别用于取代五个 dA 残基,并在单轮条件下评估它们对切割速率的影响。结果表明,五个 dA 残基的 N7 原子对于催化活性是必需的,N8 原子和 7-取代基不利于 10-23 DNA 酶的催化行为,除了 A9 位的所有这些修饰都有利于活性。特别是,在 A9 位具有 7-(3-氨基丙基)-8-氮杂-7-脱氮-2'-脱氧腺苷(3)的 DZ-3-9 与相应的亲本 10-23 DNA 酶相比,k(obs) 增加了 12 倍。基于它们非常相似的 pH 依赖性和二价金属离子依赖性切割模式,DZ-3-9 被认为以与 10-23 DNA 酶相同的机制催化切割反应。在 A9 位置引入功能基团被证明是制造更有效的 10-23 DNA 酶类似物的一种成功且可行的方法。