Redesigned and chemically-modified hammerhead ribozymes with improved activity and serum stability.

Philip Hendry, Maxine J McCall, Tom S Stewart, Trevor J Lockett
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引用次数: 19

Abstract

BACKGROUND: Hammerhead ribozymes are RNA-based molecules which bind and cleave other RNAs specifically. As such they have potential as laboratory reagents, diagnostics and therapeutics. Despite having been extensively studied for 15 years or so, their wide application is hampered by their instability in biological media, and by the poor translation of cleavage studies on short substrates to long RNA molecules. This work describes a systematic study aimed at addressing these two issues. RESULTS: A series of hammerhead ribozyme derivatives, varying in their hybridising arm length and size of helix II, were tested in vitro for cleavage of RNA derived from the carbamoyl phosphate synthetase II gene of Plasmodium falciparum. Against a 550-nt transcript the most efficient (t1/2 = 26 seconds) was a miniribozyme with helix II reduced to a single G-C base pair and with twelve nucleotides in each hybridising arm. Miniribozymes of this general design were targeted to three further sites, and they demonstrated exceptional cleavage activity. A series of chemically modified derivatives was prepared and examined for cleavage activity and stability in human serum. One derivative showed a 103-fold increase in serum stability and a doubling in cleavage efficiency compared to the unmodified miniribozyme. A second was almost 104-fold more stable and only 7-fold less active than the unmodified parent. CONCLUSION: Hammerhead ribozyme derivatives in which helix II is reduced to a single G-C base pair cleave long RNA substrates very efficiently in vitro. Using commonly available phosphoramidites and reagents, two patterns of nucleotide substitution in this derivative were identified which conferred both good cleavage activity against long RNA targets and good stability in human serum.

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经过重新设计和化学修饰的锤头核酶,具有更好的活性和血清稳定性。
背景:锤头核酶是一种基于rna的分子,它特异性地结合和切割其他rna。因此,它们具有作为实验室试剂、诊断和治疗药物的潜力。尽管已经被广泛研究了15年左右,但它们的广泛应用受到其在生物介质中的不稳定性以及短底物对长RNA分子的切割研究的不良翻译的阻碍。这项工作描述了一个系统的研究,旨在解决这两个问题。结果:在体外测试了一系列不同杂交臂长度和螺旋II大小的锤头核酶衍生物对恶性疟原虫磷酸氨甲酰合成酶II基因衍生RNA的切割作用。对于550 nt的转录本,效率最高的(t1/2 = 26秒)是螺旋II减少到单个G-C碱基对的微核酶,每个杂交臂中有12个核苷酸。这种一般设计的微核酶针对另外三个位点,并且它们表现出特殊的裂解活性。制备了一系列化学修饰的衍生物,并对其在人血清中的裂解活性和稳定性进行了检测。与未修饰的微核酶相比,一种衍生物的血清稳定性提高了103倍,裂解效率提高了一倍。另一种比未经修饰的亲本稳定了近104倍,活性仅低了7倍。结论:螺旋II被还原为单个G-C碱基对的锤头核酶衍生物能在体外高效地切割长RNA底物。使用常用的磷酸酰胺和试剂,鉴定了该衍生物的两种核苷酸取代模式,这两种模式既具有对长RNA靶点的良好裂解活性,又具有在人血清中的良好稳定性。
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