Wang Yangming, Silverman Scott K
Department of Chemistry, University of Illinois at Urbana-Champaign, 61801, USA.
RNA. 2006 Jun;12(6):1142-6. doi: 10.1261/rna.33106. Epub 2006 Apr 17.
We describe a simple procedure for RNA 5'-adenylation using T4 DNA ligase. The 5'-monophosphorylated terminus of an RNA substrate is annealed to a complementary DNA strand that has a 3'-overhang of 10 nucleotides. Then, T4 DNA ligase and ATP are used to synthesize 5'-adenylated RNA (5'-AppRNA), which should find use in a variety of practical applications. In the absence of an acceptor nucleic acid strand, the two-step T4 DNA ligase mechanism is successfully interrupted after the adenylation step, providing 40%-80% yield of 5'-AppRNA after PAGE purification with few side products (the yield varies with RNA sequence). Optimized reaction conditions are described for 5'-adenylating RNA substrates of essentially any length including long and structured RNAs, without need for sequestration of the RNA 3'-terminus to avoid circularization. The new procedure is applicable on the preparative nanomole scale. This 5'-adenylation strategy using T4 DNA ligase is a substantial improvement over our recently reported adenylation method that uses T4 RNA ligase, which often leads to substantial amounts of side products and requires careful optimization for each RNA substrate. Efficient synthetic access to 5'-adenylated RNA will facilitate a range of applications by providing substrates for in vitro selection; by establishing a new protocol for RNA 5'-capping; and by providing an alternative approach for labeling RNA with (32)P or biophysical probes at the 5'-terminus.
我们描述了一种使用T4 DNA连接酶进行RNA 5'-腺苷酸化的简单方法。将RNA底物的5'-单磷酸化末端与具有10个核苷酸3'-突出端的互补DNA链退火。然后,使用T4 DNA连接酶和ATP合成5'-腺苷酸化RNA(5'-AppRNA),其应可用于各种实际应用。在没有受体核酸链的情况下,两步T4 DNA连接酶机制在腺苷酸化步骤后成功中断,经PAGE纯化后5'-AppRNA的产率为40%-80%,副产物很少(产率因RNA序列而异)。描述了针对基本上任何长度的RNA底物(包括长链和结构化RNA)进行5'-腺苷酸化的优化反应条件,无需隔离RNA 3'-末端以避免环化。该新方法适用于制备性纳摩尔规模。这种使用T4 DNA连接酶的5'-腺苷酸化策略比我们最近报道的使用T4 RNA连接酶的腺苷酸化方法有了实质性改进,后者常常会产生大量副产物,并且需要针对每种RNA底物进行仔细优化。通过为体外筛选提供底物、建立一种新的RNA 5'-加帽方案以及提供一种在5'-末端用(32)P或生物物理探针标记RNA的替代方法,高效合成5'-腺苷酸化RNA将促进一系列应用。