Chang Samantha A, Bralley Patricia, Jones George H
Department of Biology, Emory University, Atlanta, Georgia 30322, USA.
J Biol Chem. 2005 Sep 30;280(39):33213-9. doi: 10.1074/jbc.M503440200. Epub 2005 Aug 1.
The absB locus of Streptomyces coelicolor encodes a homolog of bacterial RNase III. We cloned and overexpressed the absB gene product and purified a decahistidine-tagged version of the protein. We show here that AbsB is active against double-stranded RNA transcripts derived from synthetic DNAs but is inactive with single-stranded homopolymers. We thus designate the absB product RNase IIIS. Using T7 RNA polymerase and a cloned template containing the rpsO-pnp intergenic region, we synthesized an RNA substrate representing a portion of the read-through transcript normally produced in S. coelicolor. This transcript contains the sequences that form the putative rpsO terminator and those that form an intergenic stem-loop structure thought to be the site for RNase IIIS processing of the read-through transcript. We show that RNase IIIS does cleave that model transcript, with primary and secondary cleavage sites in an internal loop in the stem-loop structure. We have identified the primary and secondary cleavage sites by primer extension and demonstrate the further processing of the initial cleavage products. Thus, as is the case in Escherichia coli, the read-through transcript from rpsO-pnp is cleaved by RNase IIIS in S. coelicolor. However, the cleavage sites are different in the two systems. The positions of the cleavage sites in the stem-loop of the S. coelicolor transcript are more akin to those identified in the processing of bacteriophage T7 mRNAs. A kinetic assay for RNase IIIS was developed, and kinetic parameters for the reaction utilizing the model transcript from rpsO-pnp were determined.
天蓝色链霉菌的absB基因座编码一种细菌核糖核酸酶III的同源物。我们克隆并过量表达了absB基因产物,并纯化了一种带有十肽组氨酸标签的该蛋白版本。我们在此表明,AbsB对源自合成DNA的双链RNA转录本具有活性,但对单链同聚物无活性。因此,我们将absB产物命名为核糖核酸酶IIIS。利用T7 RNA聚合酶和一个包含rpsO-pnp基因间区域的克隆模板,我们合成了一种RNA底物,它代表了天蓝色链霉菌中通常产生的通读转录本的一部分。该转录本包含形成推定的rpsO终止子的序列以及形成基因间茎环结构的序列,该结构被认为是核糖核酸酶IIIS处理通读转录本的位点。我们表明核糖核酸酶IIIS确实能切割该模型转录本,在茎环结构的内环中有初级和次级切割位点。我们通过引物延伸鉴定了初级和次级切割位点,并证明了初始切割产物的进一步加工。因此,与大肠杆菌的情况一样,rpsO-pnp的通读转录本在天蓝色链霉菌中被核糖核酸酶IIIS切割。然而,两个系统中的切割位点不同。天蓝色链霉菌转录本茎环中切割位点的位置更类似于在噬菌体T7 mRNA加工过程中确定的那些位置。我们开发了一种核糖核酸酶IIIS的动力学测定方法,并确定了利用rpsO-pnp模型转录本进行反应的动力学参数。