Ceballos-Chávez María, Vioque Agustín
Instituto de Bioquímica Vegetal y Fotosíntesis, Universidad de Sevilla-CSIC, Américo Vespucio 49, E-41092 Sevilla, Spain.
J Biol Chem. 2005 Sep 30;280(39):33461-9. doi: 10.1074/jbc.M504691200. Epub 2005 Jul 28.
Biosynthesis of transfer RNA requires processing from longer precursors at the 5'- and 3'-ends. In eukaryotes, in archaea, and in those bacteria where the 3'-terminal CCA sequence is not encoded, 3' processing is carried out by the endonuclease RNase Z, which cleaves after the discriminator nucleotide to generate a mature 3'-end ready for the addition of the CCA sequence. We have identified and cloned the gene coding for RNase Z in the cyanobacterium Synechocystis sp. PCC 6803. The gene has been expressed in Escherichia coli, and the recombinant protein was purified. The enzymatic activity of RNase Z from Synechocystis has been studied in vitro with a variety of substrates. The presence of C or CC after the discriminator nucleotide modifies the cleavage site of RNase Z so that it is displaced by one and two nucleotides to the 3'-side, respectively. The presence of the complete 3'-terminal CCA sequence in the precursor of the tRNA completely inhibits RNase Z activity. The inactive CCA-containing precursor binds to Synechocystis RNase Z with similar affinity than the mature tRNA. The properties of the enzyme described here could be related with the mechanism by which CCA is added in this organism, with the participation of two separate nucleotidyl transferases, one specific for the addition of C and another for the addition of A. This work is the first characterization of RNase Z from a cyanobacterium, and the first from an organism with two separate nucleotidyl transferases.
转运RNA的生物合成需要在5'端和3'端从较长的前体进行加工。在真核生物、古细菌以及那些3'末端CCA序列未编码的细菌中,3'加工由核酸内切酶RNase Z进行,它在鉴别核苷酸后切割,以产生一个成熟的3'端,为添加CCA序列做好准备。我们已经在集胞藻属PCC 6803蓝细菌中鉴定并克隆了编码RNase Z的基因。该基因已在大肠杆菌中表达,并纯化了重组蛋白。已在体外使用多种底物研究了集胞藻RNase Z的酶活性。鉴别核苷酸后存在C或CC会改变RNase Z的切割位点,使其分别向3'侧移动一个和两个核苷酸。tRNA前体中完整的3'末端CCA序列的存在完全抑制RNase Z活性。含无活性CCA的前体与集胞藻RNase Z的结合亲和力与成熟tRNA相似。本文所述酶的特性可能与该生物体中添加CCA的机制有关,该机制涉及两种不同的核苷酸转移酶,一种特异性添加C,另一种添加A。这项工作是对蓝细菌中RNase Z的首次表征,也是对具有两种不同核苷酸转移酶的生物体中RNase Z的首次表征。