Stiekema W J, Raué H A, Duin M M, Planta R J
Nucleic Acids Res. 1980 Nov 25;8(22):5411-21. doi: 10.1093/nar/8.22.5411.
Mature 5S (m5S) RNA from Bacillus licheniformis specifically and almost completely inhibits in vitro maturation of bacillus precursor 5S (p5S) RNA, showing that the maturation enzyme RNAase M5 can recognize Bacillus m5S RNA. E. coli m5S RNA is a much less efficient inhibitor, whereas S. carlsbergensis 5S RNA inhibits maturation by about 70%. The differences in inhibition can be correlated with the position of the sequence UAGG (residues 101-104 in B. licheniformis m5S RNA) relative to the double-helical region formed by the 5'- and 3'-terminal sequences (molecular stalk) of m5S RNA. Recent experiments by Meyhack and Pace (Biochemistry 17 (1980) 5804-5810) demonstrated this UAGG sequence to be indispensable for processing of p5S RNA. Other elements of secondary and/or tertiary structure are also required, however. The effect of artificially constructed "5S RNA" molecules having defined disturbances in the base-pairing within the molecular stalk on in vitro maturation shows that base-pairing in the immediate neighbourhood of the bonds to be cleaved during maturation is crucial to recognition of p5S RNA by RNAase M5. G.U pairs are tolerated in this region, however, without loss of efficiency in maturation. Base-pairing does not have to extend throughout the complete molecular stalk. The introduction of an A/C combination at the end of the molecular stalk removed from the bonds cleaved by RNAase M5 does not significantly impair the efficiency of maturation.
地衣芽孢杆菌的成熟5S(m5S)RNA能特异性且几乎完全抑制芽孢杆菌前体5S(p5S)RNA的体外成熟,这表明成熟酶RNA酶M5能够识别地衣芽孢杆菌的m5S RNA。大肠杆菌的m5S RNA是一种效率低得多的抑制剂,而嘉士伯酵母的5S RNA能抑制约70%的成熟。抑制作用的差异可能与序列UAGG(在地衣芽孢杆菌m5S RNA中为第101 - 104位残基)相对于m5S RNA由5'和3'末端序列形成的双螺旋区域(分子茎)的位置有关。梅哈克和佩斯最近的实验(《生物化学》17(1980)5804 - 5810)证明,该UAGG序列对于p5S RNA的加工是必不可少的。然而,二级和/或三级结构的其他元件也是必需的。对分子茎内碱基配对有特定干扰的人工构建的“5S RNA”分子对体外成熟的影响表明,成熟过程中待切割键紧邻区域的碱基配对对于RNA酶M5识别p5S RNA至关重要。不过,该区域允许G.U配对,且不影响成熟效率。碱基配对不必延伸至整个分子茎。在分子茎末端引入一个远离RNA酶M5切割键的A/C组合,并不会显著损害成熟效率。