Ren Aiming, Košutić Marija, Rajashankar Kanagalaghatta R, Frener Marina, Santner Tobias, Westhof Eric, Micura Ronald, Patel Dinshaw J
Structural Biology Program, Memorial Sloan-Kettering Cancer Center, New York, New York 10065, USA.
Institute of Organic Chemistry, Leopold-Franzens University and Center of Molecular Biosciences Innsbruck CMBI, Innsbruck A-6020, Austria.
Nat Commun. 2014 Nov 20;5:5534. doi: 10.1038/ncomms6534.
Small self-cleaving nucleolytic ribozymes contain catalytic domains that accelerate site-specific cleavage/ligation of phosphodiester backbones. We report on the 2.9-Å crystal structure of the env22 twister ribozyme, which adopts a compact tertiary fold stabilized by co-helical stacking, double-pseudoknot formation and long-range pairing interactions. The U-A cleavage site adopts a splayed-apart conformation with the modelled 2'-O of U positioned for in-line attack on the adjacent to-be-cleaved P-O5' bond. Both an invariant guanosine and a Mg(2+) are directly coordinated to the non-bridging phosphate oxygens at the U-A cleavage step, with the former positioned to contribute to catalysis and the latter to structural integrity. The impact of key mutations on cleavage activity identified an invariant guanosine that contributes to catalysis. Our structure of the in-line aligned env22 twister ribozyme is compared with two recently reported twister ribozymes structures, which adopt similar global folds, but differ in conformational features around the cleavage site.
小型自我切割核酶解核糖核酸酶含有催化结构域,可加速磷酸二酯主链的位点特异性切割/连接。我们报道了env22扭曲核糖酶的2.9埃晶体结构,它通过共螺旋堆积、双假结形成和长程配对相互作用采用紧凑的三级折叠结构。U-A切割位点采用张开的构象,U的模拟2'-O定位为对相邻的待切割P-O5'键进行直线攻击。在U-A切割步骤中,一个不变的鸟苷和一个Mg(2+)都直接与非桥连磷酸氧配位,前者有助于催化,后者有助于结构完整性。关键突变对切割活性的影响确定了一个有助于催化的不变鸟苷。我们将直线排列的env22扭曲核糖酶的结构与最近报道的两种扭曲核糖酶结构进行了比较,这两种结构具有相似的整体折叠,但在切割位点周围的构象特征上有所不同。