Fedorova Olga, Pyle Anna Marie
Howard Hughes Medical Institute, Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06520, USA.
EMBO J. 2005 Nov 16;24(22):3906-16. doi: 10.1038/sj.emboj.7600852. Epub 2005 Oct 27.
Despite its importance for group II intron catalytic activity, structural information on conserved domain 3 (D3) is extremely limited. This domain is known to specifically stimulate the chemical rate of catalysis and to function as a 'catalytic effector'. Of all the long-range tertiary contacts that have been identified within group II introns, none has included D3 residues. Furthermore, little is known about the atoms and functional groups in D3 that contribute to catalysis. Using a nucleotide analog interference mapping assay with an extended repertoire of nucleotide analogs, we have identified functional groups in D3 that are critical for ribozyme activity. These data, together with mutational analysis, suggest the formation of noncanonical base pairs within the phylogenetically conserved internal loop at the base of D3. Finally, a related nucleotide analog interference suppression study resulted in the identification of a direct tertiary interaction between D3 and catalytic domain 5, which sheds new light on D3 function in the group II intron structure and mechanism.
尽管保守结构域3(D3)对于II组内含子的催化活性很重要,但其结构信息极为有限。已知该结构域能特异性地提高催化的化学速率,并作为“催化效应物”发挥作用。在已确定的II组内含子内的所有远程三级相互作用中,没有一个涉及D3残基。此外,对于D3中有助于催化的原子和官能团了解甚少。通过使用具有扩展核苷酸类似物库的核苷酸类似物干扰图谱分析,我们确定了D3中对核酶活性至关重要的官能团。这些数据与突变分析一起,表明在D3底部系统发育保守的内环内形成了非规范碱基对。最后,一项相关的核苷酸类似物干扰抑制研究确定了D3与催化结构域5之间的直接三级相互作用,这为D3在II组内含子结构和机制中的功能提供了新的线索。