Department of Chemistry and Biochemistry and The Center for the Molecular Biology of RNA, 228 Sinsheimer Laboratories, University of California at Santa Cruz, Santa Cruz, CA 95064, USA.
J Mol Biol. 2013 Oct 23;425(20):3790-8. doi: 10.1016/j.jmb.2013.05.017. Epub 2013 May 25.
We have obtained a 1.55-Å crystal structure of a hammerhead ribozyme derived from Schistosoma mansoni under conditions that permit detailed observations of Na(+) ion binding in the ribozyme's active site. At least two such Na(+) ions are observed. The first Na(+) ion binds to the N7 of G10.1 and the adjacent A9 phosphate in a manner identical with that previously observed for divalent cations. A second Na(+) ion binds to the Hoogsteen face of G12, the general base in the hammerhead cleavage reaction, thereby potentially dissipating the negative charge of the catalytically active enolate form of the nucleotide base. A potential but more ambiguous third site bridges the A9 and scissile phosphates in a manner consistent with that of previous predictions. Hammerhead ribozymes have been observed to be active in the presence of high concentrations of monovalent cations, including Na(+), but the mechanism by which monovalent cations substitute for divalent cations in hammerhead catalysis remains unclear. Our results enable us to suggest that Na(+) directly and specifically substitutes for divalent cations in the hammerhead active site. The detailed geometry of the pre-catalytic active-site complex is also revealed with a new level of precision, thanks to the quality of the electron density maps obtained from what is currently the highest-resolution ribozyme structure in the Protein Data Bank.
我们获得了曼氏血吸虫来源的锤头核酶在允许详细观察核酶活性部位钠离子结合条件下的 1.55 Å 晶体结构。至少观察到两个这样的钠离子。第一个钠离子以与先前观察到的二价阳离子相同的方式结合到 G10.1 的 N7 和相邻的 A9 磷酸上。第二个钠离子结合到锤头切割反应中的通用碱基 G12 的 Hoogsteen 面上,从而可能消除核苷酸碱基的催化活性烯醇化物形式的负电荷。一个潜在但更模糊的第三个位点以与以前预测一致的方式桥接 A9 和可切割的磷酸。已经观察到在高浓度的单价阳离子(包括 Na+)存在下,锤头核酶具有活性,但单价阳离子在锤头催化中替代二价阳离子的机制仍不清楚。我们的结果使我们能够提出 Na+直接且特异性地替代锤头活性部位的二价阳离子。由于从目前蛋白质数据库中核酶结构分辨率最高的结构获得的电子密度图的质量,前催化活性部位复合物的详细几何形状也以新的精度水平得到揭示。