Department of Molecular Genetics and Cell Biology; The University of Chicago; Chicago, IL USA.
RNA Biol. 2013 Jul;10(7):1073-9. doi: 10.4161/rna.25245. Epub 2013 Jun 3.
The spliceosome discriminates against suboptimal substrates, both during assembly and catalysis, thereby enhancing specificity during pre-mRNA splicing. Central to such fidelity mechanisms are a conserved subset of the DEAD- and DEAH-box ATPases, which belong to a superfamily of proteins that mediate RNP rearrangements in almost all RNA-dependent processes in the cell. Through an investigation of the mechanisms contributing to the specificity of 5' splice site cleavage, two related reports, one from our lab and the other from the Cheng lab, have provided insights into fidelity mechanisms utilized by the spliceosome. In our work, we found evidence for a kinetic proofreading mechanism in splicing in which the DEAH-box ATPase Prp16 discriminates against substrates undergoing slow 5' splice site cleavage. Additionally, our study revealed that discriminated substrates are discarded through a general spliceosome disassembly pathway, mediated by another DEAH-box ATPase Prp43. In their work, Tseng et al. described the underlying molecular events through which Prp16 discriminates against a splicing substrate during 5' splice site cleavage. Here, we present a synthesis of these two studies and, additionally, provide the first biochemical evidence for discrimination of a suboptimal splicing substrate just prior to 5' splice site cleavage. Together, these findings support a general mechanism for a ubiquitous superfamily of ATPases in enhancing specificity during RNA-dependent processes in the cell.
剪接体在组装和催化过程中都能区分非最佳底物,从而提高前体 mRNA 剪接的特异性。这种保真机制的核心是一组保守的 DEAD-和 DEAH-box ATP 酶,它们属于一个超家族的蛋白质,在细胞中几乎所有依赖 RNA 的过程中都能介导 RNP 重排。通过研究导致 5'剪接位点切割特异性的机制,两篇相关的报告,一篇来自我们实验室,另一篇来自程克棣实验室,深入了解了剪接体利用的保真机制。在我们的工作中,我们发现了剪接过程中的一个动力学验证机制的证据,其中 DEAH-box ATP 酶 Prp16 可以区分那些 5'剪接位点切割缓慢的底物。此外,我们的研究还表明,被区分的底物通过另一个 DEAH-box ATP 酶 Prp43 介导的一般剪接体解体途径被丢弃。在他们的工作中,Tseng 等人描述了 Prp16 在 5'剪接位点切割过程中区分剪接底物的潜在分子事件。在这里,我们综合了这两项研究,并提供了第一个生化证据,证明了在 5'剪接位点切割之前就可以区分非最佳的剪接底物。这些发现共同支持了一个普遍的机制,即细胞中依赖 RNA 的过程中普遍存在的一组 ATP 酶,可以提高特异性。