van der Feltz Clarisse, Nikolai Brandon, Schneider Charles, Paulson Joshua C, Fu Xingyang, Hoskins Aaron A
University of Wisconsin-Madison.
U. Wisconsin-Madison
RNA. 2021 Feb 5;27(5):591-603. doi: 10.1261/rna.077727.120.
Genetic, biochemical, and structural studies have elucidated the molecular basis for spliceosome catalysis. Splicing is RNA catalyzed and the essential snRNA and protein factors are well-conserved. However, little is known about how non-essential components of the spliceosome contribute to the reaction and modulate the activities of the fundamental core machinery. Ecm2 is a non-essential yeast splicing factor that is a member of the Prp19-related complex of proteins. Cryo-electron microscopy (cryo-EM) structures have revealed that Ecm2 binds the U6 snRNA and is entangled with Cwc2, a factor previously found to promote a catalytically active conformation of the spliceosome. These structures also indicate that Ecm2 and the U2 snRNA likely form a transient interaction during 5' splice site (SS) cleavage. We have characterized genetic interactions between ECM2 and alleles of splicing factors that alter the catalytic steps in splicing. In addition, we have studied how loss of ECM2 impacts splicing of pre-mRNAs containing non-consensus or competing SS. Our results show that ECM2 functions during the catalytic stages of splicing. Our data are consistent with Ecm2 facilitating the formation and stabilization of the 1st-step catalytic site, promoting 2nd-step catalysis, and permiting alternate 5' SS usage. We propose that Cwc2 and Ecm2 can each fine-tune the spliceosome active site in unique ways. Their interaction network may act as a conduit through which splicing of certain pre-mRNAs, such as those containing weak or alternate splice sites, can be regulated.
遗传学、生物化学和结构研究已经阐明了剪接体催化的分子基础。剪接是由RNA催化的,并且必需的小核RNA(snRNA)和蛋白质因子高度保守。然而,对于剪接体的非必需成分如何促进反应并调节基本核心机制的活性,我们知之甚少。Ecm2是一种非必需的酵母剪接因子,是与Prp19相关的蛋白质复合物的成员。冷冻电子显微镜(cryo-EM)结构显示,Ecm2与U6 snRNA结合,并与Cwc2缠绕在一起,Cwc2是一种先前发现可促进剪接体催化活性构象的因子。这些结构还表明,Ecm2和U2 snRNA可能在5'剪接位点(SS)切割过程中形成短暂相互作用。我们已经对ECM2与改变剪接催化步骤的剪接因子等位基因之间的遗传相互作用进行了表征。此外,我们研究了ECM2的缺失如何影响含有非共识或竞争性SS的前体mRNA的剪接。我们的结果表明,ECM2在剪接的催化阶段发挥作用。我们的数据与Ecm2促进第一步催化位点的形成和稳定、促进第二步催化以及允许使用替代5' SS一致。我们提出,Cwc2和Ecm2可以各自以独特的方式微调剪接体活性位点。它们的相互作用网络可能充当一种途径,通过该途径可以调节某些前体mRNA的剪接,例如那些含有弱或替代剪接位点的前体mRNA。