He F, Brown A H, Jacobson A
Department of Molecular Genetics and Microbiology, University of Massachusetts Medical School, Worcester 01655-0122, USA.
Mol Cell Biol. 1997 Mar;17(3):1580-94. doi: 10.1128/MCB.17.3.1580.
Rapid turnover of nonsense-containing mRNAs in Saccharomyces cerevisiae is dependent on Upf1p, Nmd2p, and Upf3p, the products of the UPF1, NMD2/UPF2, and UPF3 genes, respectively. We showed previously that Upf1p and Nmd2p interact and that this interaction is required for nonsense-mediated mRNA decay (F. He and A. Jacobson, Genes Dev. 9:437-454, 1995; F. He, A. H. Brown, and A. Jacobson, RNA 2:153-170, 1996). In this study we have used the yeast two-hybrid system to define other protein-protein interactions among the essential components of this decay pathway. Nmd2p-Upf3p and Upf1p-Upf3p interactions were identified, and the respective domains involved in these interactions were delineated by deletion analysis. The domains of Upf1p and Upf3p putatively involved in their mutual interaction were found to correspond to the domains on the two proteins which interact with Nmd2p, suggesting that Nmd2p bridges Upf1p and Upf3p. This conclusion was reinforced by experiments showing that: (i) deletion of NMD2 completely abolishes interactions between Upf1p and Upf3p and (ii) overexpression of full-length Nmd2p or Nmd2p fragments that retain Upf1p- and Upf3p-interacting domains promotes 10- to 200-fold enhancement of Upf1p-Nmd2p-Upf3p complex formation. These results; the observation that cells harboring either single or multiple deletions of UPF1, NMD2, and UPF3 inhibit nonsense-mediated mRNA decay to the same extent; and an analysis of the possible targets of a dominant-negative NMD2 allele indicate that Upf1p, Nmd2p, Upf3p, and at least one other factor are functionally dependent, interacting components of the yeast nonsense-mediated mRNA decay pathway.
酿酒酵母中含无义密码子的mRNA的快速周转依赖于Upf1p、Nmd2p和Upf3p,它们分别是UPF1、NMD2/UPF2和UPF3基因的产物。我们之前表明Upf1p和Nmd2p相互作用,并且这种相互作用对于无义介导的mRNA降解是必需的(F. He和A. Jacobson,《基因与发育》9:437 - 454,1995;F. He、A. H. Brown和A. Jacobson,《RNA》2:153 - 170,1996)。在本研究中,我们使用酵母双杂交系统来确定该降解途径基本组分之间的其他蛋白质 - 蛋白质相互作用。鉴定出了Nmd2p - Upf3p和Upf1p - Upf3p相互作用,并通过缺失分析描绘了参与这些相互作用的各自结构域。发现Upf1p和Upf3p中可能参与它们相互作用的结构域对应于这两种蛋白质上与Nmd2p相互作用的结构域,这表明Nmd2p在Upf1p和Upf3p之间起桥梁作用。以下实验强化了这一结论:(i)NMD2的缺失完全消除了Upf1p和Upf3p之间的相互作用;(ii)全长Nmd2p或保留与Upf1p和Upf3p相互作用结构域的Nmd2p片段的过表达促进Upf1p - Nmd2p - Upf3p复合物形成增强10至200倍。这些结果;观察到携带UPF1、NMD2和UPF3单个或多个缺失的细胞对无义介导的mRNA降解的抑制程度相同;以及对显性负性NMD2等位基因可能靶点进行的分析表明,Upf1p、Nmd2p、Upf3p和至少一种其他因子是功能上相互依赖的,是酵母无义介导的mRNA降解途径的相互作用组分。