Johns Lisa, Grimson Andrew, Kuchma Sherry L, Newman Carrie Loushin, Anderson Philip
Department of Genetics, University of Wisconsin, Madison, WI 53706, USA.
Mol Cell Biol. 2007 Aug;27(16):5630-8. doi: 10.1128/MCB.00410-07. Epub 2007 Jun 11.
Eukaryotic mRNAs containing premature translation termination codons (PTCs) are rapidly degraded by a process termed "nonsense-mediated mRNA decay" (NMD). We examined protein-protein and protein-RNA interactions among Caenorhabditis elegans proteins required for NMD. SMG-2, SMG-3, and SMG-4 are orthologs of yeast (Saccharomyces cerevisiae) and mammalian Upf1, Upf2, and Upf3, respectively. A combination of immunoprecipitation and yeast two-hybrid experiments indicated that SMG-2 interacts with SMG-3, SMG-3 interacts with SMG-4, and SMG-2 interacts indirectly with SMG-4 via shared interactions with SMG-3. Such interactions are similar to those observed in yeast and mammalian cells. SMG-2-SMG-3-SMG-4 interactions require neither SMG-2 phosphorylation, which is abolished in smg-1 mutants, nor SMG-2 dephosphorylation, which is reduced or eliminated in smg-5 mutants. SMG-2 preferentially associates with PTC-containing mRNAs. We monitored the association of SMG-2, SMG-3, and SMG-4 with mRNAs of five endogenous genes whose mRNAs are alternatively spliced to either contain or not contain PTCs. SMG-2 associates with both PTC-free and PTC-containing mRNPs, but it strongly and preferentially associates with ("marks") those containing PTCs. SMG-2 marking of PTC-mRNPs is enhanced by SMG-3 and SMG-4, but SMG-3 and SMG-4 are not detectably associated with the same mRNPs. Neither SMG-2 phosphorylation nor dephosphorylation is required for selective association of SMG-2 with PTC-containing mRNPs, indicating that SMG-2 is phosphorylated only after premature terminations have been discriminated from normal terminations. We discuss these observations with regard to the functions of SMG-2 and its phosphorylation during NMD.
含有提前翻译终止密码子(PTC)的真核生物信使核糖核酸(mRNA)会通过一种称为“无义介导的mRNA降解”(NMD)的过程迅速降解。我们研究了秀丽隐杆线虫中NMD所需蛋白质之间的蛋白质-蛋白质和蛋白质-RNA相互作用。SMG-2、SMG-3和SMG-4分别是酵母(酿酒酵母)和哺乳动物Upf1、Upf2和Upf3的直系同源物。免疫沉淀和酵母双杂交实验相结合表明,SMG-2与SMG-3相互作用,SMG-3与SMG-4相互作用,并且SMG-2通过与SMG-3的共享相互作用间接与SMG-4相互作用。这种相互作用类似于在酵母和哺乳动物细胞中观察到的相互作用。SMG-2-SMG-3-SMG-4相互作用既不需要在smg-1突变体中被消除的SMG-2磷酸化,也不需要在smg-5突变体中减少或消除的SMG-2去磷酸化。SMG-2优先与含有PTC的mRNA结合。我们监测了SMG-2、SMG-3和SMG-4与五个内源性基因的mRNA的结合情况,这些基因的mRNA经过可变剪接后可含有或不含有PTC。SMG-2与不含PTC和含有PTC的信使核糖核蛋白(mRNP)都结合,但它强烈且优先与含有PTC的mRNP结合(“标记”)。SMG-3和SMG-4增强了SMG-2对含PTC的mRNP的标记,但未检测到SMG-3和SMG-4与相同的mRNP结合。SMG-2与含PTC的mRNP的选择性结合既不需要SMG-2磷酸化也不需要其去磷酸化,这表明SMG-2仅在提前终止与正常终止被区分后才被磷酸化。我们讨论了这些观察结果与SMG-2及其在NMD过程中的磷酸化功能的关系。