生物
秀丽隐杆线虫
小核RNA
表型
神经退行性变
snRNP公司
细胞生物学
达尼奥
黑腹果蝇
突变体
遗传学
损失函数
基因
RNA剪接
基因表达
核糖核酸
非编码RNA
斑马鱼
病理
疾病
医学
作者
Lü Chen,Caitlin M. Roake,Paolo Maccallini,Francesca Bavasso,Roozbeh Dehghannasiri,Pamela Santonicola,Natalia Mendoza-Ferreira,Livia Scatolini,Ludovico Rizzuti,Alessandro Esposito,Ivan Gallotta,Sofia Francia,Stefano Cacchione,Alessandra Galati,Valeria Palumbo,Marie A Kobin,Gian Gaetano Tartaglia,Alessio Colantoni,Gabriele Proietti,Yunming Wu
摘要
Abstract Trimethylguanosine synthase 1 (TGS1) is a highly conserved enzyme that converts the 5′-monomethylguanosine cap of small nuclear RNAs (snRNAs) to a trimethylguanosine cap. Here, we show that loss of TGS1 in Caenorhabditis elegans, Drosophila melanogaster and Danio rerio results in neurological phenotypes similar to those caused by survival motor neuron (SMN) deficiency. Importantly, expression of human TGS1 ameliorates the SMN-dependent neurological phenotypes in both flies and worms, revealing that TGS1 can partly counteract the effects of SMN deficiency. TGS1 loss in HeLa cells leads to the accumulation of immature U2 and U4atac snRNAs with long 3′ tails that are often uridylated. snRNAs with defective 3′ terminations also accumulate in Drosophila Tgs1 mutants. Consistent with defective snRNA maturation, TGS1 and SMN mutant cells also exhibit partially overlapping transcriptome alterations that include aberrantly spliced and readthrough transcripts. Together, these results identify a neuroprotective function for TGS1 and reinforce the view that defective snRNA maturation affects neuronal viability and function.
科研通智能强力驱动
Strongly Powered by AbleSci AI