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Biology subjects

Cenci, G.

Publications and source records attributed to Cenci, G..

2 recordsLinked to original sources

Intimate functional interactions between TGS1 and the Smn complex revealed by an analysis of the Drosophila eye development

Trimethylguanosine synthase 1 (TGS1) is a conserved enzyme that mediates formation of the trimethylguanosine cap on several RNAs, including snRNAs and telomerase RNA. Previous studies have shown that TGS1 binds the Survival Motor Neuron (SMN) protein, whose deficiency causes spinal muscular atrophy (SMA). In addition, TGS1 depletion results in increased hTR levels and telomere elongation in human cells. Here, we analyzed the roles of the Drosophila orthologs of the human TGS1 and SMN genes. We show that the Drosophila TGS1 protein (dTgs1) physically interacts with all subunits of the Drosophila Smn complex (Smn, Gem2, Gem3, Gem4 and Gem5), and that a human TGS1 transgene rescues the mutant phenotype caused by dTgs1 loss. We demonstrate that both dTgs1 and Smn are required for viability of retinal progenitor cells and that downregulation of these genes leads to a reduced eye size. Importantly, overexpression of dTgs1 partially rescues the eye defects caused by Smn depletion, and vice versa. These results suggest that the Drosophila eye model can be exploited for screens aimed at the identification of genes and drugs that modify the phenotypes elicited by Tgs1 and Smn deficiency. These modifiers could help to devise new therapies for SMA and diseases caused by telomerase insufficiency.

genetics

Reduced RNA turnover as a driver of cellular senescence

Accumulation of senescent cells is an important contributor to chronic inflammation upon aging. While cytoplasmic DNA was shown to drive the inflammatory phenotype of senescent cells, an equivalent role for RNA has never been explored. Here, we show that some senescent cells accumulate long promoter RNAs and 3 gene extensions, rich in retrotransposon sequences. Accordingly, these cells display increased expression of genes involved in detecting double stranded RNA of viral origin downstream of the interferon pathway. The RNA accumulation is correlated with signs of reduced RNA turn-over, including in some cases, reduced expression of RNA exosome subunits. Reciprocally, engineered inactivation of RNA exosome subunit Exosc3 induces expression of multiple senescence markers. A senescence-like RNA accumulation is also observed in cells exposed to oxidative stress, an important trigger of cellular senescence. Altogether, we propose that in a subset of senescent cells, repeat-containing transcripts stabilized by oxidative stress or reduced RNA exosome activity participate, possibly in combination with cytoplasmic DNA, in driving and maintaining the permanent inflammatory state characterizing cellular senescence.

molecular biology