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Cestra, G.

Publications and source records attributed to Cestra, G..

4 recordsLinked to original sources

Mutant FUS perturbs m6A regulation by repressing ALKBH5, while restoring m6A levels alleviates ALS pathology in vivo

Amyotrophic lateral sclerosis (ALS) is a neurodegenerative disorder marked by the progressive loss of motor neurons, where aberrant stress granule (SG) dynamics has emerged as a hallmark, especially in cases involving mutations in RNA-binding proteins such as FUS and TDP-43. We previously showed that m6A RNA modification is elevated in FUS-associated ALS and that restoring its physiological levels through METTL3 inhibition is sufficient to rescue the aberrant stress granule phenotypes in different human cellular models. Importantly, here we show that reducing m6A levels ameliorates locomotor defects and neuromuscular junction (NMJ) abnormalities in Drosophila melanogaster models of ALS expressing the human FUSP525L mutant. Moreover, we demonstrate that the increase in m6A is attributable to reduced expression of the m6A eraser ALKBH5, resulting from impaired translation caused by direct FUS binding to its transcript. We further show that ALKBH5 downregulation contributes to RNA and protein alterations observed in FUS-associated ALS, driving the abnormal SG dynamics characteristic of the disease. This study supports the hypothesis that restoring correct m6A levels could serve as a potential therapeutic strategy for ALS.

molecular biology↗

Distinct Cellular Effects of Myotonic Dystrophy type 2 RAN Tetrapeptides in Drosophila melanogaster

Myotonic dystrophy type 2 (DM2) is an autosomal dominant, multisystemic disorder caused by the expansion of CCTG repeats in the first intron of the CNBP gene. Repeat-associated non-AUG (RAN) translation of the expanded CCTG RNA may produce two tetrapeptide repeat proteins (TPRs), poly-QAGR and poly-PACL, whose roles in DM2 pathogenesis remain poorly understood. To investigate their individual contributions, we expressed codon-optimized QAGR and PACL peptides with ATG start codon in Drosophila melanogaster. Expression of QAGR and PACL TPRs significantly compromised fly viability and lifespan, induces eye degeneration and locomotor defects. We found that QAGR accumulated in the nucleolus, disrupted nucleolar integrity, and compromised rRNA processing. Moreover, QAGR expression interfered with autophagy, leading to the accumulation of Atg8a- and Ref(2)P-positive aggregates. Genetic interaction studies showed that overexpression of Atg8a or Ref(2)P mitigated QAGR-induced eye-toxicity, while knockdown of autophagy genes exacerbated it. Conversely, PACL repeats promoted stress granule formation, as indicated by their colocalization with TIAR in human cells and their epistatic interaction with the Drosophila orthologue Rox8. Notably, cytoplasmic PACL aggregates were observed in myoblasts of DM2 patient. Together these findings demonstrate that QAGR and PACL peptides exert distinct toxic effects, impairing nucleolar function and autophagy, or altering stress granule dynamics, respectively. Both mechanisms likely converge to drive DM2 pathogenesis and represent promising therapeutic targets.

genetics↗

Cytoplasmic accumulation of a splice variant of hnRNP A2/B1 contributes to FUS-associated toxicity in a mouse model of ALS

Genetic and experimental findings point to a crucial role of RNA dysfunction in the pathogenesis of Amyotrophic Lateral Sclerosis (ALS). Evidence suggests that mutations in RBPs such as FUS, a gene associated with ALS, affect the regulation of alternative splicing. We have previously shown that the overexpression of wild-type FUS in mice, a condition that induces ALS-like phenotypes, impacts the splicing of hnRNP A2/B1, a protein with key roles in RNA metabolism, suggesting that a pathological connection between FUS and hnRNP A2/B1 might promote FUS-associated toxicity. Here we report that the expression and distribution of different hnRNP A2/B1 splice variants are modified in the affected tissues of mice overexpressing wild-type FUS. Notably, degenerating motor neurons are characterized by the cytoplasmic accumulation of splice variants of hnRNP A2/B1 lacking exon 9 (hnRNP A2b/B1b). In vitro studies show that exon 9 skipping affects the nucleocytoplasmic distribution of hnRNP A2/B1, promoting its localization into stress granules (SGs), and demonstrate that cytoplasmic localization is the primary driver of hnRNP A2b recruitment into SGs and cell toxicity. Finally, boosting exon 9 skipping using splicing switching oligonucleotides exacerbates disease phenotypes in wild-type FUS mice. Altogether, these findings reveal that alterations of the nucleocytoplasmic distribution of hnRNP A2/B1, driven by FUS-induced splicing changes, likely contribute to motor neuron degeneration in ALS.

neuroscience↗

DNA damage response defects induced by the formation of TDP-43 and mutant FUS cytoplasmic inclusions and their pharmacological rescue.

Formation of cytoplasmic inclusions (CIs) of TDP-43 and FUS, along with DNA damage accumulation, is a hallmark of affected motor neurons in Amyotrophic Lateral Sclerosis (ALS). However, the impact of CIs on DNA damage response (DDR) and repair in this pathology remains unprobed. Here, we show that CIs of TDP-43 and FUSP525L, co-localizing with stress granules, lead to a dysfunctional DDR activation associated with physical DNA breakage. Inhibition of the activity of the DDR kinase ATM, but not of ATR, abolishes DDR signaling, indicating that DNA double-strand breaks (DSBs) are the primary source of DDR activation. In addition, cells with TDP-43 and FUSP525L CIs exhibit reduced DNA damage-induced RNA synthesis at DSBs. We previously showed that the two endoribonucleases DROSHA and DICER, also known to interact with TDP-43 and FUS during small RNA processing, contribute to DDR signaling at DSBs. Treatment with enoxacin, which stimulates DDR and repair by boosting the enzymatic activity of DICER, restores a proficient DDR and reduces DNA damage accumulation in cultured cells with CIs and in vivo in a murine model of ALS. In Drosophila melanogaster, Dicer-2 overexpression rescues TDP-43-mediated retinal degeneration. In summary, our results indicate that the harmful effects caused by TDP-43 and FUS proteinopathies include genotoxic stress and that the pharmacological stimulation of the DNA damage signaling and repair counteracts it.

molecular biology↗