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Bellieres, C.

Publications and source records attributed to Bellieres, C..

2 recordsLinked to original sources

A large-scale analysis of the R2TP chaperone network reveals its contribution to the assembly of INO80, SRCAP and TIP60

HSP90/R2TP is an essential quaternary chaperone composed of RPAP3, PIH1D1 and the RUVBL1/RUVBL2 AAA+ ATPases. These enzymes are also part of the INO80, SRCAP and TIP60 complexes, but the relationship between these chromatin remodelers and R2TP remains unclear. Here, we performed systematic analyses of the R2TP-specific subunits RPAP3 and PIH1D1. We validated 115 interaction partners and found that many were sensitive to HSP90 or R2TP inhibition. In yeast, epistatic screens revealed functional interactions with Ino80, Swr1 (SRCAP) and NuA4 (TIP60). Consistently, human RPAP3 physically interacted with subunits of INO80, SRCAP and TIP60 and was required for the formation of these complexes. More specifically, RPAP3 enabled the co-translational association of RUVBL1/RUVBL2 with the motor subunit of these chromatin remodelers. In vitro, the client-binding domain of RUVBL1/RUVBL2 modulated their interaction with RPAP3, suggesting that client subunits displace RPAP3 from nascent complexes. Thus, R2TP is an early chaperone of TIP60, SRCAP and INO80, which leaves RUVBL1/RUVBL2 as resident scaffolding subunits.

molecular biology↗

RNA dysregulation and compromised neuronal identity drive pathogenesis in Senataxin-associated ALS

RNA dysregulation is a recognized contributor to neurodegenerative diseases such as amyotrophic lateral sclerosis (ALS), the most common motor neuron (MN) disease. However, the molecular mechanisms linking defects in RNA metabolism to selective neuronal vulnerability remain poorly understood. Alterations in the cellular levels of R-loops -structures forming by reannealing of the nascent RNA with the template DNA during transcription- have been observed in neurodegeneration, but it is unclear how perturbations in R-loop homeostasis contribute to neuronal dysfunction. Here we investigate the molecular basis of a juvenile form of ALS dubbed ALS4 that is caused by mutations in the helicase SETX, which plays important roles in the resolution of R-loops and transcription termination. Using isogenic human induced pluripotent stem cell-derived MNs, we show that ALS4-associated SETX mutations induce progressive axonal defects and widespread transcriptomic alterations, including reduced expression or altered splicing of transcripts critical for neuronal function. ALS4 MNs exhibit a transcriptional signature marked by cellular stress, aberrant cell cycle re-entry, and compromised neuronal identity that is partially shared by other forms of ALS. Mechanistically, these defects are partly driven by downstream aberrant activation of the TGF-{beta} signaling pathway, whose pharmacological inhibition ameliorates axonal defects. Finally, our analyses support a link between mutant SETX ectopic activity at R-loops and the observed alterations in RNA expression and splicing, providing new insights into how RNA dysregulation can drive neuronal dysfunction Altogether, our work reveals how perturbations at the interface of transcription and R-loop metabolism can reshape neuronal identity and drive disease. TeaserDeregulation of TGF-{beta} signaling drives axonal defects and compromised motor neuron identity in senataxin-mediated ALS

molecular biology↗