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Cayuela-Lopez, A.

Publications and source records attributed to Cayuela-Lopez, A..

3 recordsLinked to original sources

STAG2 cohesin cooperates with DREAM to maintain quiescence and suppress tumourigenesis in the urothelium

The maintenance of quiescence is essential for tissue homeostasis. STAG2 is one of the few genes mutated in the normal urothelium of organ donors, with mutant cells undergoing positive selection 1. STAG2 is also a major tumour suppressor gene 2-4 and its inactivation is an early event in bladder carcinogenesis 1,3. However, how STAG2, a cohesin component, regulates urothelial homeostasis remains largely unknown. Here, we demonstrate that Stag2 inactivation in normal murine urothelial cells interferes with differentiation programs, triggers transient cell cycle entry, and primes cells for clonal expansion under stress. Moreover, STAG2 loss enhances tumor formation in urothelial cells expressing mutant FGFR3 - the key oncogene in bladder cancer 5. We reveal that STAG2 cooperates with the DREAM transcriptional complex, a master regulator of quiescence 6,7, by binding to shared genomic sites, including cell cycle control genes. STAG2 loss alters DREAM target expression, complex composition, and chromatin distribution, and leads to rewiring of chromatin interactions involving DREAM binding motifs in genes critical for cell cycle entry. Our findings provide compelling evidence that STAG2 loss disrupts in 3D genome organization through a novel mechanism involving the DREAM complex, thereby impairing homeostatic quiescence and increasing oncogenic sensitivity.

cancer biology↗

A common CTRB misfolding variant associated with pancreatic cancer risk causes ER stress and inflammation in mice

ObjectiveGenome wide association studies have identified an exon 6 CTRB2 deletion variant that associates with increased risk of pancreatic cancer. To acquire evidence on its causal role, we developed a new mouse strain carrying an equivalent variant in Ctrb1, the mouse orthologue of CTRB2. DesignWe used CRISPR/Cas9 to introduce a 707bp deletion in Ctrb1 encompassing exon 6 (Ctrb1{Delta}exon6). This mutation closely mimics the human deletion variant. Mice carrying the mutant allele were extensively profiled at 3 months to assess their phenotype. ResultsCtrb1{Delta}exon6 mutant mice express a truncated CTRB1 that accumulates in the ER. The pancreas of homozygous mutant mice displays reduced chymotrypsin activity and total protein synthesis. The histological aspect of the pancreas is inconspicuous but ultrastructural analysis shows evidence of dramatic ER stress and cytoplasmic and nuclear inclusions. Transcriptomic analyses of the pancreas of mutant mice reveals acinar program down-regulation and increased activity of ER stress-related and inflammatory pathways. Heterozygous mice have an intermediate phenotype. Agr2 is one of the most up-regulated genes in mutant pancreata. Ctrb1{Delta}exon6 mice exhibit impaired recovery from acute caerulein-induced pancreatitis. Administration of TUDCA or sulindac partially alleviates the phenotype. A transcriptomic signature derived from the mutant pancreata is significantly enriched in normal human pancreas of CTRB2 exon 6 deletion variant carriers from the GTEx cohort. ConclusionsThis mouse strain provides formal evidence that the Ctrb1{Delta}exon6 variant causes ER stress and inflammation in vivo, providing an excellent model to understand its contribution to pancreatic ductal adenocarcinoma development and to identify preventive strategies. SUMMARY BOX What is already known about this subject?- CTRB2 is one of the most abundant proteins produced by human pancreatic acinar cells. - A common exon 6 deletion variant in CTRB2 has been associated with an increased risk of pancreatic ductal adenocarcinoma. - Misfolding of digestive enzymes is associated with pancreatic pathology. What are the new findings?- We developed a novel genetic model that recapitulates the human CTRB2 deletion variant in the mouse orthologue, Ctrb1. - Truncated CTRB1 misfolds and accumulates in the ER; yet, mutant mice display a histologically normal pancreas at 3 months age. - CTRB1 and associated chaperones colocalize in the ER, the cytoplasm, and the nucleus of acinar cells. - Transcriptomics analysis reveals reduced activity of the acinar program and increased activity of pathways involved in ER stress, unfolded protein response, and inflammation. - Mutant mice are sensitized to pancreatic damage and do not recover properly from a mild caerulein-induced pancreatitis. - TUDCA administration partially relieves the ER stress in mutant mice. How might it impact on clinical practice in the foreseeable future?- The new mouse model provides a tool to identify the mechanisms leading to increased pancreatic cancer risk in CTRB2 exon 6 carriers. - The findings suggest that drugs that cause ER stress relief and/or reduce inflammation might provide preventive opportunities.

cancer biology↗

Stomata, a vulnerability in the plant defence against phytophagous mites that ABA can overcome

Arthropod herbivory possess a significant threat to crop yield, prompting plants to employ intricate defense mechanisms against pest feeding. The generalist pest, Tetranychus urticae, inflicts rapid damage and remains a challenge due to its broad target range. In this study, we explored Arabidopsis thalianas response to T. urticae infestation, revealing the induction of abscisic acid (ABA), a hormone typically associated with abiotic stress adaptation, including stomatal closure during water stress. Leveraging a FRET-based ABA biosensor (nlsABACUS2-400n), we observed elevated ABA levels in various leaf cell types post-mite feeding. While ABAs role in pest resistance or susceptibility has been debated, an ABA-deficient mutant exhibited increased mite infestation, alongside intact canonical biotic stress signalling, indicating an independent function of ABA in mite defense. Through genetic and pharmacological interventions targeting ABA levels, ABA signalling, stomatal aperture, and density, we established that ABA-triggered stomatal closure effectively hinders mite feeding and minimizes leaf cell damage. This study underscores the critical interplay between biotic and abiotic stresses in plants, highlighting how the vulnerability to mite infestation arising from open stomata, crucial for transpiration and photosynthesis, underscores the intricate relationship between these two stress types.

plant biology↗