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Lopez-Perez, A.

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

2 recordsLinked to original sources

Single-Cell Cross-Species Profiling identifies Conserved Transcriptional Networks in Early Pancreatic Tumourigenesis.

Pancreatic ductal adenocarcinoma (PDAC) is the most common form of pancreatic cancer and carries the poorest prognosis among all cancers, largely because it is frequently diagnosed at metastatic stages. It is therefore critical to identify reliable markers of preinvasive stages and to decipher the network driving preinvasive lesions to invasive carcinoma. Here, we generated a zebrafish model in which KRASG12D is specifically expressed in pancreatic acinar cells, inducing acinar-to-ductal metaplasia that faithfully mirrors mammalian tumorigenesis. Single cell RNA-seq allowed us to capture transcriptional changes occurring at early stages of the disease. Cross-species comparison with mouse and human scRNAseq transcriptomes revealed a striking conservation of the genes upregulated during metaplasia, triggering common signalling pathways and regulatory programs. Notably, metaplastic cells reactivate a broad set of developmental genes expressed in multipotent pancreatic progenitors. Mapping the acinar-to-cancer trajectories revealed a set of cytoskeletal and migration-related genes specifically upregulated during the late phase of metaplasia, immediately prior to malignant transformation, likely conferring invasive potential to these cells. SCENIC analysis further identified regulatory networks that become progressively activated as cells transition toward cancer, suggesting their involvement in the acquisition of malignant traits. In conclusion, our cross-species comparison demonstrates a high degree of conservation in the molecular mechanisms driving pancreatic cancer progression from early to late stages across evolutionarily distant species, including zebrafish, mouse, and human, highlighting critical pathways that should be targeted to prevent cancer progression. To allow researchers to easily explore gene expression profiles during pancreatic cancer progression across all three species, the datasets are publicly accessible via a user-friendly web platform (https://www.zddm.page.gd/)

cancer biology↗

AMPK-activator ATX-304 reduces oxidative stress and improves MASLD via metabolic switching

AbstractMetabolic dysfunction-Associated Steatotic Liver Disease (MASLD) is the most common chronic liver disease worldwide for which there are no approved treatments. Adenosine monophosphate-activated protein kinase (AMPK) is an interesting therapeutical target since it acts as a central regulator of cellular metabolism. Despite efforts to target the AMPK, no direct activators has yet been approved for treatment of this disease. This study investigates the effect of AMPK activator ATX-304 in a preclinical mouse model of progressive fatty liver disease. The data demonstrate that ATX-304 diminishes body fat mass, lowers blood cholesterol levels, mitigates liver steatosis, and ameliorates the development of liver fibrosis. The beneficial effects of ATX-304 treatment are accompanied by a shift in the liver metabolic program, including increased lipid oxidation, reduced lipid synthesis, as well as remodeling of cholesterol and lipid transport. We also observed variations in lipid distribution among liver lobes in response to ATX-304, and a shift in the zonal distribution of lipid droplets upon treatment. Taken together, our data suggest that ATX-304 holds promise as a potential treatment for Metabolically Associated Fatty Liver Disease (MAFLD), including in human patients.

molecular biology↗