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Biology subjects

Carrer, A.

Publications and source records attributed to Carrer, A..

2 recordsLinked to original sources

Population dynamics after pancreatitis dictates long-lasting epigenetic reprogramming and mediates tumor predisposition

Local inflammation in the pancreas is transient but imprints a durable epigenetic memory on epithelial cells, making them more amenable to oncogenic transformation. However, it is unclear whether epithelial cell heterogeneity is impacted by acute pancreatitis (AP) or whether population dynamics during regeneration contributes to the establishment of inflammation memory. To tackle those questions, we deployed experimental pancreatitis in mice and performed paired sequencing of transcriptomic and chromatin accessibility profiles at single nucleus resolution. We documented cell type abundance but also applied integrative analyses to infer phenotypically-distinct clusters of mesenchymal and exocrine cells. We found that AP perturbs a subset of "idling" acinar cells, which separate from more canonical "secretory" acini based on a more diversified proteome, which include elevated expression of signal transduction receptors. We linked acinar cell heterogeneity to epigenetic differences that also endow idling cells with superior plasticity. These constitute about 40% of acinar cells but can proliferate and skew their phenotype in response to AP. This leads to a remarkable recovery of pancreas histology and function, but also to the dissemination of idling-like features across the exocrine parenchyma. Mechanistically, idling acinar cells are characterized by enhanced transcriptional activity and protein synthesis. After recovery from pancreatitis, acini show elevation of both and establishment of chronic Unfolded Protein Response (UPR). We finally demonstrated that AP-primed pancreata show signs of elevated UPR and that ER stress promotes acinar cell metaplasia. Our data interrogate phenotypical dynamics during tissue regeneration to identify cell states amenable to epigenetic imprinting. They also suggest that UPR-alleviating strategies might curtail the risk of developing pancreatic cancer for individuals who experiences AP.

cell biology↗

The carnitine shuttle links mitochondrial metabolism to histone acetylation and lipogenesis

Acetyl-CoA is a central metabolite used for lipid synthesis in the cytosol and histone acetylation in the nucleus, among other pathways. The two major precursors to acetyl-CoA in the nuclear-cytoplasmic compartment are citrate and acetate, which are processed to acetyl-CoA by ATP-citrate lyase (ACLY) and acyl-CoA synthetase short-chain 2 (ACSS2), respectively. While some evidence has suggested the existence of additional routes to nuclear-cytosolic acetyl-CoA, such pathways remain poorly defined. To investigate this, we generated cancer cell lines lacking both ACLY and ACSS2. Unexpectedly, and in contrast to observations in fibroblasts, ACLY and ACSS2 double knockout (DKO) cancer cells remain viable and proliferate, maintain pools of cytosolic acetyl-CoA, and are competent to acetylate proteins in both cytosolic and nuclear compartments. Using stable isotope tracing, we show that both glucose and fatty acids feed acetyl-CoA pools and histone acetylation in DKO cells. Moreover, we provide evidence for the carnitine shuttle and carnitine acetyltransferase (CrAT) as a substantial pathway to transfer two-carbon units from mitochondria to cytosol independent of ACLY. Indeed, in the absence of ACLY, glucose can feed fatty acid synthesis in a carnitine responsive and CrAT-dependent manner. This work defines a carnitine-facilitated route to produce nuclear-cytosolic acetyl-CoA, shedding light on the intricate regulation and compartmentalization of acetyl-CoA metabolism

cell biology↗