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Fuentes-Iglesias, A.

Publications and source records attributed to Fuentes-Iglesias, A..

2 recordsLinked to original sources

The Holliday junction resolvase GEN1 preserves genome integrity and self-renewal in mouse embryonic stem cells

The maintenance of pluripotent stem cells (PSCs) under rapid proliferation requires mechanisms that both suppress replication-driven genome instability and preserve self-renewal capacity. Here, we show that, in contrast to somatic cells where it mainly acts as a backup, the Holliday junction resolvase GEN1 is required in mouse embryonic stem cells (ESCs), where its depletion severely compromises self-renewal and long-term maintenance. Loss of GEN1 induces the accumulation of cells with DNA content greater than 4C and chromosome fusions. Notably, a catalytically inactive GEN1 mutant rescues ESC colony formation, indicating that GEN1 supports ESC maintenance through non-enzymatic functions. In addition, GEN1 depletion increases ESC tolerance to topoisomerase I-mediated replication stress and renders this phenotype dependent on DNA-PK activity, suggesting that GEN1 loss alters how pluripotent cells cope with replication-associated DNA lesions. Together, these findings identify GEN1 as a non-redundant guardian of genome integrity in pluripotent cells, revealing both a catalysis-independent role in self-renewal and a contribution to the replication stress response, with implications for PSC genomic quality control. HighlightsO_LIIn contrast to somatic cells, GEN1 is specifically required for mouse pluripotent cell self-renewal and expansion in vitro. C_LIO_LIGEN1 loss induces accumulation of DNA content greater than 4C and chromosome fusions without loss of core pluripotency markers expression. C_LIO_LICatalytically inactive GEN1 mutant rescues ESC colony-forming capacity. C_LIO_LIGEN1 depletion increases ESC tolerance to topoisomerase I-mediated replication stress in a DNA-PK-dependent manner C_LI eTOCRamos-Lage et al. demonstrate that the resolvase GEN1 is essential for mouse embryonic stem cell self-renewal and genome stability. Strikingly, a catalytically dead mutant rescues colony formation, revealing an unexpected non-enzymatic role for GEN1 in pluripotency maintenance.

cell biology↗

Inhibition of p107 alleviates liver steatosis by reducing de novo fatty acid synthesis.

Metabolic dysfunction-associated steatotic liver disease (MASLD) is characterized by excessive hepatic lipid accumulation driven by increased de novo lipogenesis (DNL) and impaired lipid oxidation. p107, a member of the retinoblastoma (Rb) family, extensively studied in the context of cell cycle regulation and adipocyte differentiation recently has been identified as a metabolic regulator controlling thermogenic activity. However, its role in hepatic lipid homeostasis remains poorly understood. Here, we identify the cell cycle regulator p107 as a key modulator of hepatic lipid metabolism. p107 expression is increased in patients with MASLD and correlates with disease severity. In mouse models, global and liver-specific p107 deficiency protect against high-fat diet-induced steatosis without affecting body weight. This is associated with reduced expression of lipogenic enzymes including fatty acid synthase (FASN), and enhanced mitochondrial oxidative pathways. Conversely, hepatic restoration of p107 reversed these effects and promoted lipid accumulation and endoplasmic reticulum stress. Consistent with this in human hepatocytes, p107 silencing reduces lipid accumulation, decreases DNL and enhances mitochondrial respiration, whereas p107 overexpression induces the opposite phenotype. Notably, FASN knockdown attenuates the pro-steatotic effects of p107, indicating that it is a critical downstream mediator of p107. Together, these findings establish p107 as a physiological regulator of hepatic lipid metabolism, with its dysregulation contributing to the development of MASLD.

physiology↗