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Fuentes-Mateos, R.

Publications and source records attributed to Fuentes-Mateos, R..

2 recordsLinked to original sources

cGAS-STING drives alveolar epithelial cell dysfunction in cigarette smoke-induced lung injury

Chronic inflammation induced by cigarette smoke (CS) plays a central role in the pathogenesis of chronic obstructive pulmonary disease (COPD), but its impact on lung epithelial progenitor function and regenerative capacity remains incompletely understood. Here, we combined in vivo and in vitro approaches to dissect how CS exposure and subsequent inflammatory insults shape epithelial repair dynamics. A 6-week whole-body CS exposure model in mice induced lung function impairment and altered gene expression profiles in alveolar epithelial cells, prominently activating interferon (IFN)-related pathways and the cGAS-STING axis. Alveolar epithelial cells from CS-exposed mice generated a similar number, but larger organoids with reduced alveolar differentiation compared to air-exposed mice. Notably, these cells obtained from CS-exposed mice displayed resistance to IFN{gamma}-induced suppression of organoid growth, contrasting with the strong inhibitory effect of IFN{gamma} observed in controls. This phenotype was recapitulated in a two-hit in vitro model using cigarette smoke extract (CSE), in which chronic CSE exposure impaired regeneration and differentiation while inducing resistance to IFN{gamma}. Gene expression and proteomic analyses revealed upregulation of Zbp1, Irf7, and other upstream IFN regulators, correlating negatively with alveolar differentiation potential. Inhibition of the cGAS-STING pathway with RU.521 partially rescued organoid formation, increased proliferation, and alveolar differentiation. Together, our data reveal that CS exposure alters the alveolar epithelial landscape, inducing a stress-adapted, IFN{gamma}-resistant state that compromises alveolar regeneration, with cGAS-STING activation as a key driver of early CS-associated alveolar type 2 cell dysfunction. These findings provide new insight into how chronic inflammation reshapes progenitor cell function during early lung injury.

Cell Biology↗

Concomitant ablation of SOS1 and SOS2 triggers a lethal phenotype involving compromised intestinal integrity and widespread septicemia

The RAS guanine nucleotide exchange factors Son of Sevenless 1 and 2 (SOS1 and SOS2) are key regulators of RAS signaling pathways controlling cellular proliferation, differentiation, and survival processes that are essential for correct tissue homeostasis. While mice lacking both SOS1 and SOS2 die precipitously, we demonstrate herein that the combined genetic ablation of SOS1 and SOS2 triggers spontaneous, gut-derived, lethal bacteremia. Double-knockout (DKO) SOS1/2 mice exhibit extensive intestinal tissue damage, massive bacterial leakage out of the gut, and rapid progression to multi-organ failure and death. At the cellular level, loss of both SOS1 and SOS2 leads to profound immune cell depletion and a marked reduction in intestinal stem cell abundance and proliferative capacity, which is accompanied by severe disruption of intestinal architecture and increased epithelial permeability, indicating a breakdown of gut barrier integrity. Notably, therapeutic interventions aimed at enhancing cellular stemness significantly improve survival in SOS1/2 DKO mice, restoring intestinal proliferation and tissue organization. Collectively, our findings identify SOS1 and SOS2 as critical regulators of intestinal homeostasis and regenerative capacity during systemic infection and reveal stemness reinforcement as a potential strategy to overcome lethal susceptibility to sepsis.

cell biology↗