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Buehring, B.

Publications and source records attributed to Buehring, B..

2 recordsLinked to original sources

STING-STAT3-SOX18 Axis Drives EndMT and Epigenetic Reprogramming in SAVI Lung Fibrosis

A high prevalence of early-onset interstitial lung disease, including pulmonary fibrosis, in pediatric patients with Stimulator of interferon genes (STING)-Associated Vasculopathy with onset in infancy (SAVI) suggests a critical role for the cGAS-STING pathway in the pathogenesis of pulmonary fibrosis. We identified an endothelial-to-mesenchymal transition (EndMT) signature in lesional lung biopsies from SAVI patients, marked by a loss of endothelial and acquisition of mesenchymal markers. Consistently, induced pluripotent stem cell-derived endothelial cells (iECs) from SAVI patients harboring gain-of-function STING1 mutations spontaneously undergo EndMT, a process rescued in isogenic-correction. In endothelial cells, STING activation induces IRF3-independent STAT3 phosphorylation, initiating a SLUG-dependent mesenchymal transcriptional program while repressing SOX18 and an epigenetically-regulated endothelial maintenance network. Our studies define a non-canonical cGAS-STING-STAT3 signaling axis that couples a mesenchymal transcriptional program with epigenetic silencing of an endothelial maintenance program, promoting TGF{beta}-independent STING-mediated EndMT and endothelial dysfunction, and suggesting STING as a therapeutic target for inflammatory pulmonary fibrosis.

cell biology↗

A complex osteoporotic milieu is associated with arterial stiffening and PDGF-BB-mediated calcification of human smooth muscle cells

Accumulating evidence links skeletal and vascular aging, yet the pathological cross-talk between osteoporotic bone and vascular calcification remains insufficiently understood. In this retrospective exploratory study, we show that osteoporotic individuals exhibit a distinct systemic milieu characterized by elevated eosinophil, neutrophil, and platelet counts, as well as altered levels of sCD40L, PDGF-BB, osteopontin, and SDF-1. These changes correlate with both bone metabolism and arterial stiffness, indicating a multifactorial bone-vascular interplay. Moreover, osteoporotic sera accelerated calcification of human vascular smooth muscle cells in vitro, with PDGF-BB emerging as a central mediator. Inhibition of PDGF-BB downstream signaling blocked this effect, suggesting a mechanistic role of PDGF-BB in linking the osteoporotic milieu to vascular calcification. Conceptualizing this cross-talk as a complex adaptive system advances our understanding of the disease dynamics between localized bone loss and vascular pathologies. Furthermore, it may guide therapeutic strategies, with PDGF-BB as a potential target, to support healthier aging.

cell biology↗