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Trumpp, M.

Publications and source records attributed to Trumpp, M..

2 recordsLinked to original sources

Atheroprone Flow Activates SMAD-FOXO1 to drive Endothelial-to-Mesenchymal Transition and Atherosclerosis

BackgroundCardiovascular diseases are the leading cause of death worldwide with atherosclerosis as the main underlying pathology. A hallmark of atherosclerotic lesion formation is endothelial-to-mesenchymal transition (EndoMT) triggered by perturbed blood flow patterns at arterial bifurcations and curvatures. SMAD transcription factors (TFs), activated by bone morphogenetic protein (BMP) 9/10 or transforming growth factor beta (TGF{beta}) signaling, are indispensable for endothelial homeostasis. Yet, they also play a significant role in stimulating EndoMT. How different interacting co-factors mediate the shift towards a pathological SMAD response remains elusive. MethodsWe generated endothelial cell (EC)-specific SMAD1/5 or SMAD2/3 knock-out mice and performed assay for transposase accessible chromatin sequencing (ATAC-Seq) of EC nuclei from regions of atheroprone (aortic arch) and atheroprotective (descending thoracic aorta) flow to identify transcriptional co-regulators of SMADs. We validated this using single-cell (sc)ATAC-Seq and immunofluorescence staining data from wild-type mice. To assess conservation of our findings for the human situation, we performed co-immunoprecipitation and proximity ligation assays in human aortic ECs (HAoECs). We exposed HAoECs to pathological or physiological (i.e. oscillatory or pulsatile) flow and performed ATAC- and RNA-Seq. Next, transcriptomic and chromatin accessibility data were integrated and motif enrichment and TF footprinting analysis were performed. Finally, we used siRNA-mediated approaches, TF inhibition, and luciferase-based reporter gene assays to analyze the transcriptional response of target TFs and explored their presence in plaques of atheroprone low-density lipoprotein receptor-deficient mice. ResultsWe observed enrichment of FOXO TF family motifs in DNA loci with increased accessibility in response to atheroprone flow in vitro and in vivo. These motifs were associated with genes displaying enhanced mRNA expression. We observed that FOXO motifs are enriched in peaks lost upon EC-specific SMAD KO in mice. We identified SMADs and FOXO1 as interacting partners that form complexes upon atheroprone flow stimulation. Inhibitor experiments revealed that FOXO1 and SMADs mediate EndoMT upon atheroprone flow exposure by upregulating SNAI2. ConclusionWe identified SMAD/FOXO1 complexes that mediate EndoMT in response to atheroprone flow. Targeting this interaction can potentially reduce atherosclerotic burden by interfering with pathological flow-induced EndoMT and thus disease progression.

genomics↗

A versatile Halo- and SNAP-tagged BMP/TGFβ receptor library for quantification of cell surface ligand binding

The TGF{beta} superfamily of secreted growth factors comprises more than 30 members including TGF{beta}s, BMPs and Activins. While all TGF{beta} superfamily members signal through heteromeric receptor complexes to regulate a plethora of developmental and homeostatic processes, each ligand possesses a unique affinity towards a subset of BMP and TGF{beta} type I and type II receptors. Whereas the Activin and TGF{beta} class display a higher affinity towards type II receptors, BMPs and GDFs preferentially bind to type I receptors. Sofar, the lack of specific antibodies and chemical biology tools hampered simultaneous testing of ligand binding towards all BMP and TGF{beta} receptors. Here we present a N-terminally Halo- and SNAP-tagged TGF{beta}/BMP receptor library to visualize the receptor complexes in dual color. In combination with novel fluorescently labeled TGF{beta} superfamily ligands, we established a Ligand Surface Binding Assay (LSBA) for optical quantification of receptor-dependent growth factor binding for Activin A, TGF{beta}1 and BMP9 in a cellular context. We confirm ligand-receptor interface specificity by identifying BMPR2- or ALK2-mutants that switch from a low-affinity Activin A- or BMP9-receptor to a high-affinity receptor, respectively.

cell biology↗