Sort   by:  
 Page size 
Metabolic reprogramming plays a critical role in heart failure (HF), but its regulatory mechanisms remain incompletely understood. Zinc finger E-box binding homeobox 1 (ZEB1), a transcription factor initially identified as a regulator of epithelial-mesenchymal transition, has recently been implicate...
2026-09-28 | MTBLS15833 | MetaboLights
Regulation of organ size is important for development and tissue homeostasis. In Drosophila, Hippo signaling controls organ size by regulating the activity of a TEAD transcription factor, Scalloped, through modulation of its coactivator protein Yki. The role of mammalian Tead proteins in growth r...
ORGANISM(S): Mus musculus 
Here we investigate the effect of the dual inhibition, in KRASG12C mutated NSCLC cells, using the KRASG12Ci adagrasib (MRTX849) and the pan-TEAD inhibitor (TEADi) K-975. We show that K-975 enhances adagrasib-induced tumor cell growth inhibition in cancer cells. Mechanistically, we detect a downregul...
ORGANISM(S): Homo Sapiens (human) 
YAP is the principle effector of the Hippo signaling pathway; a key regulator of tissue homeostasis whose dysregulation is linked to cancer development. YAP regulation of gene expression is thought to involve the TEAD transcription factor family. Here we show that YAP and TEAD1 binding always co-occ...
ORGANISM(S): Homo sapiens 
TEAD1 emerged as an estrogen-sensitive gene that was upregulated in a HFD mouse model and in NAFLD patients. We investigated the roles of TEAD in NAFLD by treating primary human hepatocyte spheroids with two small molecule inhibitors blocking the TEAD/YAP interaction. One small molecule blocks the i...
ORGANISM(S): Homo sapiens 
The genomic regulatory programs that underlie human organogenesis are poorly understood. Human pancreas development, in particular, has pivotal implications for pancreatic regeneration, cancer, and diabetes. We have now created maps of transcripts, active enhancers, and transcription factor networks...
ORGANISM(S): Homo sapiens 
The TEAD (1-4) transcription factors comprise the conserved TEA/ATTS DNA binding domain recognising the MCAT element in the promoters of muscle-specific genes. Despite extensive genetic analysis, the function of TEAD factors in muscle differentiation has proved elusive due to redundancy amongst the ...
ORGANISM(S): Mus musculus 
TEAD transcription factors are responsible for the transcriptional output of Hippo signalling1,2. TEAD activity is primarily regulated by phosphorylation of its coactivators YAP and TAZ3,4. In addition, cysteine palmitoylation has recently been shown to regulate TEAD activity5,6. Here, we report lys...
ORGANISM(S): Homo sapiens (Human) 
2023-03-19 | PXD033939 | Pride
Cellular changes during an epithelial-mesenchymal transition (EMT) largely rely on global changes in gene expression orchestrated by transcription factors. Tead transcription factors and their co-factors Yap and Taz have been shown to be implicated in EMT, nevertheless, their direct target genes dur...
ORGANISM(S): Mus musculus 
Angiogenesis, the process by which endothelial cells (ECs) form new blood vessels from existing ones, is intimately linked to the tissue's metabolic milieu and often occurs at nutrient-deficient sites. However, ECs rely on sufficient metabolic resources to support growth and proliferation. How endot...
ORGANISM(S): Homo sapiens (Human) 
2022-05-08 | PXD026872 | Pride
Sort   by:  
 Page size