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Unlabelled: Signaling by TGFβ family cytokines plays a tumor-suppressive role by inducing cell differentiation, while it promotes malignant progression through epithelial-to-mesenchymal transition (EMT). Identification of the mechanisms regulating the switch from tumor suppression to tumor promotion could identify strategies for cancer prevention and treatment. To identify the key genetic alterations that determine the outcome of TGFβ signaling, we used mouse intestinal tumor-derived organoids carrying multiple driver mutations in various combinations to examine the relationship between genotypes and responses to the TGFβ family cytokine activin A. KrasG12D mutation protected organoid cells from activin A-induced growth suppression by inhibiting p21 and p27 expression. Furthermore, Trp53R270H gain-of-function (GOF) mutation together with loss of wild-type Trp53 by loss of heterozygosity (LOH) promoted activin A-induced partial EMT with formation of multiple protrusions on the organoid surface, which was associated with increased metastatic incidence. Histologic analysis confirmed that tumor cells at the protrusions showed loss of apical-basal polarity and glandular structure. RNA sequencing analysis indicated that expression of Hmga2, encoding a cofactor of the SMAD complex that induces EMT transcription factors, was significantly upregulated in organoids with Trp53 GOF/LOH alterations. Importantly, loss of HMGA2 suppressed expression of Twist1 and blocked activin A-induced partial EMT and metastasis in Trp53 GOF/LOH organoids. These results indicate that TP53 GOF/LOH is a key genetic state that primes for TGFβ family-induced partial EMT and malignant progression of colorectal cancer. Activin signaling may be an effective therapeutic target for colorectal cancer harboring TP53 GOF mutations.
Significance: KRAS and TP53 mutations shift activin-mediated signaling to overcome growth inhibition and promote partial EMT, identifying a subset of patients with colorectal cancer that could benefit from inhibition of TGFβ signaling.
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http://dx.doi.org/10.1158/0008-5472.CAN-23-1490 | DOI Listing |
Front Pharmacol
August 2025
BioISI-Biosystems & Integrative Sciences Institute, Faculty of Sciences, University of Lisboa, Lisboa, Portugal.
Introduction: Cystic fibrosis (CF) is a monogenic disease caused by mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene, which encodes a Cl/HCO ion channel located at the apical plasma membrane (PM) of epithelial cells. CFTR dysfunction disrupts epithelial barrier integrity, drives progressive airway remodelling and has been associated with epithelial-to-mesenchymal transition (EMT), a process in which cells lose epithelial properties and acquire mesenchymal characteristics. We previously demonstrated that mutant CFTR directly drives partial EMT, independently of secondary events such as bacterial infection or inflammation.
View Article and Find Full Text PDFBiol Open
September 2025
National Centre for Biological Sciences, Tata Institute for Fundamental Research, GKVK PO, Bellary Road, Bangalore, 560065, India.
Epithelial fusion is a fundamental morphogenetic process critical for the closure and compartmentalisation of developing organs. While widely studied in systems such as neural tube and palatal closure, the cellular transitions that enable fusion remain poorly understood. Here, we investigate epithelial fusion during chick otic vesicle (OV) closure and identify a transient population of cells at the epithelial interface that mediate this process.
View Article and Find Full Text PDFBr J Cancer
September 2025
Department of Pathology, Albert Einstein College of Medicine, Bronx, NY, USA.
Redox Biol
August 2025
Tianjin Key Laboratory of Tumour Microenvironment and Neurovascular Regulation, School of Medicine, Nankai University, Tianjin, 300071, PR China. Electronic address:
While epithelial-mesenchymal plasticity (EMP) drives cancer metastasis, its regulation by redox dynamics remains poorly understood. Herein, we identified an oxidative stress-responsive CBP/SIRT1 axis that coordinated ZEB1 acetylation at K1108 to promote lung metastasis in triple-negative breast cancer (TNBC). Mechanistically, the biochemical and functional analyses revealed that the dual-acetyltransferase CBP, through stabilization and autoacetylation by oxidative stress, formed a dynamic partnership with SIRT1 to execute precision lysine modification.
View Article and Find Full Text PDFEnviron Res
August 2025
Department of Pharmacology and Toxicology, Veterinary Research Institute, Brno, Czech Republic. Electronic address:
In this study, effects of environmental carcinogen benzo[a]pyrene (BaP) on deregulation of sphingolipid (SL) and glycosphingolipid (GSL) metabolism were studied during BaP-induced transformation of normal human bronchial epithelial HBEC-12KT cells. After 2-weeks of exposure, BaP altered their morphology, while it downregulated sphingosine-1-phosphate (S1P) and upregulated sphingosine, gangliosides, GM3 and Lc3 GSLs. A longer, 8-week exposure to BaP, further increased cell migratory capacity, induced epithelial-to-mesenchymal transition (EMT) markers and EMT-related transcriptional regulators (SNAI1, ZEB1 and ZEB2), and it increased intracellular sphingosine, ceramide-1-phosphate, as well as a series of GSLs (glucosylceramide, lactosylceramide, GM1a, GD3, Lc3 and Gb3).
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