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Mellgren, G.

Publications and source records attributed to Mellgren, G..

2 recordsLinked to original sources

ERα-regulated IRX3 controls the growth of ER-positive breast tumors

Estrogen receptor positive (ER+) breast cancer is primarily treated with endocrine therapies targeting ER signaling. Although endocrine therapy has substantially improved survival in ER+ breast cancer, metastatic disease remains largely incurable, underscoring the need to elucidate additional mechanisms driving growth and proliferation. Here, we show that the homeobox protein IRX3 is selectively overexpressed in ER+ breast cancer and define the molecular function of IRX3 in ER+ breast cancer using an integrated combination of in vitro, in vivo and in silico approaches. We uncover a previously uncharacterized distal regulatory region that controls IRX3 transcription via ER and associated steroid receptor coactivators. Consistent with this regulatory axis, anti-estrogen treatment resulted in marked downregulation of cellular IRX3 levels. Functionally, depletion of IRX3 suppresses proliferation of the human ER+ breast cancer cells in vitro, but paradoxically promotes tumor growth and metastatic dissemination in orthotopic xenografts in vivo by stimulating enhanced tumor vascularization. Finally, low tumor expression of IRX3 correlates with poorer survival outcomes in patients with ER+ breast cancer. Collectively, these findings establish IRX3 as an important regulator of ER+ breast tumor biology and reveal an ER-dependent role for IRX3 in modulating proliferative and vascular programs in tumor progression. SignificanceBy identifying a novel ER-dependent regulatory pathway, this work refines our understanding of how hormone signaling shapes both breast tumor growth and the surrounding microenvironment.

cancer biology↗

Mechanisms of the FTO locus association with obesity: Irx3 controls a sumoylation-dependent switch between adipogenesis and osteogenesis

BackgroundIRX3 is implicated in genetic predisposition to obesity via the FTO variant locus. IRX3 shows FTO risk allele-dependent upregulation specifically during early adipogenesis, leading to a shift from energy-dissipation to fat storage in mature adipocytes. However, how changes in IRX3 expression at one developmental stage affect cellular phenotype at a later stage remains unclear. We here hypothesize that IRX3 regulates adipocyte development via transcriptional modulation of epigenetic reprogramming factors. MethodsWe combined ChIP-, ATAC- and RNA-sequencing to map direct Irx3 target genes in regions of open chromatin during early adipogenesis of wild-type and Irx3-KO preadipocytes. Gene ontology analyses was performed to identify significantly enriched biological pathways. Denaturing western blotting was used to assess sumoylation levels, and the inhibitor ML-792 was used to specifically block sumoylation. Luciferase assays were performed to estimate effects of ML-792 on Ppar{gamma} activity. Bodipy lipid staining, immunofluorescence and qPCR were employed to assess adipogenic differentiation in 3D culture. Alkaline phosphatase and Alizarine Red S staining, as well as immunofluorescence and qPCR were used to assess osteogenic differentiation in 3D culture. ResultsWe identified more than 300 Irx3 binding sites in preadipocytes, and these were almost exclusively restricted to promoter regions, with a strong enrichment of genes related to sumoylation, histone modifications and chromatin remodeling. Genes from every step of the sumoylation cycle were bound by Irx3 and differentially expressed in response to Irx3-KO, leading to increased global sumoylation levels in the KO cells. Irx3 ablation and elevated sumoylation inhibited Ppar{gamma} activity and adipogenic differentiation in preadipocytes, both of which could be restored by pharmacological inhibition of sumoylation. The Irx3-KO cells demonstrated reduced epigenetic suppression against osteogenesis, resulting in increased osteogenesis in 3D culture. Finally, osteogenesis induced by Irx3 ablation could partially be reversed by inhibition of sumoylation. ConclusionsOur study has uncovered IRX3 as a novel upstream regulator of sumoylation, and a potent controller of epigenetic regulators, both directly and indirectly via suppressing global sumoylation levels. This study indicates that the FTO locus promotes obesity via IRX3-mediated suppression of sumoylation, which promotes adipogenic commitment and differentiation through epigenetic programming. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=61 SRC="FIGDIR/small/562662v1_figu1.gif" ALT="Figure 1"> View larger version (16K): org.highwire.dtl.DTLVardef@115feaborg.highwire.dtl.DTLVardef@102a6c0org.highwire.dtl.DTLVardef@111bd1corg.highwire.dtl.DTLVardef@1969061_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗