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Sommerauer, C.

Publications and source records attributed to Sommerauer, C..

2 recordsLinked to original sources

Estrogen receptor activation remodels TEAD1 gene expression to alleviate nonalcoholic fatty liver disease

IntroductionThe occurrence of obesity-related hepatic malignancies differs between sexes, suggesting the involvement of sex hormones. Female sex hormones maintain cell homeostasis through estrogen receptor (ER) signaling and protect from developing nonalcoholic fatty liver disease (NAFLD) in mice and humans. RationaleTo understand recovery from high-fat diet (HFD)-induced liver disease in males upon estrogen treatment, we comprehensively characterized molecular changes in the liver upon selective activation of estrogen receptors (ERs) to identify novel therapeutic targets downstream of estrogen signaling. MethodsTo dissect hepatic ER isoform-driven responses, we integrated liver transcriptomes from female and male HFD mice treated with or without four different estrogen agonists, along with multiomics data, including bulk, single-cell and spatial transcriptomics, chromatin profiling, machine learning models and advanced microscopy. Patient cohorts and primary human hepatocyte spheroids datasets were included. ResultsOnly males developed liver steatosis. We found that selective activation of either ER or ER{beta} reduced HFD-induced hepatic steatosis in male mice. Systemic ER activation restored HFD-induced aberrant gene expression of cellular processes across liver cell types, including hepatocytes. Profiling of marked histones revealed that ER activation modulated promoter and enhancer sites and identified 68 estrogen-sensitive enhancer-gene pairs. Most of these genes were similarly deregulated in human nonalcoholic fatty liver disease (NAFLD) patients, including the transcription factor TEAD1. TEAD1 expression increased in NAFLD patients, and inhibiting TEAD ameliorated steatosis in spheroids by suppressing lipogenic pathways. ConclusionsSystemic activation of ER or ER{beta} modulates molecular pathways in the liver to counteract NAFLD. Our study identified TEAD1 as a key ER-sensitive gene and suggested that its inhibition poses a therapeutic strategy to combat NAFLD without the undesired side effects elicited by estrogen signaling. Clinical research relevanceWe identified drug targets downstream of estrogen signaling, including TEAD1, and demonstrate that TEAD inhibition improves steatosis by suppressing lipogenic pathways. Basic research relevanceThe targeted activation of nuclear ERs recovers high-fat diet-induced molecular and physiological liver phenotypes by remodeling core pathways beyond lipid metabolism. ER-responsive enhancers regulate central metabolic genes of clinical significance in NAFLD patients, highlighting the potential impact of this research on understanding liver cell plasticity. HIGHLIGHTSO_LIsteatosis in livers of high-fat diet (HFD) male mice was effectively reduced by selective activation of estrogen receptors (ER and ER{beta}) with four different agonists. C_LIO_LIER agonist treatments successfully reversed HFD-induced changes in gene regulation and expression, revealing new treatment targets involving previously unconnected molecular pathways. C_LIO_LIestrogen-sensitive enhancers regulated important genes, including TEAD1, emerging as pivotal NAFLD regulators significantly impacting metabolic processes. C_LIO_LIhigh TEAD1 gene expression in NAFLD patients correlated with disease severity, underscoring its clinical significance in disease progression. C_LIO_LIinhibiting TEAD with small molecules alleviated steatosis by suppressing lipogenic pathways, resembling some of the same beneficial effects as estrogen treatment. C_LI

genomics↗

CRISPR-Cas9-mediated genome engineering exaggerates genomic deletion at 10q23.31 including the PTEN gene locus mimicking cancer profiles

The CRISPR-Cas9 system is a powerful tool for studying gene functions and has tremendous potential for disease treatment. However, precise genome editing requires thorough assessments to minimize unintended on- and off-target effects. Here, we report an unexpected deletion of a 287 kb region on Chromosome 10 (10q23.31) in chronic myelogenous leukemia HAP1 cells, which are frequently used in CRISPR screens. The deleted region encodes regulatory genes, including PAPSS2, ATAD1, KLLN, and PTEN. We found that this deletion was not a direct consequence of CRISPR-Cas9 off-targeting but rather occurred frequently by the process of generating CRISPR-Cas9-modifed cells. The deletion was associated with global changes in histone acetylation and gene expression, affecting fundamental cellular processes such as cell cycle and DNA replication. We detected this deletion in cancer patient genomes. As in HAP1 cells, the deletion contributed to similar gene expression patterns among cancer patients despite interindividual differences. Overall, our findings suggest that the unintended deletion of 10q23.31 can confound CRISPR-Cas9 studies, highlights the importance of assessing unintended genomic changes in CRISPR-Cas9-modified cells and may have clinical significance in cancer research. HighlightsO_LICRISPR-Cas9-modified HAP1 cells carry an unexpected large genomic deletion at 10q23.31 encompassing four protein-coding genes frequently expressed across various cell types. C_LIO_LIThe 10q23.31 deletion is accompanied by global changes in histone modification and transcriptomes. C_LIO_LIThe generation of CRISPR-Cas9-modified cells rather than Cas9 activity increases the frequencies of the deletion at 10q23.31. C_LIO_LIThe 10q23.31 deletion identified in HAP1 cells resembles a commonly occurring deletion pattern in cancer patients. C_LI

cancer biology↗