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Schoemig, L.

Publications and source records attributed to Schoemig, L..

2 recordsLinked to original sources

Microbiota metabolized Bile Acids accelerate Gastroesophageal Adenocarcinoma via FXR inhibition

BackgroundThe incidence of Barrett esophagus (BE) and Gastroesophageal Adenocarcinoma (GEAC) correlates with obesity and a diet rich in fat. Bile acids (BA) support fat digestion and undergo microbial metabolization in the gut. The farnesoid X receptor (FXR) is an important modulator of the BA homeostasis. The capacity of inhibiting cancer-related processes when activated, make FXR an appealing therapeutic target. In this work, we assess the role of diet on the microbiota-BA axis and evaluate the role of FXR in disease progression. ResultsHere we show that high fat diet (HFD) accelerated tumorigenesis in L2-IL1B mice (BE- and GEAC- mouse model) while increasing BA levels and enriching gut microbiota that convert primary to secondary BA. While upregulated in BE, expression of FXR was downregulated in GEAC in mice and humans. In L2-IL1B mice, FXR knockout enhanced the dysplastic phenotype and increased Lgr5 progenitor cell numbers. Treatment of murine organoids and L2-IL1B mice with the FXR agonist obeticholic acid (OCA) deacelerated GEAC progression. ConclusionWe provide a novel concept of GEAC carcinogenesis being accelerated via the diet-microbiome-metabolome axis and FXR inhibition on progenitor cells. Further, FXR activation protected with OCA ameliorated the phenotype in vitro and in vivo, suggesting that FXR agonists have potential as differentiation therapy in GEAC prevention. Statement of significanceIf its inhibition is linked to disease progression and its activation to cancer prevention, exploring the potential of FXR as a therapeutic target has great clinical relevance in GEAC context.

cancer biology↗

KRas, in addition to Tp53 is a driver for early carcinogenesis and a molecular target in a mouse model of invasive gastro-esophageal adenocarcinoma

ObjectiveThe incidence of gastro-esophageal adenocarcinoma (GEAC) has increased dramatically and is associated with Barretts Esophagus (BE). Gastric cardia progenitors are the likely origin for BE and GEAC. Here we analyze p53, Rb1 and Kras alterations in Lgr5 progenitor cells during carcinogenesis. DesignWe introduced single and combined genetic alterations (p53, Rb1 and Kras) in Lgr5-expressing progenitor cells at the inflamed gastroesophageal junction in the L2-IL1b (L2) mouse model crossed to Lgr5-CreERTmice. For in-vitro treatment we utilized mouse and human 3D organoids. ResultsInactivation of Tp53 or Rb1 alone (L2-LP and L2-LR mice) resulted in metaplasia, and mild dysplasia, while expression of KrasG12D (L2-LK) accelerated dysplasia in L2-IL1b mice. Dual induction of genetic alteration in L2-LPR, L2-LKP and L2-LKR mice confirmed the accelerating role of mutant Kras, with the development of invasive cancer in mice with combined Tp53 and Kras alteration. All three genetic events in cardia progenitor cells generated invasive cancer at 6 months of age, with chromosomal instability (CNV). The dominant role of Kras prompted us to treat with a SHP2 inhibitor in combination with an ERK or MEK inhibitor, leading to reduced growth in Kras mutant organoids. SHP2 and MEK inhibition in-vivo reduced Kras dependent tumor formation. ConclusionIn the first invasive GEAC mouse model, Kras mutation in combination with loss of tumor suppressor genes Tp53 or Rb1 emerges as a key player in GEAC and with importance of p53 and Rb1 in promoting metaplasia. Targeting this SHP2/MEK/KRAS pathway represents a promising therapeutic option for Kras altered GEAC. What is already known on this topicThe increased incidence of GEAC is challenging current screening and surveillance strategies. Therapeutic and preventive options are limited due to a lack of knowledge on the role of genetic alterations commonly associated with GEAC and their function during progression to dysplasia. What this study addsWe generate the first invasive GEAC model and show that KRAS at least in combination with a second genetic alterations (Tp53 and/or Rb1) may be a driver of tumorigenesis, and targeting KRAS alterations could be a promising now treatment substitution. How this study might affect research, practice or policyTargeting KRAS alterations will be important for GEAC, especially as specific KRAS inhibitor are on the horizon. In addition, a concept of single genetic alteration inducing metaplasia as an adaptation to chronic inflammation might emerge as an important factor for surveillance.

cancer biology↗