Changes in the FXR-cistrome and alterations in bile acid physiology in Wilson disease

Author:

Wooton-Kee Clavia Ruth12ORCID,Yalamanchili Hari K.13ORCID,Mohamed Islam4,Hassan Manal5,Setchell Kenneth D.R.67,Narvaez Rivas Monica67,Coskun Ayse K.8ORCID,Putluri Vasanta29,Putluri Nagireddy2ORCID,Jalal Prasun4ORCID,Schilsky Michael L.8ORCID,Moore David D.10ORCID

Affiliation:

1. Department of Pediatrics-Nutrition, Children’s Nutrition Research Center, Baylor College of Medicine, Houston, Texas, USA

2. Department of Cellular and Molecular Biology, Baylor College of Medicine, Houston, Texas, USA

3. Department of Pediatrics-Neurology, Jan and Dan Duncan Neurological Research Institute, Texas Children’s Hospital, Houston, Texas, USA

4. Department of Internal Medicine, Baylor College of Medicine, Houston, Texas, USA

5. Department of Epidemiology, Division of Cancer Prevention and Population Sciences, MD Anderson Cancer Center, Houston, Texas, USA

6. Division of Pathology and Laboratory Medicine, Cincinnati Children’s Hospital, Cincinnati, Ohio, USA

7. Department of Pediatrics, University of Cincinnati College of Medicine, Cincinnati, Ohio, USA

8. Department of Medicine and Surgery, Yale School of Medicine, New Haven, Connecticut, USA

9. Advanced Technology Core, Dan Duncan Cancer Center, Baylor College of Medicine, Houston, Texas, USA

10. Department of Nutrition Sciences and Toxicology, University of California, Berkeley, Berkeley, California, USA

Abstract

Background: Wilson disease (WD) is an autosomal recessive disorder that results in excessive hepatic copper, causing hepatic steatosis, inflammation, fibrosis, cirrhosis, and liver failure. Previous studies have revealed dysregulation of many farnesoid X receptor (FXR) metabolic target genes in WD, including the bile salt exporter pump, the major determinant of bile flow. Methods: We tested the hypothesis that the FXR-cistrome is decreased in Atp7b −/ mice in accord with dysregulated bile acid homeostasis. Results: FXR binding within Atp7b −/ mouse livers displayed surprising complexity: FXR binding was increased in distal intergenic regions but decreased in promoter regions in Atp7b −/ versus wild-type mice. Decreased FXR occupancy in Atp7b −/ versus wild-type mice was observed in hepatocyte metabolic and bile acid homeostasis pathways, while enrichment of FXR binding was observed in pathways associated with cellular damage outside of hepatocytes. Indeed, disparate FXR occupancy was identified in parenchymal and non-parenchymal marker genes in a manner that suggests decreased FXR activity in parenchymal cells, as expected, and increased FXR activity in non-parenchymal cells. Consistent with altered FXR function, serum and liver bile acid concentrations were higher in Atp7b −/ mice than in wild-type mice. Comparison of bile acid profiles in the serum of WD patients with “liver,” “neurological,” or “mixed” disease versus healthy controls also revealed increases in specific bile acids in WD-liver versus healthy controls. Conclusions: We identified novel FXR-occupancy across the genome that varied in parenchymal and non-parenchymal cells, demonstrating complex FXR regulation of metabolic and hepatocellular stress pathways in Atp7b −/ mice. Dynamic changes in FXR activity support our novel finding of altered bile acid metabolism in Atp7b −/ mice and WD patients.

Publisher

Ovid Technologies (Wolters Kluwer Health)

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