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Secondary bile acids mediate high-fat diet–induced upregulation of R-spondin 3 and intestinal epithelial proliferation
Ji-Yao Li, Merritt Gillilland III, Allen A. Lee, Xiaoyin Wu, Shi-Yi Zhou, Chung Owyang
Ji-Yao Li, Merritt Gillilland III, Allen A. Lee, Xiaoyin Wu, Shi-Yi Zhou, Chung Owyang
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Research Article Gastroenterology

Secondary bile acids mediate high-fat diet–induced upregulation of R-spondin 3 and intestinal epithelial proliferation

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Abstract

A high-fat diet (HFD) contributes to the increased incidence of colorectal cancer, but the mechanisms are unclear. We found that R-spondin 3 (Rspo3), a ligand for leucine-rich, repeat-containing GPCR 4 and 5 (LGR4 and LGR5), was the main subtype of R-spondins and was produced by myofibroblasts beneath the crypts in the intestine. HFD upregulated colonic Rspo3, LGR4, LGR5, and β-catenin gene expression in specific pathogen–free rodents, but not in germ-free mice, and the upregulations were prevented by the bile acid (BA) binder cholestyramine or antibiotic treatment, indicating mediation by both BA and gut microbiota. Cholestyramine or antibiotic treatments prevented HFD-induced enrichment of members of the Lachnospiraceae and Rumincoccaceae, which can transform primary BA into secondary BA. Oral administration of deoxycholic acid (DCA), or inoculation of a combination of the BA deconjugator Lactobacillus plantarum and 7α-dehydroxylase–containing Clostridium scindens with an HFD to germ-free mice increased serum DCA and colonic Rspo3 mRNA levels, indicating that formation of secondary BA by gut microbiota is responsible for HFD-induced upregulation of Rspo3. In primary myofibroblasts, DCA increased Rspo3 mRNA via TGR5. Finally, we showed that cholestyramine or conditional deletion of Rspo3 prevented HFD- or DCA-induced intestinal proliferation. We conclude that secondary BA is responsible for HFD-induced upregulation of Rspo3, which, in turn, mediates HFD-induced intestinal epithelial proliferation.

Authors

Ji-Yao Li, Merritt Gillilland III, Allen A. Lee, Xiaoyin Wu, Shi-Yi Zhou, Chung Owyang

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Figure 5

Secondary BAs increased Rspo3 gene expression in myofibroblasts via TGR5.

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Secondary BAs increased Rspo3 gene expression in myofibroblasts via TGR5...
(A) Primary myofibroblasts from rat colon stain positive for α-SMA and vimentin, and negative for desmin. (B) Myofibroblasts stain positive for α-SMA, vimentin, and Rspo3. (C) RT-PCR of Rspo3, BA membrane receptor TGR5, and nuclear receptor FXR-α and pregnane X (PRX) in primary myofibroblasts. (D) Secondary BA DCA, but not primary BA CA, increased Rspo3 gene expression in myofibroblasts. n = 6. (E) TGR5-specific agonist oleanolic acid (1 μM/L) increased Rspo3 gene expression, but the nuclear receptor–specific agonist GW4064 (1 μM/L) had no effect (left). Knockdown of TGR5 abolished the effect of DCA on Rspo3 expression (right). n = 5. (F) qPCR showed that TGR5 was decreased by 60% after knockdown. n = 5. One-way ANOVA with Bonferroni post hoc analysis (D and E) or 2-tailed unpaired Student’s t test (F) was used. *P < 0.05, **P < 0.01.

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