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1.
Biochim Biophys Acta Mol Cell Biol Lipids ; 1865(12): 158811, 2020 12.
Artículo en Inglés | MEDLINE | ID: mdl-32896622

RESUMEN

There is an increasing need to explore the mechanism of the progression of non-alcoholic fatty liver disease. Steroid metabolism is closely linked to hepatic steatosis and steroids are excreted as bile acids (BAs). Here, we demonstrated that feeding WKAH/HkmSlc inbred rats a diet supplemented with cholic acid (CA) at 0.5 g/kg for 13 weeks induced simple steatosis without obesity. Liver triglyceride and cholesterol levels were increased accompanied by mild elevation of aminotransferase activities. There were no signs of inflammation, insulin resistance, oxidative stress, or fibrosis. CA supplementation increased levels of CA and taurocholic acid (TCA) in enterohepatic circulation and deoxycholic acid (DCA) levels in cecum with an increased ratio of 12α-hydroxylated BAs to non-12α-hydroxylated BAs. Analyses of hepatic gene expression revealed no apparent feedback control of BA and cholesterol biosynthesis. CA feeding induced dysbiosis in cecal microbiota with enrichment of DCA producers, which underlines the increased cecal DCA levels. The mechanism of steatosis was increased expression of Srebp1 (positive regulator of liver lipogenesis) through activation of the liver X receptor by increased oxysterols in the CA-fed rats, especially 4ß-hydroxycholesterol (4ßOH) formed by upregulated expression of hepatic Cyp3a2, responsible for 4ßOH formation. Multiple regression analyses identified portal TCA and cecal DCA as positive predictors for liver 4ßOH levels. The possible mechanisms linking these predictors and upregulated expression of Cyp3a2 are discussed. Overall, our observations highlight the role of 12α-hydroxylated BAs in triggering liver lipogenesis and allow us to explore the mechanisms of hepatic steatosis onset, focusing on cholesterol and BA metabolism.


Asunto(s)
Ácidos y Sales Biliares/metabolismo , Disbiosis/metabolismo , Hidroxicolesteroles/metabolismo , Enfermedad del Hígado Graso no Alcohólico/metabolismo , Animales , Ácidos Cólicos/metabolismo , Ácido Desoxicólico/metabolismo , Disbiosis/etiología , Hidroxilación , Masculino , Enfermedad del Hígado Graso no Alcohólico/etiología , Ratas , Ratas Wistar , Ácido Taurocólico/metabolismo
2.
Br J Nutr ; 116(4): 603-10, 2016 08.
Artículo en Inglés | MEDLINE | ID: mdl-27464459

RESUMEN

Intestinal bacteria are involved in bile acid (BA) deconjugation and/or dehydroxylation and are responsible for the production of secondary BA. However, an increase in the production of secondary BA modulates the intestinal microbiota due to the bactericidal effects and promotes cancer risk in the liver and colon. The ingestion of Bacillus coagulans improves constipation via the activation of bowel movement to promote defaecation in humans, which may alter BA metabolism in the intestinal contents. BA secretion is promoted with high-fat diet consumption, and the ratio of cholic acid (CA):chenodeoxycholic acid in primary BA increases with ageing. The dietary supplementation of CA mimics the BA environment in diet-induced obesity and ageing. We investigated whether B. coagulans lilac-01 and soya pulp influence both BA metabolism and the maintenance of host health in CA-supplemented diet-fed rats. In CA-fed rats, soya pulp significantly increased the production of secondary BA such as deoxycholic acid and ω-muricholic acids, and soya pulp ingestion alleviated problems related to plasma adiponectin and gut permeability in rats fed the CA diet. The combination of B. coagulans and soya pulp successfully suppressed the increased production of secondary BA in CA-fed rats compared with soya pulp itself, without impairing the beneficial effects of soya pulp ingestion. In conclusion, it is possible that a combination of prebiotics and probiotics can be used to avoid an unnecessary increase in the production of secondary BA in the large intestine without impairing the beneficial functions of prebiotics.


Asunto(s)
Bacillus coagulans , Ácidos y Sales Biliares/metabolismo , Ácido Cólico/administración & dosificación , Suplementos Dietéticos , Glycine max , Mucosa Intestinal/metabolismo , Extractos Vegetales/metabolismo , Prebióticos , Animales , Intestinos/microbiología , Ratas , Simbióticos
3.
Biosci Biotechnol Biochem ; 79(6): 937-42, 2015.
Artículo en Inglés | MEDLINE | ID: mdl-25774422

RESUMEN

The signal molecule, 3-oxo-C12-homoserine lactone (3-oxo-C12-HSL), is similar to a mammalian hormone in bacteria. Although most studies have examined the effects of high 3-oxo-C12-HSL concentrations (>200 µM) on mammalian cellular functions because ~600 µM 3-oxo-C12-HSL can be secreted in biofilms of Pseudomonas aeruginosa grown in vitro, we previously showed that a low 3-oxo-C12-HSL concentration (30 µM) induces the apoptosis of undifferentiated Caco-2 cells through suppressing Akt activity. Here, we found that a low concentration of 3-oxo-C12-HSL-activated ERK1/2 in undifferentiated Caco-2 cells. Incubating cells with the ERK pathway inhibitor U0126 for 30 min alleviated the mucin 3 (MUC3) expression suppressed by 3-oxo-C12-HSL, and the upregulation of MUC3 expression induced by a 48-h incubation with U0126-reduced cell death. Thus, altered MUC3 expression caused by long-term attenuated ERK1/2 activity might correlate with the death of undifferentiated Caco-2 cells induced by 3-oxo-C12-HSL.


Asunto(s)
4-Butirolactona/análogos & derivados , Homoserina/análogos & derivados , Proteína Quinasa 1 Activada por Mitógenos/metabolismo , Proteína Quinasa 3 Activada por Mitógenos/metabolismo , Mucina 3/genética , Regulación hacia Arriba/efectos de los fármacos , 4-Butirolactona/farmacología , Células CACO-2 , Muerte Celular/efectos de los fármacos , Diferenciación Celular/efectos de los fármacos , Activación Enzimática/efectos de los fármacos , Homoserina/farmacología , Humanos
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