Interactions Between Nuclear Receptor SHP and FOXA1 Maintain Oscillatory Homocysteine Homeostasis in Mice
Hiroyuki Tsuchiya1, Kerry-Ann da Costa2, Sangmin Lee3
1Department of Medicine, University of Utah School of Medicine, Salt Lake City, Utah.
Background & Aims:
Hyperhomocysteinemia is often associated with liver and metabolic diseases. We studied nuclear receptors that mediate oscillatory control of homocysteine homeostasis in mice.
Methods:
We studied mice with disruptions in Nr0b2 (called small heterodimer partner [SHP]-null mice), betaine-homocysteine S-methyltransferase (Bhmt), or both genes (BHMT-null/SHP-null mice), along with mice with wild-type copies of these genes (controls). Hyperhomocysteinemia was induced by feeding mice alcohol (National Institute on Alcohol Abuse and Alcoholism binge model) or chow diets along with water containing 0.18% DL-homocysteine. Some mice were placed on diets containing cholic acid (1%) or cholestyramine (2%) or high-fat diets (60%). Serum and livers were collected during a 24-hour light-dark cycle and analyzed by RNA-seq, metabolomic, and quantitative polymerase chain reaction, immunoblot, and chromatin immunoprecipitation assays.
Results:
SHP-null mice had altered timing in expression of genes that regulate homocysteine metabolism compared with control mice. Oscillatory production of S-adenosylmethionine, betaine, choline, phosphocholine, glyceophosphocholine, cystathionine, cysteine, hydrogen sulfide, glutathione disulfide, and glutathione, differed between SHP-null mice and control mice. SHP inhibited transcriptional activation of Bhmt and cystathionine γ-lyase by FOXA1. Expression of Bhmt and cystathionine γ-lyase was decreased when mice were fed cholic acid but increased when they were placed on diets containing cholestyramine or high-fat content. Diets containing ethanol or homocysteine induced hyperhomocysteinemia and glucose intolerance in control, but not SHP-null, mice. In BHMT-null and BHMT-null/SHP-null mice fed a control liquid, lipid vacuoles were observed in livers. Ethanol feeding induced accumulation of macrovesicular lipid vacuoles to the greatest extent in BHMT-null and BHMT-null/SHP-null mice.
Conclusions:
Disruption of Shp in mice alters timing of expression of genes that regulate homocysteine metabolism and the liver responses to ethanol and homocysteine. SHP inhibits the transcriptional activation of Bhmt and cystathionine γ-lyase by FOXA1.
Insights
Small heterodimer partner (SHP) disruption alters homocysteine metabolism timing in mice, impacting liver responses to alcohol and homocysteine. SHP regulates key metabolic gene expression, crucial for maintaining liver health.
Area of Science:
- Hepatology
- Metabolic disease research
- Molecular endocrinology
Background:
- Hyperhomocysteinemia is linked to liver and metabolic disorders.
- Nuclear receptors play a role in regulating homocysteine homeostasis.
Purpose of the Study:
- Investigate the role of small heterodimer partner (SHP) in controlling homocysteine metabolism.
- Determine how SHP influences liver responses to ethanol and homocysteine.
Main Methods:
- Studied mice with genetic disruptions in SHP and betaine-homocysteine S-methyltransferase (Bhmt).
- Induced hyperhomocysteinemia using alcohol or homocysteine-supplemented diets.
- Analyzed liver and serum samples using RNA-seq, metabolomics, and molecular assays.
Main Results:
- SHP-null mice exhibited altered gene expression timing in homocysteine metabolism.
- SHP inhibited FOXA1-mediated transcriptional activation of Bhmt and cystathionine γ-lyase.
- Ethanol and homocysteine induced hyperhomocysteinemia and glucose intolerance in control mice, but not SHP-null mice.
Conclusions:
- SHP disruption alters the temporal regulation of homocysteine metabolism genes.
- SHP plays a critical role in mediating liver responses to ethanol and homocysteine challenges.
- SHP acts as an inhibitor of FOXA1's transcriptional activation of Bhmt and cystathionine γ-lyase.
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