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Chang, R. C.

Publications and source records attributed to Chang, R. C..

4 recordsLinked to original sources

Brown Adipose Tissue Dysfunction Links Obesogen Exposure to Reduced Energy Expenditure and Transgenerational Obesity

Obesity has become a global health challenge, and increasing evidence suggests that environmental obesogens contribute to its prevalence. Tributyltin (TBT) is a model obesogen known to activate PPAR{gamma} and RXR and to promote transgenerational obesity in mice, but the mechanisms linking TBT exposure to impaired energy balance remain poorly defined. Brown adipose tissue (BAT) is a central regulator of energy expenditure (EE) and basal metabolic rate (BMR) through both UCP1-dependent and UCP1-independent pathways. Here, we tested whether ancestral TBT exposure disrupts BAT function across generations. To assess whether TBT alters body composition and thermogenic capacity, we measured fat and lean mass, BAT gene expression, mitochondrial abundance, and core body temperature in F1 and F3 offspring. TBT-group males accumulated more fat mass without changes in lean mass or food intake scaled to metabolic size, indicating reduced EE/BMR. Expression of BAT lineage and oxidative genes (Zic1, Ebf2, Pgc1a, Pdk4) was suppressed in TBT-group males across generations. Ucp1 expression was unchanged at baseline but decreased after high-fat diet (HFD) challenge, whereas Ucp2 and Ucp4 were reduced even at baseline. In addition, key UCP1-independent thermogenic genes involved in creatine (Slc6a8, Ckb) and calcium (Atp2a2, Itpr) futile cycles were significantly decreased, while lipid-cycle genes (Pnpla2, Abhd5) were unaffected. Mitochondrial DNA content was largely unchanged, but core body temperature was reduced in TBT-group males prior to diet challenge, confirming impaired basal thermogenesis. These findings demonstrate that ancestral TBT exposure produces male-specific and heritable defects in BAT identity and thermogenic capacity. By suppressing both UCP1-dependent and UCP1-independent pathways without altering mitochondrial abundance, TBT-group males exhibit reduced energy expenditure and basal metabolic rate. These results identify BAT dysfunction as a mechanistic link between environmental obesogen exposure and transgenerational susceptibility to obesity.

pharmacology and toxicology↗

miR-223 Plays A Critical Role in Obesogen-Enhanced Adipogenesis in Mesenchymal Stem Cells and in Transgenerational Obesity

Exposure of pregnant F0 mouse dams to the obesogen tributyltin (TBT) predisposes unexposed male descendants to obesity and diverts mesenchymal stem cells (MSCs) toward the adipocytic lineage. TBT also promotes adipogenic commitment and differentiation of MSCs, in vitro. We sought to identify TBT-induced factors predisposing MSCs toward the adipocytic fate. We exposed mouse MSCs to TBT, the PPAR{gamma}-selective agonist rosiglitazone or the RXR-selective agonist LG-100268 and determined their transcriptomal profiles to determine candidate microRNAs (miR) regulating adipogenic commitment and differentiation. Of the top 10 candidate microRNAs predicted by Ingenuity Pathway Analysis, miR-21, miR-33 and miR-223 were expressed in a manner consistent with an ability to differentially regulate target genes during adipogenesis. After 24 hours exposure to 50 nM TBT, miR-223 levels in MSCs were increased and expression of its target genes ZEB1, NFIB, and FOXP1 was decreased. Both ROSI and TBT increased miR-223 levels, and this induction was inhibited by the PPAR{gamma} antagonist T0070907 but not by the RXR antagonists HX531 or UVI3003, placing miR-223 downstream of PPAR{gamma}. Chromatin immunoprecipitation confirmed TBT-induced binding of PPAR{gamma} to regulatory elements in the miR-223 promoter. miR-223 levels were elevated in white adipose tissue of F2 and F3 male descendants of pregnant F0 mouse dams exposed to 50 nM TBT throughout gestation. miR-223 levels were further induced in males fed with an increased fat diet. We infer that TBT induced miR-223 expression and increased adipogenesis in MSCs through the PPAR{gamma} pathway and that transgenerationally increased expression of miR-223 plays an important role in the development of obesity caused by TBT exposure.

developmental biology↗

Heritable changes in chromatin contacts linked to transgenerational obesity

Burgeoning evidence demonstrates that responses to environmental exposures can be transmitted to subsequent generations through the germline without DNA mutations1,2. This is controversial because underlying mechanisms remain to be identified. Therefore, understanding how effects of environmental exposures are transmitted to unexposed generations without DNA mutations is a fundamental unanswered question in biology. Here, we used an established murine model of transgenerational obesity to show that direct or ancestral exposure to the obesogen tributyltin (TBT) elicited persistent changes in topologically associating domains (TADs) in primordial germ cells (PGCs) isolated from embryos of exposed and subsequent unexposed generations. New TAD boundaries were formed within the Ide gene encoding insulin degrading enzyme in the exposed PGCs, then stably maintained in PGCs of the subsequent (unexposed) two generations. Concomitantly, Ide mRNA expression was decreased in livers of male descendants from the exposed dams. These animals were hyperinsulinemic and hyperglycemic, phenocopying Ide-deficient mice that are predisposed to adult-onset obesity. Creation of new TAD boundaries in PGCs, suppression of hepatic Ide mRNA, increased fat mass, hyperinsulinemia and hyperglycemia were male-specific. Our results provide a plausible molecular mechanism underlying transmission of the transgenerational predisposition to obesity caused by gestational exposure to an environmental obesogen. They also provide an entry point for future studies aimed at understanding how environmental exposures alter chromatin structure to influence physiology across multiple generations in mammals.

developmental biology↗

2,4-Di-tert-butylphenol Induces Adipogenesis in Human Mesenchymal Stem Cells by Activating Retinoid X Receptors

2,4-di-tert-butylphenol (2,4-DTBP) is an important commercial antioxidant and a toxic natural secondary metabolite that has been detected in humans. However, there is scant information regarding its toxicological effects. Here we asked whether 2,4-DTBP is a potential obesogen. Using a human mesenchymal stem cell (MSC) adipogenesis assay, we found that exposure to 2,4-DTBP led to increased lipid accumulation and expression of adipogenic marker genes. Antagonist assays revealed that 2,4-DTBP increased lipid accumulation by activating the peroxisome proliferator-activated receptor {gamma} (PPAR{gamma})-retinoid X receptor (RXR) heterodimer. 2,4-DTBP likely activated the PPAR{gamma}/RXR heterodimer by activating RXR but not directly binding to PPAR{gamma}. We confirmed that 2,4-DTBP directly bound to RXR by solving the crystal structure of this complex, then predicted and demonstrated that related compounds could also activate RXR. Our study demonstrated that 2,4-DTBP and related chemicals could act as obesogens and endocrine disruptors via RXR. These data showed that 2,4-DTBP belongs to a family of compounds whose endocrine-disrupting and obesogenic effects can be strongly modulated by their chemical composition and that structure-activity studies such as the present one could help guide the rational development of safer antioxidants. SYNOPSISLittle research exists on the effects of commercially valuable antioxidants on biological systems. This study reports that di- and tri-tert-butylphenols can act as endocrine disruptors and potential obesogens by activating nuclear hormone receptors.

pharmacology and toxicology↗