1.Inhibition of mouse brown adipocyte differentiation by second-generation antipsychotics.
Jee Eun OH ; Yoon Mi CHO ; Su Nam KWAK ; Jae Hyun KIM ; Kyung Won LEE ; Hyosan JUNG ; Seong Whan JEONG ; Oh Joo KWON
Experimental & Molecular Medicine 2012;44(9):545-553
Brown adipose tissue is specialized to burn lipids for thermogenesis and energy expenditure. Second-generation antipsychotics (SGA) are the most commonly used drugs for schizophrenia with several advantages over first-line drugs, however, it can cause clinically-significant weight gain. To reveal the involvement of brown adipocytes in SGA-induced weight gain, we compared the effect of clozapine, quetiapine, and ziprasidone, SGA with different propensities to induce weight gain, on the differentiation and the expression of brown fat-specific markers, lipogenic genes and adipokines in a mouse brown preadipocyte cell line. On Oil Red-O staining, the differentiation was inhibited almost completely by clozapine (40 microM) and partially by quetiapine (30 microM). Clozapine significantly down-regulated the brown adipogenesis markers PRDM16, C/EBPbeta, PPARgamma2, UCP-1, PGC-1alpha, and Cidea in dose- and time-dependent manners, whereas quetiapine suppressed PRDM16, PPARgamma2, and UCP-1 much weakly than clozapine. Clozapine also significantly inhibited the mRNA expressions of lipogenic genes ACC, SCD1, GLUT4, aP2, and CD36 as well as adipokines such as resistin, leptin, and adiponectin. In contrast, quetiapine suppressed only resistin and leptin but not those of lipogenic genes and adiponectin. Ziprasidone (10 microM) did not alter the differentiation as well as the gene expression patterns. Our results suggest for the first time that the inhibition of brown adipogenesis may be a possible mechanism to explain weight gain induced by clozapine and quetiapine.
Adipocytes, Brown/drug effects
;
Adipogenesis/drug effects
;
Adipokines/metabolism
;
Animals
;
*Antipsychotic Agents/administration & dosage/adverse effects
;
Cell Differentiation/drug effects
;
Cell Line
;
Cell Survival/drug effects
;
*Clozapine/administration & dosage/adverse effects
;
*Dibenzothiazepines/administration & dosage/adverse effects
;
Gene Expression Regulation/drug effects
;
Humans
;
Mice
;
*Piperazines/administration & dosage/adverse effects
;
Schizophrenia/drug therapy
;
*Thiazoles/administration & dosage/adverse effects
;
Weight Gain/*drug effects
2.Supplementation of Fermented Barley Extracts with Lactobacillus Plantarum dy-1 Inhibits Obesity via a UCP1-dependent Mechanism.
Xiang XIAO ; Juan BAI ; Ming Song LI ; Jia Yan ZHANG ; Xin Juan SUN ; Ying DONG
Biomedical and Environmental Sciences 2019;32(8):578-591
OBJECTIVE:
We aimed to explore how fermented barley extracts with Lactobacillus plantarum dy-1 (LFBE) affected the browning in adipocytes and obese rats.
METHODS:
In vitro, 3T3-L1 cells were induced by LFBE, raw barley extraction (RBE) and polyphenol compounds (PC) from LFBE to evaluate the adipocyte differentiation. In vivo, obese SD rats induced by high fat diet (HFD) were randomly divided into three groups treated with oral gavage: (a) normal control diet with distilled water, (b) HFD with distilled water, (c) HFD with 800 mg LFBE/kg body weight (bw).
RESULTS:
In vitro, LFBE and the PC in the extraction significantly inhibited adipogenesis and potentiated browning of 3T3-L1 preadipocytes, rather than RBE. In vivo, we observed remarkable decreases in the body weight, serum lipid levels, white adipose tissue (WAT) weights and cell sizes of brown adipose tissues (BAT) in the LFBE group after 10 weeks. LFBE group could gain more mass of interscapular BAT (IBAT) and promote the dehydrogenase activity in the mitochondria. And LFBE may potentiate process of the IBAT thermogenesis and epididymis adipose tissue (EAT) browning via activating the uncoupling protein 1 (UCP1)-dependent mechanism to suppress the obesity.
CONCLUSION
These results demonstrated that LFBE decreased obesity partly by increasing the BAT mass and the energy expenditure by activating BAT thermogenesis and WAT browning in a UCP1-dependent mechanism.
3T3 Cells
;
Adipocytes
;
drug effects
;
physiology
;
Adipose Tissue, Brown
;
drug effects
;
physiology
;
Adipose Tissue, White
;
drug effects
;
physiology
;
Animal Feed
;
analysis
;
Animals
;
Anti-Obesity Agents
;
administration & dosage
;
metabolism
;
Cell Differentiation
;
drug effects
;
Diet
;
Fermentation
;
Hordeum
;
chemistry
;
Lactobacillus plantarum
;
chemistry
;
Male
;
Mice
;
Obesity
;
drug therapy
;
genetics
;
Plant Extracts
;
chemistry
;
Probiotics
;
administration & dosage
;
metabolism
;
Random Allocation
;
Rats
;
Rats, Sprague-Dawley
;
Uncoupling Protein 1
;
genetics
;
metabolism