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1.
Adv Exp Med Biol ; 1461: 229-243, 2024.
Article in English | MEDLINE | ID: mdl-39289285

ABSTRACT

There are at least two types of adipose tissues in the body, defined as brown adipose tissues (BATs) and white adipose tissues (WATs). These tissues comprise brown and white adipocytes, respectively. The adipocytes are commonly endowed with mitochondria, but they have diverse characteristics and roles. Brown adipocytes have abundant mitochondria that contribute to the ß-oxidation of fatty acids to produce chemical energy and the production of heat via uncoupling of the mitochondrial membrane potential from ATP synthesis. Alternatively, white adipocytes have fewer mitochondria that contribute to the generation of free fatty acids via lipogenesis by providing key intermediates. Besides the described types of adipocytes, brown-like adipocytes, termed beige adipocytes, are developed in WAT depots during cold exposure. Beige adipocytes also contribute to thermogenesis. Notably, beige adipocytes may transform into white-like adipocytes after the withdrawal of cold exposure. This process is marked by the elimination of mitochondria through the activation of mitochondria autophagy (mitophagy). This review aims to describe the mitophagy that occurs during the beige-to-white transition and discuss recent insights into the molecular mechanisms of this transformation. Additionally, we describe the mitophagy monitoring strategy in adipose tissues using three independent reporter systems and discuss the availabilities and limitations of the method.


Subject(s)
Mitochondria , Mitophagy , Thermogenesis , Mitophagy/physiology , Animals , Humans , Mitochondria/metabolism , Adipose Tissue, White/metabolism , Adipose Tissue, Brown/metabolism , Adipose Tissue, Brown/cytology , Adipocytes, Beige/metabolism , Adipocytes, Beige/cytology , Temperature , Adipose Tissue/metabolism , Adipocytes, White/metabolism , Adipocytes, White/cytology
2.
Front Endocrinol (Lausanne) ; 15: 1396965, 2024.
Article in English | MEDLINE | ID: mdl-38982992

ABSTRACT

Adipose tissues, particularly beige and brown adipose tissue, play crucial roles in energy metabolism. Brown adipose tissues' thermogenic capacity and the appearance of beige cells within white adipose tissue have spurred interest in their metabolic impact and therapeutic potential. Brown and beige fat cells, activated by environmental factors like cold exposure or by pharmacology, share metabolic mechanisms that drive non-shivering thermogenesis. Understanding these two cell types requires advanced, yet broadly applicable in vitro models that reflect the complex microenvironment and vasculature of adipose tissues. Here we present mouse vascularized adipose spheroids of the stromal vascular microenvironment from inguinal white adipose tissue, a tissue with 'beiging' capacity in mice and humans. We show that adding a scaffold improves vascular sprouting, enhances spheroid growth, and upregulates adipogenic markers, thus reflecting increased adipocyte maturity. Transcriptional profiling via RNA sequencing revealed distinct metabolic pathways upregulated in our vascularized adipose spheroids, with increased expression of genes involved in glucose metabolism, lipid metabolism, and thermogenesis. Functional assessment demonstrated increased oxygen consumption in vascularized adipose spheroids compared to classical 2D cultures, which was enhanced by ß-adrenergic receptor stimulation correlating with elevated ß-adrenergic receptor expression. Moreover, stimulation with the naturally occurring adipokine, FGF21, induced Ucp1 mRNA expression in the vascularized adipose spheroids. In conclusion, vascularized inguinal white adipose tissue spheroids provide a physiologically relevant platform to study how the stromal vascular microenvironment shapes adipocyte responses and influence activated thermogenesis in beige adipocytes.


Subject(s)
Spheroids, Cellular , Thermogenesis , Animals , Mice , Spheroids, Cellular/metabolism , Adipose Tissue, White/metabolism , Adipose Tissue, White/cytology , Mice, Inbred C57BL , Male , Adipocytes/metabolism , Adipocytes/cytology , Adipose Tissue, Brown/metabolism , Adipose Tissue, Brown/cytology , Cells, Cultured , Adipocytes, Beige/metabolism , Adipocytes, Beige/cytology , Energy Metabolism , Adipogenesis/physiology , Microphysiological Systems
3.
FEBS Lett ; 598(16): 1996-2010, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38794908

ABSTRACT

Neuronostatin suppresses the differentiation of white preadipocytes. However, the role of neuronostatin in brown adipose tissue remains elusive. Therefore, we investigated the impact of neuronostatin on the proliferation and differentiation of isolated rat brown preadipocytes. We report that neuronostatin and its receptor (GPR107) are synthesized in brown preadipocytes and brown adipose tissue. Furthermore, neuronostatin promotes the replication of brown preadipocytes via the AKT pathway. Notably, neuronostatin suppresses the expression of markers associated with brown adipogenesis (PGC-1α, PPARγ, PRDM16, and UCP1) and reduces cellular mitochondria content. Moreover, neuronostatin impedes the differentiation of preadipocytes by activating the JNK signaling pathway. These effects were not mimicked by somatostatin. Our results suggest that neuronostatin is involved in regulating brown adipogenesis.


Subject(s)
Adipocytes, Brown , Cell Differentiation , Cell Proliferation , Animals , Rats , Adipocytes, Brown/metabolism , Adipocytes, Brown/cytology , Adipose Tissue, Brown/metabolism , Adipose Tissue, Brown/cytology , Adipogenesis , Cells, Cultured , Male , Rats, Sprague-Dawley , Somatostatin/metabolism , Somatostatin/genetics , Proto-Oncogene Proteins c-akt/metabolism , Proto-Oncogene Proteins c-akt/genetics , MAP Kinase Signaling System/drug effects , Mitochondria/metabolism , Peptide Fragments
4.
Dev Cell ; 59(10): 1231-1232, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38772342

ABSTRACT

Brown adipocytes are found in several fat depots, however, the origins and contributions of different lineages of adipogenic progenitor cells (APCs) to these depots are unclear. In this issue of Developmental Cell, Shi et al. show that platelet-derived growth factor receptor ß (PDGFRß)-lineage and T-box transcription factor 18 (TBX18)-lineage APCs differentially contribute to brown adipogenesis across these depots.


Subject(s)
Adipogenesis , Receptors, Notch , Stem Cells , Adipogenesis/physiology , Animals , Receptors, Notch/metabolism , Stem Cells/metabolism , Stem Cells/cytology , Adipose Tissue, Brown/metabolism , Adipose Tissue, Brown/cytology , Humans , Adipocytes, Brown/metabolism , Adipocytes, Brown/cytology , Receptor, Platelet-Derived Growth Factor beta/metabolism , Receptor, Platelet-Derived Growth Factor beta/genetics , Cell Differentiation , Cell Lineage , Mice , Signal Transduction
5.
Dev Cell ; 59(10): 1233-1251.e5, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38569546

ABSTRACT

De novo brown adipogenesis holds potential in combating the epidemics of obesity and diabetes. However, the identity of brown adipocyte progenitor cells (APCs) and their regulation have not been extensively explored. Here, through in vivo lineage tracing and mouse modeling, we observed that platelet-derived growth factor receptor beta (PDGFRß)+ pericytes give rise to developmental brown adipocytes but not to those in adult homeostasis. By contrast, T-box 18 (TBX18)+ pericytes contribute to brown adipogenesis throughout both developmental and adult stages, though in a depot-specific manner. Mechanistically, Notch inhibition in PDGFRß+ pericytes promotes brown adipogenesis by downregulating PDGFRß. Furthermore, inhibition of Notch signaling in PDGFRß+ pericytes mitigates high-fat, high-sucrose (HFHS)-induced glucose and metabolic impairment in mice during their development and juvenile phases. Collectively, these findings show that the Notch/PDGFRß axis negatively regulates developmental brown adipogenesis, and its repression promotes brown adipose tissue expansion and improves metabolic health.


Subject(s)
Adipocytes, Brown , Adipogenesis , Cell Differentiation , Receptor, Platelet-Derived Growth Factor beta , Receptors, Notch , Stem Cells , Animals , Receptor, Platelet-Derived Growth Factor beta/metabolism , Receptor, Platelet-Derived Growth Factor beta/genetics , Receptors, Notch/metabolism , Mice , Adipocytes, Brown/metabolism , Adipocytes, Brown/cytology , Stem Cells/metabolism , Stem Cells/cytology , Signal Transduction , Pericytes/metabolism , Pericytes/cytology , Adipose Tissue, Brown/metabolism , Adipose Tissue, Brown/cytology , Mice, Inbred C57BL , Male
6.
Stem Cell Res Ther ; 14(1): 70, 2023 04 07.
Article in English | MEDLINE | ID: mdl-37024989

ABSTRACT

BACKGROUND: Adipose tissue-derived stromal vascular fraction (SVF) harbors multipotent cells with potential therapeutic relevance. We developed a method to form adipose spheroids (AS) from the SVF with complex organoid structure and enhanced leptin secretion upon insulin stimulation. METHODS: SVF was generated from the interscapular brown adipose tissue of newborn mice. Immunophenotype and stemness of cultured SVF were determined by flow cytometry and in vitro differentiation, respectively. Spheroids were generated in hanging drops and non-adherent plates and compared by morphometric methods. The adipogenic potential was compared between preadipocyte monolayers and spheroids. Extracellular leptin was quantified by immunoassay. Lipolysis was stimulated with isoprenaline and quantified by colorimetric methods. AS viability and ultrastructure were determined by confocal and transmission electron microscopy analyses. RESULTS: Cultured SVF contained Sca1 + CD29 + CD44 + CD11b- CD45- CD90- cells with adipogenic and chondrogenic but no osteogenic potential. Culture on non-adherent plates yielded the highest quantity and biggest size of spheroids. Differentiation of AS for 15 days in a culture medium supplemented with insulin and rosiglitazone resulted in greater Pparg, Plin1, and Lep expression compared to differentiated adipocytes monolayers. AS were viable and maintained leptin secretion even in the absence of adipogenic stimulation. Glycerol release after isoprenaline stimulation was higher in AS compared to adipocytes in monolayers. AS were composed of outer layers of unilocular mature adipocytes and an inner structure composed of preadipocytes, immature adipocytes and an abundant loose extracellular matrix. CONCLUSION: Newborn mice adipose SVF can be efficiently differentiated into leptin-secreting AS. Prolonged stimulation with insulin and rosiglitazone allows the formation of structurally complex adipose organoids able to respond to adrenergic lipolytic stimulation.


Subject(s)
Adipocytes , Adipose Tissue, Brown , Cell Differentiation , Leptin , Leptin/metabolism , Organoids , Insulin/pharmacology , Animals , Mice , Adipose Tissue, Brown/cytology , Rosiglitazone/pharmacology , Cells, Cultured , Animals, Newborn , Immunophenotyping , Osteogenesis , Chondrogenesis , Adipocytes/ultrastructure , Lipolysis , Primary Cell Culture
7.
Nature ; 613(7942): 160-168, 2023 01.
Article in English | MEDLINE | ID: mdl-36477540

ABSTRACT

Multilocular adipocytes are a hallmark of thermogenic adipose tissue1,2, but the factors that enforce this cellular phenotype are largely unknown. Here, we show that an adipocyte-selective product of the Clstn3 locus (CLSTN3ß) present in only placental mammals facilitates the efficient use of stored triglyceride by limiting lipid droplet (LD) expansion. CLSTN3ß is an integral endoplasmic reticulum (ER) membrane protein that localizes to ER-LD contact sites through a conserved hairpin-like domain. Mice lacking CLSTN3ß have abnormal LD morphology and altered substrate use in brown adipose tissue, and are more susceptible to cold-induced hypothermia despite having no defect in adrenergic signalling. Conversely, forced expression of CLSTN3ß is sufficient to enforce a multilocular LD phenotype in cultured cells and adipose tissue. CLSTN3ß associates with cell death-inducing DFFA-like effector proteins and impairs their ability to transfer lipid between LDs, thereby restricting LD fusion and expansion. Functionally, increased LD surface area in CLSTN3ß-expressing adipocytes promotes engagement of the lipolytic machinery and facilitates fatty acid oxidation. In human fat, CLSTN3B is a selective marker of multilocular adipocytes. These findings define a molecular mechanism that regulates LD form and function to facilitate lipid utilization in thermogenic adipocytes.


Subject(s)
Adipocytes , Calcium-Binding Proteins , Lipid Metabolism , Membrane Proteins , Animals , Female , Humans , Mice , Adipocytes/cytology , Adipocytes/metabolism , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/metabolism , Calcium-Binding Proteins/deficiency , Calcium-Binding Proteins/metabolism , Membrane Proteins/deficiency , Membrane Proteins/metabolism , Placenta , Triglycerides/metabolism , Endoplasmic Reticulum/metabolism , Lipid Droplets/metabolism , Fatty Acids/metabolism , Hypothermia/metabolism , Thermogenesis
8.
Proc Natl Acad Sci U S A ; 119(40): e2203307119, 2022 10 04.
Article in English | MEDLINE | ID: mdl-36161914

ABSTRACT

Brown adipose tissue (BAT) is a highly specialized adipose tissue in its immobile location and size during the entire adulthood. In response to cold exposure and other ß3-adrenoreceptor stimuli, BAT commits energy consumption by nonshivering thermogenesis (NST). However, the molecular machinery in controlling the BAT mass in adults is unknown. Here, we show our surprising findings that the BAT mass and functions can be manipulated in adult animals by controlling BAT adipocyte differentiation in vivo. Platelet-derived growth factor receptor α (PDGFα) expressed in BAT progenitor cells served a signaling function to avert adipose progenitor differentiation. Genetic and pharmacological loss-of-function of PDGFRα eliminated the differentiation barrier and permitted progenitor cell differentiation to mature and functional BAT adipocytes. Consequently, an enlarged BAT mass (megaBAT) was created by PDGFRα inhibition owing to increases of brown adipocyte numbers. Under cold exposure, a microRNA-485 (miR-485) was identified as a master suppressor of the PDGFRα signaling, and delivery of miR-485 also produced megaBAT in adult animals. Noticeably, megaBAT markedly improved global metabolism, insulin sensitivity, high-fat-diet (HFD)-induced obesity, and diabetes by enhancing NST. Together, our findings demonstrate that the adult BAT mass can be increased by blocking the previously unprecedented inhibitory signaling for BAT progenitor cell differentiation. Thus, blocking the PDGFRα for the generation of megaBAT provides an attractive strategy for treating obesity and type 2 diabetes mellitus (T2DM).


Subject(s)
Adipocytes, Brown , Adipocytes , Adipogenesis , Adipose Tissue, Brown , MicroRNAs , Receptor, Platelet-Derived Growth Factor alpha , Adipocytes/cytology , Adipocytes, Brown/metabolism , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/metabolism , Animals , Diabetes Mellitus, Type 2/therapy , Energy Metabolism , MicroRNAs/genetics , MicroRNAs/metabolism , Obesity/therapy , Receptor, Platelet-Derived Growth Factor alpha/genetics , Receptor, Platelet-Derived Growth Factor alpha/metabolism , Thermogenesis/genetics
9.
Mol Med ; 28(1): 6, 2022 01 21.
Article in English | MEDLINE | ID: mdl-35062859

ABSTRACT

BACKGROUND: Activation of brown adipose tissue (BAT) increases energy expenditure, which makes it an attractive therapeutic strategy for obesity. LncRNAs play an important role in adipocyte differentiation and regulation. Here we assessed the effect of lncRNA XIST on brown preadipocytes differentiation and metabolic regulation. METHODS: XIST expression levels were detected in human perirenal (peri-N) and subcutaneous adipose tissues (sub-Q), brown preadipocytes and 3T3-L1 preadipocytes. XIST overexpression and knockdown experiments were performed in brown preadipocytes. XIST overexpression mouse model was established by plasmid injection through tail vein. RESULTS: In human adipose tissues, XIST expression was significantly higher in female than in male individuals. In vitro, XIST expression was significantly up-regulated during brown adipocyte differentiation. XIST knockdown inhibited differentiation of brown preadipocytes, while overexpression of XIST promotes brown preadipocytes to fully differentiation. RNA Binding Protein Immunoprecipitation (RIP) experiment revealed that XIST could directly bind to C/EBPα. In vivo, XIST overexpression prevents high-fat diet induced obesity and improves metabolic dysorder in male mice. CONCLUSION: Our results suggest that XIST combats obesity through BAT activation at least partly by combination with transcription factor C/EBPα.


Subject(s)
Adipocytes/metabolism , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/metabolism , CCAAT-Enhancer-Binding Proteins/genetics , Obesity/etiology , Obesity/metabolism , RNA, Long Noncoding/genetics , 3T3-L1 Cells , Animals , Biomarkers , Cell Differentiation , Diet, High-Fat , Disease Models, Animal , Disease Susceptibility , Gene Expression Regulation , Immunophenotyping , Male , Mice , Obesity/pathology , RNA Interference
10.
Sci Rep ; 11(1): 23290, 2021 12 02.
Article in English | MEDLINE | ID: mdl-34857816

ABSTRACT

The Fuegians, ancient inhabitants of Tierra del Fuego, are an exemplary case of a cold-adapted population, since they were capable of living in extreme climatic conditions without any adequate clothing. However, the mechanisms of their extraordinary resistance to cold remain enigmatic. Brown adipose tissue (BAT) plays a crucial role in this kind of adaptation, besides having a protective role on the detrimental effect of low temperatures on bone structure. Skeletal remains of 12 adult Fuegians, collected in the second half of XIX century, were analyzed for bone mineral density and structure. We show that, despite the unfavorable climate, bone mineral density of Fuegians was close to that seen in modern humans living in temperate zones. Furthermore, we report significant differences between Fuegians and other cold-adapted populations in the frequency of the Homeobox protein Hox-C4 (HOXC4) rs190771160 variant, a gene involved in BAT differentiation, whose identified variant is predicted to upregulate HOXC4 expression. Greater BAT accumulation might therefore explain the Fuegians extreme cold-resistance and the protection against major cold-related damage. These results increase our understanding of how ecological challenges have been important drivers of human-environment interactions during Humankind history.


Subject(s)
Acclimatization/genetics , Adaptation, Physiological/genetics , Bone Density/genetics , Cold Temperature , Ecology , Gene-Environment Interaction , Genomics , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/physiology , Body Remains , Cell Differentiation/genetics , Chile , Gene Expression/genetics , Genetic Variation , Homeodomain Proteins/genetics , Humans , Up-Regulation/genetics
11.
Nat Commun ; 12(1): 6845, 2021 11 25.
Article in English | MEDLINE | ID: mdl-34824246

ABSTRACT

Maternal obesity (MO) predisposes offspring to obesity and metabolic disorders but little is known about the contribution of offspring brown adipose tissue (BAT). We find that MO impairs fetal BAT development, which persistently suppresses BAT thermogenesis and primes female offspring to metabolic dysfunction. In fetal BAT, MO enhances expression of Dio3, which encodes deiodinase 3 (D3) to catabolize triiodothyronine (T3), while a maternally imprinted long noncoding RNA, Dio3 antisense RNA (Dio3os), is inhibited, leading to intracellular T3 deficiency and suppression of BAT development. Gain and loss of function shows Dio3os reduces D3 content and enhances BAT thermogenesis, rendering female offspring resistant to high fat diet-induced obesity. Attributing to Dio3os inactivation, its promoter has higher DNA methylation in obese dam oocytes which persists in fetal and adult BAT, uncovering an oocyte origin of intergenerational obesity. Overall, our data uncover key features of Dio3os activation in BAT to prevent intergenerational obesity and metabolic dysfunctions.


Subject(s)
Adipose Tissue, Brown/metabolism , Obesity/genetics , RNA, Long Noncoding/genetics , Adipocytes, Brown/cytology , Adipocytes, Brown/metabolism , Adipogenesis , Adipose Tissue, Brown/cytology , Animals , Cell Differentiation , DNA Methylation , DNA-Binding Proteins/metabolism , Diet, Western/adverse effects , Energy Metabolism , Female , Genomic Imprinting , Iodide Peroxidase/metabolism , Mice , Obesity/etiology , Obesity/metabolism , Obesity, Maternal/genetics , Obesity, Maternal/metabolism , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/metabolism , Pregnancy , RNA, Long Noncoding/metabolism , Thermogenesis , Transcription Factors/metabolism , Triiodothyronine/metabolism
12.
Bull Exp Biol Med ; 171(6): 722-726, 2021 Oct.
Article in English | MEDLINE | ID: mdl-34705171

ABSTRACT

We studied the effect of bacterial pathogen-associated molecular patterns and myokines on the secretion of adipokines by mesenchymal stem cells (MSC) and products of their adipogenic differentiation. The secretion of adiponectin, adipsin, leptin, and insulin by adipogenically differentiated cell cultures was quantitatively determined using multiplex ELISA. MSC obtained from the stromal vascular fraction of human subcutaneous adipose tissue were shown to secrete a known adipokine adipsin. The ability of white adipocytes to secrete significant amounts of insulin (in vitro) has been shown for the first time. Control cultures of white adipocytes secreted much higher levels of adiponectin, leptin, and insulin when compared to other adipocytes cultures. On the other hand, beige and brown adipocyte cultures secreted more adipsin than white adipocyte cultures. The influence of myokine ß-aminoisobutyric acid on the secretion of adipsin in MSC, white, beige, and brown adipocytes was also studied.


Subject(s)
Adipocytes, Beige/drug effects , Adipocytes, Brown/drug effects , Adipocytes, White/drug effects , Adipokines/pharmacology , Aminoisobutyric Acids/pharmacology , Flagellin/pharmacology , Lipopolysaccharides/pharmacology , Adipocytes, Beige/cytology , Adipocytes, Beige/metabolism , Adipocytes, Brown/cytology , Adipocytes, Brown/metabolism , Adipocytes, White/cytology , Adipocytes, White/metabolism , Adipogenesis/drug effects , Adipogenesis/genetics , Adiponectin/genetics , Adiponectin/metabolism , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/metabolism , Adipose Tissue, Brown/surgery , Cell Differentiation/drug effects , Complement Factor D/genetics , Complement Factor D/metabolism , Gene Expression Regulation , Humans , Insulin/genetics , Insulin/metabolism , Leptin/genetics , Leptin/metabolism , Lipectomy/methods , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/drug effects , Mesenchymal Stem Cells/metabolism , Organ Specificity , Primary Cell Culture
13.
FASEB J ; 35(11): e21965, 2021 11.
Article in English | MEDLINE | ID: mdl-34669999

ABSTRACT

Obesity and metabolic disorders caused by energy surplus pose an increasing concern within the global population. Brown adipose tissue (BAT) dissipates energy through mitochondrial non-shivering thermogenesis, thus representing a powerful agent against obesity. Here we explore the novel role of a mitochondrial outer membrane protein, LETM1-domain containing 1 (LETMD1), in BAT. We generated a knockout (Letmd1KO ) mouse model and analyzed BAT morphology, function and gene expression under various physiological conditions. While the Letmd1KO mice are born normally and have normal morphology and body weight, they lose multilocular brown adipocytes completely and have diminished mitochondrial abundance, DNA copy number, cristae structure, and thermogenic gene expression in the intrascapular BAT, associated with elevated reactive oxidative stress. In consequence, the Letmd1KO mice fail to maintain body temperature in response to acute cold exposure without food and become hypothermic within 4 h. Although the cold-exposed Letmd1KO mice can maintain body temperature in the presence of food, they cannot upregulate expression of uncoupling protein 1 (UCP1) and convert white to beige adipocytes, nor can they respond to adrenergic stimulation. These results demonstrate that LETMD1 is essential for mitochondrial structure and function, and thermogenesis of brown adipocytes.


Subject(s)
Adipocytes, Brown/metabolism , Adipose Tissue, Brown/metabolism , Mitochondria/metabolism , Oncogene Proteins/physiology , Receptors, Cell Surface/physiology , Thermogenesis , Adipocytes, Brown/cytology , Adipose Tissue, Brown/cytology , Animals , Mice , Mice, Inbred C57BL , Mice, Knockout , Obesity/metabolism
14.
FASEB J ; 35(11): e21966, 2021 11.
Article in English | MEDLINE | ID: mdl-34624148

ABSTRACT

Adipose tissue is central to the regulation of energy balance. While white adipose tissue (WAT) is responsible for triglyceride storage, brown adipose tissue specializes in energy expenditure. Deterioration of brown adipocyte function contributes to the development of metabolic complications like obesity and diabetes. These disorders are also leading symptoms of the Bardet-Biedl syndrome (BBS), a hereditary disorder in humans which is caused by dysfunctions of the primary cilium and which therefore belongs to the group of ciliopathies. The cilium is a hair-like organelle involved in cellular signal transduction. The BBSome, a supercomplex of several Bbs gene products, localizes to the basal body of cilia and is thought to be involved in protein sorting to and from the ciliary membrane. The effects of a functional BBSome on energy metabolism and lipid mobilization in brown and white adipocytes were tested in whole-body Bbs4 knockout mice that were subjected to metabolic challenges. Chronic cold exposure reveals cold-intolerance of knockout mice but also ameliorates the markers of metabolic pathology detected in knockouts prior to cold. Hepatic triglyceride content is markedly reduced in knockout mice while circulating lipids are elevated, altogether suggesting that defective lipid metabolism in adipose tissue creates increased demand for systemic lipid mobilization to meet energetic demands of reduced body temperatures. These findings taken together suggest that Bbs4 is essential for the regulation of adipose tissue lipid metabolism, representing a potential target to treat metabolic disorders.


Subject(s)
Adipose Tissue, Brown/metabolism , Adipose Tissue, White/metabolism , Lipid Metabolism , Microtubule-Associated Proteins/physiology , Adipose Tissue, Brown/cytology , Adipose Tissue, White/cytology , Animals , Energy Metabolism , Male , Mesenchymal Stem Cells , Mice , Mice, Inbred C57BL , Thermogenesis
15.
Food Funct ; 12(19): 9151-9164, 2021 Oct 04.
Article in English | MEDLINE | ID: mdl-34606532

ABSTRACT

Metabolic syndrome caused obesity has long been recognized as a risk of health. Celery and celery extracts have various medicinal properties, such as anti-diabetes and anti-inflammatory properties and blood glucose and serum lipid reduction. However, the effect of probiotic fermentation on celery juice and the association between fermented celery juice (FCJ) and obesity were unclear. This study aimed to evaluate the beneficial effects of FCJ on high-fat diet (HFD) induced obesity and related metabolic syndromes. C57BL/6 mice were randomly divided into six groups (n = 15 per group) fed either a normal diet (ND) or HFD with or without CJ/FCJ (10 g kg-1 day-1) by oral gavage for 12 weeks. Here we demonstrated that the probiotic fermentation of celery juice (CJ) could enhance the active ingredients in celery, such as total polyphenols, flavonoids, vitamin C and SOD. Compared to the slight improvement induced by CJ ingestion, FCJ intake significantly inhibited body weight gain, prevented dyslipidemia and hyperglycemia, and suppressed visceral fat accumulation. Furthermore, 16S rRNA sequencing analysis revealed that FCJ intake altered the composition of gut microbiota, increasing the ratio of Firmicutes/Bacteroidetes and the relative abundance of beneficial bacteria (Lactobacillus, Ruminococcaceae_UCG-014, Faecalibaculum and Blautia), and decreasing the relative abundance of harmful bacteria (Alloprevotella and Helicobacter). These findings suggest that FCJ can prevent HFD-induced obesity and become a novel gut microbiota modulator to prevent HFD-induced gut dysbiosis and obesity-related metabolic disorders.


Subject(s)
Apium , Diet, High-Fat , Dietary Supplements , Fermented Beverages , Gastrointestinal Microbiome , Obesity/prevention & control , Adipocytes/cytology , Adipocytes/physiology , Adipose Tissue, Brown/cytology , Adipose Tissue, White/cytology , Animals , Diabetes Mellitus, Type 2/prevention & control , Dyslipidemias/prevention & control , Fermented Beverages/analysis , Hyperglycemia/prevention & control , Intra-Abdominal Fat/anatomy & histology , Male , Mice , Mice, Inbred C57BL , Non-alcoholic Fatty Liver Disease/prevention & control
16.
PLoS One ; 16(9): e0249438, 2021.
Article in English | MEDLINE | ID: mdl-34473703

ABSTRACT

Muscle derived stem cells (MDSCs) and myoblast play an important role in myotube regeneration when muscle tissue is injured. However, these cells can be induced to differentiate into adipocytes once exposed to PPARγ activator like EPA and DHA that are highly suggested during pregnancy. The objective of this study aims at determining the identity of trans-differentiated cells by exploring the effect of EPA and DHA on C2C12 undergoing differentiation into brown and white adipocytes. DHA but not EPA committed C2C12 cells reprograming into white like adipocyte phenotype. Also, DHA promoted the expression of lipolysis regulating genes but had no effect on genes regulating ß-oxidation referring to its implication in lipid re-esterification. Furthermore, DHA impaired C2C12 cells differentiation into brown adipocytes through reducing the thermogenic capacity and mitochondrial biogenesis of derived cells independent of UCP1. Accordingly, DHA treated groups showed an increased accumulation of lipid droplets and suppressed mitochondrial maximal respiration and spare respiratory capacity. EPA, on the other hand, reduced myogenesis regulating genes, but no significant differences were observed in the expression of adipogenesis key genes. Likewise, EPA suppressed the expression of WAT signature genes indicating that EPA and DHA have an independent role on white adipogensis. Unlike DHA treatment, EPA supplementation had no effect on the differential of C2C12 cells into brown adipocytes. In conclusion, DHA is a potent adipogenic and lipogenic factor that can change the metabolic profile of muscle cells by increasing myocellular fat.


Subject(s)
Adipocytes, White/drug effects , Docosahexaenoic Acids/pharmacology , Eicosapentaenoic Acid/pharmacology , Adipocytes, Brown/drug effects , Adipocytes, White/cytology , Adipogenesis/drug effects , Adipogenesis/genetics , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/drug effects , Animals , Cell Line , Cell Transdifferentiation/drug effects , Cell Transdifferentiation/genetics , DNA, Mitochondrial , Gene Expression Regulation/drug effects , Lipid Metabolism/drug effects , Lipid Metabolism/genetics , Lipolysis/drug effects , Mice , Myoblasts/cytology , Myoblasts/drug effects
17.
Nat Commun ; 12(1): 5255, 2021 09 06.
Article in English | MEDLINE | ID: mdl-34489438

ABSTRACT

Monocytes are part of the mononuclear phagocytic system. Monocytes play a central role during inflammatory conditions and a better understanding of their dynamics might open therapeutic opportunities. In the present study, we focused on the characterization and impact of monocytes on brown adipose tissue (BAT) functions during tissue remodeling. Single-cell RNA sequencing analysis of BAT immune cells uncovered a large diversity in monocyte and macrophage populations. Fate-mapping experiments demonstrated that the BAT macrophage pool requires constant replenishment from monocytes. Using a genetic model of BAT expansion, we found that brown fat monocyte numbers were selectively increased in this scenario. This observation was confirmed using a CCR2-binding radiotracer and positron emission tomography. Importantly, in line with their tissue recruitment, blood monocyte counts were decreased while bone marrow hematopoiesis was not affected. Monocyte depletion prevented brown adipose tissue expansion and altered its architecture. Podoplanin engagement is strictly required for BAT expansion. Together, these data redefine the diversity of immune cells in the BAT and emphasize the role of monocyte recruitment for tissue remodeling.


Subject(s)
Adipose Tissue, Brown/cytology , Monocytes/physiology , Adiponectin/genetics , Adipose Tissue, Brown/physiology , Animals , Cell Differentiation/genetics , Leukocyte Count , Macrophages/cytology , Macrophages/physiology , Membrane Glycoproteins/metabolism , Mice, Transgenic , Monocytes/cytology , Positron-Emission Tomography , Receptors, CCR2/genetics , Receptors, CCR2/metabolism
18.
Int J Mol Sci ; 22(17)2021 Aug 27.
Article in English | MEDLINE | ID: mdl-34502211

ABSTRACT

Obesity is a condition characterized by uncontrolled expansion of adipose tissue mass resulting in pathological weight gain. Histone deacetylases (HDACs) have emerged as crucial players in epigenetic regulation of adipocyte metabolism. Previously, we demonstrated that selective inhibition of class I HDACs improves white adipocyte functionality and promotes the browning phenotype of murine mesenchymal stem cells (MSCs) C3H/10T1/2 differentiated to adipocytes. These effects were also observed in db/db and diet induced obesity mouse models and in mice with adipose-selective inactivation of HDAC3, a member of class I HDACs. The molecular basis of class I HDACs action in adipose tissue is not deeply characterized and it is not known whether the effects of their inhibition are exerted on adipocyte precursors or mature adipocytes. Therefore, the aim of the present work was to explore the molecular mechanism of class I HDAC action in adipocytes by evaluating the effects of HDAC3-specific silencing at different stages of differentiation. HDAC3 was silenced in C3H/10T1/2 MSCs at different stages of differentiation to adipocytes. shRNA targeting HDAC3 was used to generate the knock-down model. Proper HDAC3 silencing was assessed by measuring both mRNA and protein levels of mouse HDAC3 via qPCR and western blot, respectively. Mitochondrial DNA content and gene expression were quantified via qPCR. HDAC3 silencing at the beginning of differentiation enhanced adipocyte functionality by amplifying the expression of genes regulating differentiation, oxidative metabolism, browning and mitochondrial activity, starting from 72 h after induction of differentiation and silencing. Insulin signaling was enhanced as demonstrated by increased AKT phosphorylation following HDAC3 silencing. Mitochondrial content/density did not change, while the increased expression of the transcriptional co-activator Ppargc1b suggests the observed phenotype was related to enhanced mitochondrial activity, which was confirmed by increased maximal respiration and proton leak linked to reduced coupling efficiency. Moreover, the expression of pro-inflammatory markers increased with HDAC3 early silencing. To the contrary, no differences in terms of gene expression were found when HDAC3 silencing occurred in terminally differentiated adipocyte. Our data demonstrated that early epigenetic events mediated by class I HDAC inhibition/silencing are crucial to commit adipocyte precursors towards the above-mentioned metabolic phenotype. Moreover, our data suggest that these effects are exerted on adipocyte precursors.


Subject(s)
Adipose Tissue, Brown/physiology , Adipose Tissue, White/physiology , Cell Differentiation , Gene Expression Regulation , Histone Deacetylases/metabolism , Mitochondria/metabolism , Phenotype , Adipose Tissue, Brown/cytology , Adipose Tissue, White/cytology , Animals , Histone Deacetylases/genetics , Mice , Mice, Inbred C3H
19.
Mol Nutr Food Res ; 65(19): e2100315, 2021 10.
Article in English | MEDLINE | ID: mdl-34363644

ABSTRACT

INTRODUCTION: Obesity causes many life-threatening diseases. It is important to develop effective approaches for obesity treatment. Oral supplementation with spermidine retards age-related processes, but its influences on obesity and various metabolic tissues remain largely unknow. This study aims to investigate the effects of oral spermidine on brown adipose tissue (BAT) and skeletal muscle as well as its roles in counteracting obesity and metabolic disorders. METHODS AND RESULTS: Spermidine is orally administrated into high-fat diet (HFD)-fed mice. The weight gain, insulin resistance, and hepatic steatosis are attenuated by oral spermidine in HFD-fed mice, accompanied by an alleviation of white adipose tissue inflammation. Oral spermidine promotes BAT activation and metabolic adaptation of skeletal muscle in HFD-fed mice, evidenced by UCP-1 induction and CREB activation in both tissues. Notably, oral spermidine upregulates tyrosine hydroxylase in hypothalamus of HFD-fed mice; spermidine treatment increases tyrosine hydroxylase expression and norepinephrine production in neurocytes, which leads to CREB activation and UCP-1 induction in brown adipocytes and myotubes. Spermidine also directly promotes UCP-1 and PGC-1α expression in brown adipocytes and myotubes. CONCLUSION: Spermidine serves as an oral supplement to attenuate obesity and metabolic disorders through hypothalamus-dependent or -independent BAT activation and skeletal muscle adaptation.


Subject(s)
Adipose Tissue, Brown/drug effects , Muscle, Skeletal/drug effects , Obesity/drug therapy , Spermidine/administration & dosage , Spermidine/pharmacology , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/metabolism , Administration, Oral , Animals , Diet, High-Fat/adverse effects , Hypothalamus/drug effects , Hypothalamus/metabolism , Insulin Resistance , Male , Mice, Inbred C57BL , Muscle Fibers, Skeletal/drug effects , Muscle, Skeletal/metabolism , Non-alcoholic Fatty Liver Disease/drug therapy , Obesity/etiology , Panniculitis/drug therapy , Panniculitis/etiology , Tyrosine 3-Monooxygenase/metabolism
20.
Int J Mol Sci ; 22(15)2021 Jul 31.
Article in English | MEDLINE | ID: mdl-34361032

ABSTRACT

17,18-Epoxyeicosatetraenoic acid (17,18-EEQ) and 19,20-epoxydocosapentaenoic acid (19,20-EDP) are bioactive epoxides produced from n-3 polyunsaturated fatty acid eicosapentaenoic acid and docosahexaenoic acid, respectively. However, these epoxides are quickly metabolized into less active diols by soluble epoxide hydrolase (sEH). We have previously demonstrated that an sEH inhibitor, t-TUCB, decreased serum triglycerides (TG) and increased lipid metabolic protein expression in the brown adipose tissue (BAT) of diet-induced obese mice. This study investigates the preventive effects of t-TUCB (T) alone or combined with 19,20-EDP (T + EDP) or 17,18-EEQ (T + EEQ) on BAT activation in the development of diet-induced obesity and metabolic disorders via osmotic minipump delivery in mice. Both T + EDP and T + EEQ groups showed significant improvement in fasting glucose, serum triglycerides, and higher core body temperature, whereas heat production was only significantly increased in the T + EEQ group. Moreover, both the T + EDP and T + EEQ groups showed less lipid accumulation in the BAT. Although UCP1 expression was not changed, PGC1α expression was increased in all three treated groups. In contrast, the expression of CPT1A and CPT1B, which are responsible for the rate-limiting step for fatty acid oxidation, was only increased in the T + EDP and T + EEQ groups. Interestingly, as a fatty acid transporter, CD36 expression was only increased in the T + EEQ group. Furthermore, both the T + EDP and T + EEQ groups showed decreased inflammatory NFκB signaling in the BAT. Our results suggest that 17,18-EEQ or 19,20-EDP combined with t-TUCB may prevent high-fat diet-induced metabolic disorders, in part through increased thermogenesis, upregulating lipid metabolic protein expression, and decreasing inflammation in the BAT.


Subject(s)
Anti-Obesity Agents/therapeutic use , Arachidonic Acids/therapeutic use , Benzoates/therapeutic use , Obesity/drug therapy , Phenylurea Compounds/therapeutic use , Adipogenesis , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/drug effects , Adipose Tissue, Brown/metabolism , Animals , Anti-Obesity Agents/administration & dosage , Anti-Obesity Agents/pharmacology , Arachidonic Acids/administration & dosage , Arachidonic Acids/pharmacology , Benzoates/administration & dosage , Benzoates/pharmacology , Blood Glucose/metabolism , Carnitine O-Palmitoyltransferase/metabolism , Diet, High-Fat , Epoxide Hydrolases/antagonists & inhibitors , Fatty Acids/metabolism , Male , Mice , Mice, Inbred C57BL , NF-kappa B/metabolism , Obesity/etiology , Obesity/metabolism , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/metabolism , Phenylurea Compounds/administration & dosage , Phenylurea Compounds/pharmacology
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