scholarly journals Effects of des-acyl ghrelin on insulin sensitivity and macrophage polarization in adipose tissue

2021 ◽  
Vol 0 (0) ◽  
Author(s):  
Fang Yuan ◽  
Qianqian Zhang ◽  
Haiyan Dong ◽  
Xinxin Xiang ◽  
Weizhen Zhang ◽  
...  

Abstract Background and Objectives Obesity is the accumulation of adipose tissue caused by excess energy in the body, accompanied by long-term chronic low-grade inflammation of adipose tissue. More than 50% of interstitial cells in adipose tissue are macrophages, which produce cytokines closely related to insulin resistance. Macrophage biology is driven by two polarization phenotypes, M1 (proinflammatory) and M2 (anti-inflammatory). This study aimed to investigate the effect of gastric hormone des-acyl ghrelin (DAG) on the polarization phenotype of macrophages and elucidate the role of macrophages in adipose tissue inflammation and insulin sensitivity and its molecular mechanism. Methods Mice were subcutaneously administrated with DAG in osmotic minipumps. The mice were fed a normal diet or a high-fat diet (HFD). Different macrophage markers were detected by real-time revere transcription polymerase chain reaction. Results Exogenous administration of DAG significantly inhibited the increase of adipocyte volume caused by HFD and reduced the number of rosette-like structures in adipose tissue. HFD in the control group significantly increased M1 macrophage markers, tumor necrosis factor α (TNFα), and inducible NO synthase (iNOS). However, these increases were reduced or even reversed after DAG administration in vitro. The M2 markers, macrophage galactose type C-type Lectin-1 (MGL1), arginase 1 (Arg1), and macrophage mannose receptor 1 (MRC1) were decreased by HFD, and the downward trend was inhibited or reversed after DAG administration. Although Arg1 was elevated after HFD, the fold increase after DAG administration in vitro was much greater than that in the control group. Conclusion DAG inhibits adipose tissue inflammation caused by HFD, reduces infiltration of macrophages in adipose tissue, and promotes polarization of macrophages to M2, thus alleviating obesity and improving insulin sensitivity.

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Bernadette Nickl ◽  
Fatimunnisa Qadri ◽  
Michael Bader

AbstractObesity can cause a chronic, low-grade inflammation, which is a critical step in the development of type II diabetes and cardiovascular diseases. Inflammation is associated with the expression of glycoprotein nonmetastatic melanoma protein b (Gpnmb), which is mainly expressed by macrophages and dendritic cells. We generated a Gpnmb-knockout mouse line using Crispr-Cas9 to assess the role of Gpnmb in a diet-induced obesity. The absence of Gpnmb did not affect body weight gain and blood lipid parameters. While wildtype animals became obese but remained otherwise metabolically healthy, Gpnmb-knockout animals developed, in addition to obesity, symptoms of metabolic syndrome such as adipose tissue inflammation, insulin resistance and liver fibrosis. We observed a strong Gpnmb expression in adipose tissue macrophages in wildtype animals and a decreased expression of most macrophage-related genes independent of their inflammatory function. This was corroborated by in vitro data showing that Gpnmb was mostly expressed by reparative macrophages while only pro-inflammatory stimuli induced shedding of Gpnmb. The data suggest that Gpnmb is ameliorating adipose tissue inflammation independent of the polarization of macrophages. Taken together, the data suggest an immune-balancing function of Gpnmb that could delay the metabolic damage caused by the induction of obesity.


Author(s):  
Charmaine S. Tam ◽  
Leanne M. Redman

AbstractObesity is characterized by a state of chronic low-grade inflammation due to increased immune cells, specifically infiltrated macrophages into adipose tissue, which in turn secrete a range of proinflammatory mediators. This nonselective low-grade inflammation of adipose tissue is systemic in nature and can impair insulin signaling pathways, thus, increasing the risk of developing insulin resistance and type 2 diabetes. The aim of this review is to provide an update on clinical studies examining the role of adipose tissue in the development of obesity-associated complications in humans. We will discuss adipose tissue inflammation during different scenarios of energy imbalance and metabolic dysfunction including obesity and overfeeding, weight loss by calorie restriction or bariatric surgery, and conditions of insulin resistance (diabetes, polycystic ovarian syndrome).


2016 ◽  
Vol 291 (33) ◽  
pp. 17066-17076 ◽  
Author(s):  
Carrie M. Elks ◽  
Peng Zhao ◽  
Ryan W. Grant ◽  
Hardy Hang ◽  
Jennifer L. Bailey ◽  
...  

Oncostatin M (OSM) is a multifunctional gp130 cytokine. Although OSM is produced in adipose tissue, it is not produced by adipocytes. OSM expression is significantly induced in adipose tissue from obese mice and humans. The OSM-specific receptor, OSM receptor β (OSMR), is expressed in adipocytes, but its function remains largely unknown. To better understand the effects of OSM in adipose tissue, we knocked down Osmr expression in adipocytes in vitro using siRNA. In vivo, we generated a mouse line lacking Osmr in adiponectin-expressing cells (OSMRFKO mice). The effects of OSM on gene expression were also assessed in vitro and in vivo. OSM exerts proinflammatory effects on cultured adipocytes that are partially rescued by Osmr knockdown. Osm expression is significantly increased in adipose tissue T cells of high fat-fed mice. In addition, adipocyte Osmr expression is increased following high fat feeding. OSMRFKO mice exhibit increased insulin resistance and adipose tissue inflammation and have increased lean mass, femoral length, and bone volume. Also, OSMRFKO mice exhibit increased expression of Osm, the T cell markers Cd4 and Cd8, and the macrophage markers F4/80 and Cd11c. Interestingly, the same proinflammatory genes induced by OSM in adipocytes are induced in the adipose tissue of the OSMRFKO mouse, suggesting that increased expression of proinflammatory genes in adipose tissue arises both from adipocytes and other cell types. These findings suggest that adipocyte OSMR signaling is involved in the regulation of adipose tissue homeostasis and that, in obesity, OSMR ablation may exacerbate insulin resistance by promoting adipose tissue inflammation.


2017 ◽  
Vol 312 (4) ◽  
pp. E309-E325 ◽  
Author(s):  
Pia S. Petersen ◽  
Xia Lei ◽  
Risa M. Wolf ◽  
Susana Rodriguez ◽  
Stefanie Y. Tan ◽  
...  

Chronic low-grade inflammation and cellular stress are important contributors to obesity-linked metabolic dysfunction. Here, we uncover an immune-metabolic role for C1q/TNF-related protein 7 (CTRP7), a secretory protein of the C1q family with previously unknown function. In obese humans, circulating CTRP7 levels were markedly elevated and positively correlated with body mass index, glucose, insulin, insulin resistance index, hemoglobin A1c, and triglyceride levels. Expression of CTRP7 in liver was also significantly upregulated in obese humans and positively correlated with gluconeogenic genes. In mice, Ctrp7 expression was differentially modulated in various tissues by fasting and refeeding and by diet-induced obesity. A genetic loss-of-function mouse model was used to determine the requirement of CTRP7 for metabolic homeostasis. When fed a control low-fat diet, male or female mice lacking CTRP7 were indistinguishable from wild-type littermates. In obese male mice consuming a high-fat diet, however, CTRP7 deficiency attenuated insulin resistance and enhanced glucose tolerance, effects that were independent of body weight, metabolic rate, and physical activity level. Improved glucose metabolism in CTRP7-deficient mice was associated with reduced adipose tissue inflammation, as well as decreased liver fibrosis and cellular oxidative and endoplasmic reticulum stress. These results provide a link between elevated CTRP7 levels and impaired glucose metabolism, frequently associated with obesity. Inhibiting CTRP7 action may confer beneficial metabolic outcomes in the setting of obesity and diabetes.


2018 ◽  
Vol 315 (4) ◽  
pp. E676-E693 ◽  
Author(s):  
Valentina Caracciolo ◽  
Jeanette Young ◽  
Donna Gonzales ◽  
Yingchun Ni ◽  
Stephen J. Flowers ◽  
...  

Obesity is associated with adipose tissue inflammation that contributes to insulin resistance. Zinc finger protein 36 (Zfp36) is an mRNA-binding protein that reduces inflammation by binding to cytokine transcripts and promoting their degradation. We hypothesized that myeloid-specific deficiency of Zfp36 would lead to increased adipose tissue inflammation and reduced insulin sensitivity in diet-induced obese mice. As expected, wild-type (Control) mice became obese and diabetic on a high-fat diet, and obese mice with myeloid-specific loss of Zfp36 [knockout (KO)] demonstrated increased adipose tissue and liver cytokine mRNA expression compared with Control mice. Unexpectedly, in glucose tolerance testing and hyperinsulinemic-euglycemic clamp studies, myeloid Zfp36 KO mice demonstrated improved insulin sensitivity compared with Control mice. Obese KO and Control mice had similar macrophage infiltration of the adipose depots and similar peripheral cytokine levels, but lean and obese KO mice demonstrated increased Kupffer cell (KC; the hepatic macrophage)-expressed Mac2 compared with lean Control mice. Insulin resistance in obese Control mice was associated with enhanced Zfp36 expression in KCs. Compared with Control mice, KO mice demonstrated increased hepatic mRNA expression of a multitude of classical (M1) inflammatory cytokines/chemokines, and this M1-inflammatory hepatic milieu was associated with enhanced nuclear localization of IKKβ and the p65 subunit of NF-κB. Our data confirm the important role of innate immune cells in regulating hepatic insulin sensitivity and lipid metabolism, challenge-prevailing models in which M1 inflammatory responses predict insulin resistance, and indicate that myeloid-expressed Zfp36 modulates the response to insulin in mice.


2019 ◽  
Vol 2019 ◽  
pp. 1-10 ◽  
Author(s):  
Maria Pia Fuggetta ◽  
Manuela Zonfrillo ◽  
Cristina Villivà ◽  
Enzo Bonmassar ◽  
Giampiero Ravagnan

Objective. Obesity is considered a clinic condition characterized by a state of chronic low-grade inflammation. The role of macrophages and adipocytokines in adipose tissue inflammation is in growing investigation. The physiopathological mechanisms involved in inflammatory state in obesity are not fully understood though the adipocytokines seem to characterize the biochemical link between obesity and inflammation. The aim of this work is to analyze the effect of theobromine, a methylxanthine present in the cocoa, on adipogenesis and on proinflammatory cytokines evaluated in a model of fat tissue inflammation in vitro. Methods. In order to mimic in vitro this inflammatory condition, we investigated the interactions between human-like macrophages U937 and human adipocyte cell lines SGBS. The effect of theobromine on in vitro cell growth, cell cycle, adipogenesis, and cytokines release in the supernatants has been evaluated. Results. Theobromine significantly inhibits the differentiation of preadipocytes in mature adipocytes and reduces the levels of proinflammatory cytokines as MCP-1 and IL-1β in the supernatants obtained by the mature adipocytes and macrophages interaction. Conclusion. Theobromine reduces adipogenesis and proinflammatory cytokines; these data suggest its potential therapeutic effect for treating obesity by control of macrophages infiltration in adipose tissue and inflammation.


2011 ◽  
Vol 94 (6) ◽  
pp. 1504-1512 ◽  
Author(s):  
Bram van den Borst ◽  
Harry R. Gosker ◽  
Geertjan Wesseling ◽  
Wilco de Jager ◽  
Valéry ACV Hellwig ◽  
...  

Blood ◽  
2019 ◽  
Vol 134 (Supplement_1) ◽  
pp. 1115-1115
Author(s):  
Lynn M Knowles ◽  
Hermann Eichler ◽  
Jan Pilch

We previously showed that impaired clotting in hemophilia leads to a deficit in macrophage differentiation, which negatively affects critical regenerative macrophage functions such as clot infiltration and red blood cell phagocytosis. These data provide a functional basis for the delayed wound healing as well as protracted joint inflammation commonly observed in hemophiliacs and suggest that altered macrophage function is linked to the activation of the innate immune system. We, therefore, hypothesize that hemophiliacs suffer from chronic low-grade inflammation, which in turn can affect joint health, tissue regeneration and age-related ailments such as cardiovascular disease. For this study, we collected citrated blood from 48 adult male patients with hemophilia A or B with an average age of 36 years and a body mass index (BMI) of 27.7 kg/m2. The majority of patients had a residual FVIII/FIX activity < 1% (77%) and received prophylactic treatment (60%) with a recombinant or plasmatic coagulation factor concentrate. Approximately one-half of the patients had target joints or other bleeding events in the last 3 months and one-third of the patients had contracted HBV, HCV or HIV. For controls, we randomly recruited male blood donors (n = 60; age, 35.8 years; BMI, 27.0) from our blood donation center. To assess inflammation in hemophiliacs, we analyzed platelet-poor plasma from our main collective and a BMI-adjusted cohort using commercially available ELISA kits. The results showed a significant increase of two acute-phase proteins, C-reactive protein and leptin in hemophilia patients compared to healthy controls. Further analysis demonstrated that C-reactive protein and leptin expression inversely correlated with the residual clotting activity as both parameters were high in patients with severe Hemophilia A or B and comparatively low in patients with moderate to mild hemophilia. Of note, there was neither an increase of C-reactive protein or leptin in hemophilia patients with recent bleeding (< 3 month), arthropathy, chronic viral infection nor a decrease in patients with coagulation factor activity > 10% due to prophylactic treatment or recent replacement. Therefore, these data suggest a basic link between clotting deficiencies and chronic low-grade inflammation. Low-grade inflammation is maintained by adipokines, which originate from the adipose tissue and are modulated by a process known as adipose tissue inflammation. In addition to the upregulation of the pro-inflammatory leptin, we detected a significant down-regulation of the anti-inflammatory adiponectin in the plasma of hemophilia patients resulting in a markedly decreased adiponectin/leptin ratio. To enquire if the adipose tissue inflammation in hemophilia originates from gram-negative gut bacteria that translocate into the blood circulation, we also detected elevated plasma levels of lipopolysaccharide-binding protein and hepcidin in hemophilia patients. Together, these data support the concept that low-grade inflammation in hemophilia originates from lipopolysaccharide, which in turn causes adipose tissue inflammation. To test the hypothesis that low-grade inflammation in hemophilia is caused by decreased clotting activity, we collected blood from hemophilia B patients before and after transition from a conventional standard-half-life factor IX concentrate to a prophylactic therapy with an elongated half-life (EHL) FIX (Albutrepennonacog alfa, Idelvion®). Following up on the enhanced factor replacement after > 6 months, we observed a return of hepcidin plasma levels back to baseline values in healthy controls. The decreased hepcidin values from EHL FXI therapy correlated with healing of target joints suggesting that EHL FIX not only controls bleeding but also inflammation. Together, our data demonstrate a specific link between hemophilia and low-grade inflammation that appears to involve increased lipopolysaccharide levels in the blood circulation and subsequent adipose tissue inflammation. In addition, we present evidence that low-grade inflammation is the result of the underlying clotting deficit and that sustained normalization of the clotting deficit with EHL factors ameliorates inflammation. Disclosures Eichler: Novo Nordisk: Membership on an entity's Board of Directors or advisory committees. Pilch:CSL Behring: Other: Grants (investigator initiated), Speakers Bureau; ASPIRE Award/Pfizer: Other: Grants (investigator initiated); Bayer: Consultancy, Speakers Bureau; Roche: Consultancy.


Diabetes ◽  
2018 ◽  
Vol 67 (12) ◽  
pp. 2541-2553 ◽  
Author(s):  
Eun-Hee Koh ◽  
Natasha Chernis ◽  
Pradip K. Saha ◽  
Liuling Xiao ◽  
David A. Bader ◽  
...  

2021 ◽  
Vol 5 (Supplement_1) ◽  
pp. A40-A41
Author(s):  
Xiaoyan Hannah Hui ◽  
Tianshi Feng

Abstract Introduction: Obesity is characterized by mobilization of macrophage inflammation, which represents the major events of obesity-associated adipose tissue inflammation. . On the other hand, lactate accumulation in adipose tissue long been observed. However, whether elevation of lactate plays an essential role in adipose inflammation is not known. In this study, we sought to examine the intermediary role of lactate in macrophage polarization and adipose inflammation upon obesity. Method: Lactate level and activity of lactate dehydrogense (LDH), the key enzyme of lactate production, were measured by biochemical assays. Adipocyte- and macrophage- specific Ldha knock out mice were constructed by cre-LoxP system to study the physiological role of lactate in diet induced obesity. Macrophage polarization and inflammation were examined by western blotting and Q-PCR. Results: Lactate and LDH activity were selectively upregulated in adipose tissues of obese mice. Adipocyte-, but not macrophage-selective deletion of LDHA, led to a significant improvement of adipose inflammation and metabolic dysfunctions. In vitro experiments showed that the lactate promoted M1 polarization through direct interation and inhibition of the PHD2, which subsequently stabilizes HIF-1alpha. In addition, a positive correlation between adipose lactate level and adipose tissue inflammation was found in obese patients. Conclusion: In obese condition, increased production of lactate from adipocytes enhances adipose tissue inflammation by promoting the proinflammatory polarization of adipose macrophages.


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