In patients with hypertriglyceridemia, a short-term low-saturated fat vs high-saturated fat diet induced lower plasma lipids and improved monocyte phenotypes. These findings highlight the role of diet fat content and composition for monocyte phenotypes and possibly cardiovascular disease risk in these patients. (Effects of Dietary Interventions on Monocytes in Metabolic Syndrome; NCT03591588).
Introduction: Dietary fat and composition may impact the risk of atherosclerotic cardiovascular disease (ASCVD) in subjects with hypertriglyceridemia (HTG). Hypothesis: We hypothesized that a low-saturated fat diet (LSFD), in contrast to a high-saturated fat diet (HSFD), improves blood lipid levels and reduces atherothrombosis risk factors in subjects with HTG. Method: Subjects with HTG and metabolic syndrome (n=19) were randomly placed on an LSFD (~25% of calories from fat, 5% from saturated fat) or an HSFD (~52% of calories from fat, 25% from saturated fat) for 4 days (day 1-4) and a breakfast on day 5 and then switched to the other diet after a 4- to 6-week washout period. Blood was collected on day 1 fasting before the start of the diet and on day 5 fasting and at 4 and 6 hours after breakfast. Lipid profiles and flow cytometry to measure monocyte intracellular lipid accumulation, monocyte expression of tissue factor (TF), and monocyte-platelet aggregates (MPAs) were performed. Results: On day 5, LSFD, compared to HSFD, induced lower plasma levels of postprandial total triglyceride and LDL-triglyceride and fasting and postprandial total cholesterol, non-HDL-cholesterol, LDL-cholesterol, and small dense LDL-cholesterol. Classical and intermediate monocytes with LSFD, in contrast to HSFD, exhibited reduced intracellular lipid accumulation indicated by decreases in cellular granularity and nile red staining examined by flow cytometry. LSFD vs. HSFD also reduced classical monocyte uptake of oxidized LDL ex vivo at 4 hours postprandially on day 5. Surface level of TF was higher on classical and intermediate monocytes than on nonclassical monocytes assessed by mean fluorescence intensity. Classical and intermediate monocytes, compared to nonclassical monocytes, were also more prone to form aggregates with platelets. However, there was no significant difference between LSFD and HSFD in TF levels on any monocyte subsets and in MPAs of any monocyte subsets at any time points recorded. Conclusion: In subjects with HTG and metabolic syndrome, short-term LSFD, in contrast to HSFD, reduced monocyte lipid accumulation and oxidized LDL uptake but did not induce significant differences in monocyte surface levels of TF and MPA formation.
Background: Monocyte phenotypic changes play a pivotal role in atherogenesis and can be induced by plasma lipids. We analyzed associations of monocyte phenotypes with lipid profiles and the potential of predicting monocyte phenotypes by lipid variables in subjects with hypertriglyceridemia (HTG) after short-term intake of low-saturated fat diet (LSFD) and high-saturated fat diet (HSFD). Method: Subjects with HTG (n=19, 10 men and 9 women, aged 53.9±13.7 years) received isocaloric LSFD (~25% of calories from fat, 5% from saturated fat) and HSFD (~52% of calories from fat, 25% from saturated fat) in randomized order for 4 days (days 1-4) and a test meal on day 5, separated by a 4- to 6-week washout period. Blood was taken on day 1 fasting before the diets and on day 5 fasting and 4 and 6 hours after the test meal to examine lipoprotein profile by enzymatic assay, fatty acids by nuclear magnetic resonance spectroscopy, and monocyte phenotypes by flow cytometry. Least absolute shrinkage and selection operator (LASSO) regression models were built to identify influential lipid variables for key monocyte markers that responded differently to the two diets. Results: LSFD, compared to HSFD, induced lower plasma levels of postprandial total triglyceride (TG), VLDL-TG, and LDL-TG and fasting and postprandial total cholesterol and LDL-cholesterol and altered fatty acid composition, with reduced saturated fatty acids (SFAs) but increased polyunsaturated fatty acids (PUFAs). Compared to HSFD, LSFD reduced monocyte lipid accumulation and levels of several surface markers involved in monocyte adhesion and migration including CD11c, a β2 integrin, on intermediate monocytes. Using the LASSO regression models, we identified that total cholesterol, LDL-TG, and apoB were positively correlated and n-3 PUFAs negatively correlated with lipid accumulation in intermediate monocytes and that total TG, LDL-TG, and apoCIII were positively correlated with CD11c levels on intermediate monocytes. Conclusions: In subjects with HTG, short-term LSFD compared to HSFD improves lipid profiles and monocyte phenotypes. We also identified specific plasma lipid parameters that may be reliable predictors for and contribute to specific monocyte phenotypic changes in HTG.
CD11c+ macrophages/dendritic cells (MDCs) areincreased and display classically activated M1-like phenotype in obese adiposetissue (AT) and may contribute to AT inflammation and insulin resistance. Stat1is a key transcription factor for MDC polarization into M1-like phenotype. Here,we examined the role of Stat1 in obesity-induced AT MDC polarization andinflammation and insulin resistance using mice with specific knockout of Stat1in MDCs (cKO). Stat1 was upregulated and phosphorylated, indicating activation,early and persistently in AT and AT MDCs of wild-type mice fed high-fat diet (HFD).Compared to littermate controls, cKO mice fed HFD (16 weeks) had reductions in MDC(mainly CD11c+ macrophage) M1-like polarization and interferon-g–expressing T helper type 1 (Th1) cells, but increases in interleukin-5–expressing Th2cells and eosinophils in perigonadal andinguinal AT, and enhanced inguinal AT browning, with increased energyexpenditure. cKO mice compared with controls also had significant reductions intriglyceride content in the liver and skeletal muscle and exhibited improved insulin sensitivity andglucose tolerance. Taken together, our results demonstrated that Stat1 in MDCsplays an important role in obesity-induced MDC M1-like polarization and ATinflammation and contributes to insulin resistance and metabolic dysfunctionsin obese mice.
Introduction: Clinical trials suggest that low-saturated fat diet (LSFD) may reduce the risk of atherosclerotic cardiovascular disease (ASCVD) in subjects with hypertriglyceridemia (HTG). Monocytes play crucial roles in atherogenesis. Hypothesis: LSFD vs high-saturated fat diet (HSFD) improves monocyte phenotypes, thereby reducing ASCVD risk, in subjects with HTG. Methods: Subjects with HTG and metabolic syndrome (MetS, n=19) received isocaloric LSFD (~25% of calories from fat, 5% from saturated fat) and HSFD (~52% of calories from fat, 25% from saturated fat) in randomized order for 4 days (days 1-4) plus a breakfast on day 5, separated by a 4- to 6-week washout period. Blood was drawn on day 1 fasting before the diets and 3 times on day 5 (fasting before the breakfast and 4 and 6 hours postprandial) for measurement of lipid profile and analyses of monocyte phenotypes by flow cytometry and monocyte adhesion by a lab-on-a-chip microfluidic assay. Results: On day 5, LSFD, compared to HSFD, induced lower plasma levels of postprandial total triglyceride and LDL-triglyceride and fasting and postprandial total cholesterol, LDL-cholesterol, and small dense LDL-cholesterol. Compared to HSFD, LSFD reduced fasting and postprandial intracellular lipid accumulation in classical and intermediate monocytes examined by nile red staining and indicated by side scatter value of flow cytometric analysis. LSFD versus HSFD also reduced ex vivo uptake of oxidized LDL by classical monocytes at 4 hours postprandially and by intermediate monocytes in fasting state. Surface levels of molecules involved in monocyte adhesion/migration, including CD11c, CD81, and CCR2, were lower on monocytes with LSFD than with HSFD. Consistently, LSFD compared to HSFD reduced monocyte adhesion to VCAM-1. Intracellular levels of cytokines such as IL-1β, TNFα, and IL-6 in monocytes showed no difference between the two diets. Conclusions: In subjects with HTG and MetS, short-term LSFD compared to HSFD reduces monocyte intracellular lipid accumulation and improves monocyte phenotypes with reductions in monocyte adhesion and oxidized LDL uptake. These findings highlight the importance of diet composition in monocyte phenotypes and possibly atherosclerosis risks in patients with HTG and MetS.
Background: Classically activated M1-like CD11c+ macrophages/dendritic cells (MDCs) are increased in obese adipose tissue (AT) and may contribute to AT inflammation and the development of insulin resistance in obesity. STAT1 is a key transcription factor for MDC polarization into M1-like phenotypes. Here, we examined the role of STAT1 in obesity-induced AT MDC polarization and inflammation and insulin resistance in mice. Methods: Mice with specific knockout (KO) of STAT1 in CD11c+ MDCs were generated by crossbreeding STAT1fl/fl and CD11c-Cre mice. CD11c/STAT1 KO and littermate controls were fed high-fat diet (HFD, 16 weeks) to induce obesity and evaluated for immune cells and browning/beige adipogenesis in perigonadal (pAT) and inguinal (iAT) AT and metabolic functions. Results: Compared to control mice, KO mice on HFD had similar body weight. Analyses of AT immune cells revealed that compared to controls, KO mice had a decrease in M1-like proinflammatory polarization but an increase in M2-like polarization of macrophages and reduced CD8+ T cell number in pAT, and significant increases in the proportion of IL-5+ Th2 cells and eosinophils (CD170+) in pAT and iAT (p<0.05). Furthermore, compared to control mice, KO mice showed significantly increased iAT expression of browning markers (Ucp-1, Cidea, and prdm16) and had increased oxygen consumption rate but lower respiratory exchange ratio, indicating higher energy expenditure and increased fat utilization as energy source. Moreover, KO mice, as compared to controls, had significant reductions in triglyceride content in the liver and skeletal muscle and exhibited improved insulin sensitivity and glucose tolerance examined by insulin and glucose tolerance test (p<0.05). Conclusion: STAT1 plays an important role in obesity-induced MDC M1-like polarization and AT inflammation and contributes to insulin resistance and metabolic dysfunctions in obese mice. Disclosure A. Kalathookunnel Antony: None. X. Perrard: None. Z. Lian: None. J. Perrard: None. C.M. Ballantyne: Consultant; Self; Abbott, Akcea Therapeutics, Amarin Corporation, Amgen Inc., AstraZeneca, Boehringer Ingelheim Pharmaceuticals, Inc., Eli Lilly and Company, Esperion, Gilead Sciences, Inc., Matinas BioPharma, Merck & Co., Inc., Novartis Pharmaceuticals Corporation, Novo Nordisk Inc., Regeneron Pharmaceuticals, Roche Diagnostic USA, Sanofi. Research Support; Self; Abbott, Akcea Therapeutics, Amarin Corporation, Amgen Inc., Esperion, Novartis Pharmaceuticals Corporation, Regeneron Pharmaceuticals, Roche Diagnostic USA, Sanofi. Other Relationship; Self; Roche Diagnostic USA. H. Wu: None. Funding American Diabetes Association (1-17-IBS-082 to H.W.)
Background: Obesity is a global epidemic and major risk factor for insulin resistance and type 2 diabetes. Obesity is associated with low grade chronic inflammation of adipose tissue (AT). F4/80+CD11c+ macrophages/dendritic cells are increased and polarized into M1-like phenotypes in AT and may contribute to insulin resistance in mouse models of obesity. STAT1 is a transcription factor that play key roles in macrophage polarization into M1-like phenotypes. Hence, we investigated the role of CD11c+ macrophage/dendritic cell STAT1 in obesity-induced AT inflammation and insulin resistance. Methods: Mice with specific knockout of STAT1 in CD11c+ cells were generated by crossbreeding STAT1 fl/fl and CD11c-Cre mice. CD11c/STAT1 KO and littermate controls were fed either high fat diet (HFD, for 16 weeks) to induce obesity or normal diet (ND) as lean controls. We evaluated body composition, insulin sensitivity, gene expression of inflammatory markers, various immune cells and brown/beige adipogenesis markers in AT. Results: Perigonadal white AT (PWAT) and body weight were not significantly different between KO and control groups but liver weight and liver-to-body weight ratio were significantly reduced in obese KO mice (p<0.05). STAT1 KO mice on HFD exhibited improved insulin sensitivity examined by insulin tolerance test (p<0.05) and reduced expression of inflammatory markers TNFα, IFNγ, IL-12 and MCP1 in PWAT and subcutaneous AT (SAT) compared to littermate controls (p<0.05). AT immune cell analysis revealed that STAT1 ablation caused a decrease in M1-like proinflammatory polarization and increase in M2-like polarization of F4/80+ macrophages, reduced number of total CD3+ T cells and CD8+T cells in PWAT. In addition, brown/beige adipogenesis markers UCP1, CIDEA and Prdm16 also upregulated (p<0.05) in SAT of obese KO mice. Conclusion: Our results show the critical role of macrophage/dendritic cell STAT1 in obesity-induced AT inflammation and insulin resistance. Disclosure A. Kalathookunnel Antony: None. X.D. Perrard: None. Z. Lian: None. J. Perrard: None. L. Hennighausen: None. C.W. Smith: None. C.M. Ballantyne: Research Support; Self; Abbott, Amarin Corporation, Amgen Inc., Esperion Therapeutics, Ionis Pharmaceuticals, Inc., Novartis Pharmaceuticals Corporation, Pfizer Inc., Regeneron Pharmaceuticals, Inc., Roche Diagnostics Corporation, Sanofi. Consultant; Self; Abbott, Amarin Corporation, Amgen Inc., AstraZeneca, Boehringer Ingelheim Pharmaceuticals, Inc., Eli Lilly and Company, Esperion Therapeutics, Ionis Pharmaceuticals, Inc., Matinas BioPharma, Merck & Co., Inc., Novartis Pharmaceuticals Corporation, Novo Nordisk Inc., Pfizer Inc., Regeneron Pharmaceuticals, Inc., Roche Diagnostics Corporation, Sanofi. H. Wu: None.
Similar to obesity, aging is associated with visceral adiposity and insulin resistance. Inflammation in adipose tissue, mainly evidenced by increased accumulation and proinflammatory polarization of T cells and macrophages, has been well-documented in obesity and may contribute to the associated metabolic dysfunctions including insulin resistance. Studies show that increased inflammation, including inflammation in adipose tissue, also occurs in aging, so-called “inflamm-aging.” Aging-associated inflammation in adipose tissue has some similarities but also differences compared to obesity-related inflammation. In particular, conventional T cells are elevated in adipose tissue in both obesity and aging and have been implicated in metabolic functions in obesity. However, the changes and also possibly functions of regulatory T cells (Treg) in adipose tissue are different in aging and obesity. In this review, we will summarize recent advances in research on the changes of these immune cells in adipose tissue with aging and obesity and discuss their possible contributions to metabolism and the potential of these immune cells as novel therapeutic targets for prevention and treatment of metabolic diseases associated with aging or obesity.
Aim: Unstable/vulnerable plaques are characterized by a thin cap fibroatheroma and necrotic core, and may result in serious clinical conditions, including transient ischemic attack, stroke, aphasia, and other motor defects. The precise mechanism of plaque rupture remains to be defined to identify target site(s) for intervention. Here, we report a novel swine model of vulnerable plaque and identified a potential target site for intervention.
Ethnopharmacological relevance: This plant has been utilized in Indian system of medicine for treatment of diabetes. This is clearly evident from the composition of Ayurvedic preparation for diabetes 'Nisakathakadi Kashayam' where this is one of the main ingredients of this preparationAim of the study: The study aims in elucidating the molecular mechanisms underlying the insulin sensitizing effects of Symplocos cochinchinensis ethanol extract (SCE) using a high fructose and saturated fat (HFS) fed insulin resistant rat model.Materials and methods: Experimental groups consisted of normal diet (ND), ND+SCE 500 mg/kg bwd, HFS +vehicle, HFS+metformin 100 mg/kg bwd, HFS-FSCE 250/500 mg/kg bwd. Initially the animals were kept under HFS diet for 8 weeks, and at the end of 8 week period, animals were found to develop insulin resistance and dyslipidemia. Post-administration of SCE, metformin or vehicle were carried out for 3 weeks. Gene and protein expressions relevant to insulin signalling pathway were analysed.Results: HFS significantly altered the normal physiology of animals via proteins and genes relevant to metabolism like stearoyl-CoA desaturase (SCD1), sterol regulatory element binding protein 1 (SREBP-1c), fatty acid synthase (FAS), glucose 6 phosphatase (G6Pase), phosphoenol pyruvate carboxykinase (PEPCK), glucose transporter 2 (GLUT2), protein tyrosine phosphatse 1B (PTP1B), peroxisome proliferator activated receptor alpha (PPAR alpha), sirtuin 1 (SIRT1) and glucokinase. SCE administration attenuates the insulin resistance in HFS rat by the down regulation of SCD1 gene expression that modulates SREBP-1c dependent and independent hepatic lipid accumulation.Conclusion: SCE enhances insulin sensitivity via the down regulation of lipogenesis and insulin resistance in HFS rat model.
BackgroundDiabetes is the leading cause of morbidity and mortality, with a number currently diagnosed as high as 371 million. Plant-based therapy could be an ideal choice because of fewer side-effects and wider acceptability. Hence, the antihyperglycemic potential of Aerva lanata, a herb prescribed for diabetes in Ayurveda was evaluated to elucidate its possible mechanism of action. MethodsHigh performance liquid chromatography analysis was used for the characterization of 70% ethanolic (aqueous leaf extract [ALE]) and ethyl acetate (AEA) extracts. Further, they were evaluated for their antioxidant, inhibition of alpha glucosidase, protein glycation dipeptidyl peptidase IV (DPP IV), protein tyrosine phosphatase 1B (PTP1B) and stimulation of glucose uptake and glitazone like property (adipogenic potential) using in vitro models. The promising alpha glucosidase inhibitory potential of ALE was further evaluated in normal and streptozotocin (STZ) diabetic rats. ResultsALE inhibited yeast (IC50 - 81.76g/mL) and rat intestinal alpha glucosidase (IC50 - 108.7g/mL), protein glycation, DPP IV enzyme (IC50 - 118.62g/mL) and PTP1B (IC50 - 94.66g/mL). ALE stimulated maximal adipogenesis at 50g/mL and enhanced insulin mediated glucose uptake (threefold of basal) at 100g/mL in L6 myotubes. ALE (500mg/kg b.w.) showed a significant antihyperglycemic activity in sucrose loaded STZ normal (15.57%) and diabetic (18.44%) rats. HPLC analysis of ALE revealed the presence of bioactives like alpha amyrin, betulin and beta sitosterol. ConclusionsAlpha glucosidase inhibition, antiglycation, and adipogenic potential significantly contribute to the antidiabetic property of Aerva lanata. In addition, insulin sensitization and antioxidant potential also enhance its therapeutic potential.
The study is designed to find out the biochemical basis of antidiabetic property of Symplocos cochinchinensis (SC), the main ingredient of 'Nisakathakadi' an Ayurvedic decoction for diabetes. Since diabetes is a multifactorial disease, ethanolic extract of the bark (SCE) and its fractions (hexane, dichloromethane, ethyl acetate and 90% ethanol) were evaluated by in vitro methods against multiple targets relevant to diabetes such as the alpha glucosidase inhibition, glucose uptake, adipogenic potential, oxidative stress, pancreatic beta cell proliferation, inhibition of protein glycation, protein tyrosine phosphatase-1B (PTP-1B) and dipeptidyl peptidase-IV (DPP-IV). Among the extracts, SCE exhibited comparatively better activity like alpha glucosidase inhibition (IC50 value-82.07±2.10 µg/mL), insulin dependent glucose uptake (3 fold increase) in L6 myotubes, pancreatic beta cell regeneration in RIN-m5F (3.5 fold increase) and reduced triglyceride accumulation (22% decrease) in 3T3L1 cells, protection from hyperglycemia induced generation of reactive oxygen species in HepG2 cells (59.57% decrease) with moderate antiglycation and PTP-1B inhibition. Chemical characterization by HPLC revealed the superiority of SCE over other extracts due to presence and quantity of bioactives (beta-sitosterol, phloretin 2′glucoside, oleanolic acid) in addition to minerals like magnesium, calcium, potassium, sodium, zinc and manganese. So SCE has been subjected to oral sucrose tolerance test to evaluate its antihyperglycemic property in mild diabetic and diabetic animal models. SCE showed significant antihyperglycemic activity in in vivo diabetic models. We conclude that SC mediates the antidiabetic activity mainly via alpha glucosidase inhibition, improved insulin sensitivity, with moderate antiglycation and antioxidant activity.
This study evaluated the inhibitory potential of ethyl acetate extract of Parmotrema tinctorum (PTEE), an edible lichen, against aldose reductase (AR) and carbohydrate digestive enzymes such as α-glucosidase and α-amylase. It was also screened for antioxidant activities by using DPPH, ABTS, superoxide and hydroxyl radical-scavenging assays. PTEE exhibited α-glucosidase, α-amylase and AR inhibition along with significant antiglycation potential with an estimated IC50 value of 58.45 ± 1.24, 587.74 ± 3.27, 139.28 ± 2.6 and 285.78 ± 1.287 μg/mL, respectively. Antioxidant activity of PTEE against DPPH (IC50 396.83 ± 2.98 μg/mL), ABTS (151.34 ± 1.79 μg/mL), superoxide (30.29 ± 1.17 μg/mL) and hydroxyl (35.42 ± 1.22 μg/mL) radicals suggests the antioxidant potential of P. tinctorum. Significant antioxidant activity and inhibitory potential against carbohydrate digestive enzymes and AR suggest that P. tinctorum can be developed as functional food/nutraceuticals for diabetes after detailed study.
The beneficial effects of hydroethanol extract of Symplocos cochinchinensis (SCE) has been explored against hyperglycemia associated secondary complications in streptozotocin induced diabetic rat model. The experimental groups consist of normal control (NC), diabetic control (DC), DC + metformin 100 mg kg(-1) bwd, DC + SCE 250 and DC + SCE 500. SCEs and metformin were administered daily for 21 days and sacrificed on day 22. Oral glucose tolerance test, plasma insulin, % HbA1c, urea, creatinine, aspartate aminotransferase, alanine aminotransferase, albumin, total protein etc. were analysed. Aldose reductase (AR) activity in the eye lens was also checked. On day 21, DC rats showed significantly abnormal glucose response, HOMA-IR, % HbA1c, decreased activity of antioxidant enzymes and GSH, elevated AR activity, hepatic and renal oxidative stress markers like malondialdehyde, protein carbonyls compared to NC. DC rats also exhibited increased level of plasma urea and creatinine. Treatment with SCE protected from the deleterious alterations of biochemical parameters in a dose dependent manner including histopathological alterations in pancreas. SCE 500 exhibited 46.28% of glucose lowering effect and decreased HOMA-IR (2.47), % HbA1c (6.61), lens AR activity (15.99%), and hepatic, renal oxidative stress and function markers compared to DC group. Considerable amount of liver and muscle glycogen was replenished by SCE treatment in diabetic animals. Although metformin showed better effect, the activity of SCE was very much comparable with this drug.
BACKGROUNDRapid urbanisation and nutritional transition is fuelling the increased global incidence of type 2 diabetes. Pineapple fruit residue was explored for its nutraceutical properties as an alternative or adjunct to currently available treatment regime. Ethyl acetate and methanolic extracts of pineapple fruit residue were evaluated for anti-diabetic activity in cell free and cell based systems. Specifically, we assessed: (1) antioxidant potential, (2) anti-glycation potential, (3) carbohydrate digestive enzyme inhibition, and (4) lipid accumulation and glycerol-3-phosphate dehydrogenase activity in differentiating 3T3-L1 cells.RESULTSThe active components in the ethyl acetate and methanolic extracts were identified as sinapic acid, daucosterol, 2-methylpropanoate, 2,5-dimethyl-4-hydroxy-3(2H)-furanone, methyl 2-methylbutanoate and triterpenoid ergosterol using DART/HRMS and ESI/HRMS. Micronutrient analysis revealed the presence of magnesium, potassium and calcium. Adipogenic potential, anti-glycation property of the ethyl acetate extract, and DNA damage protection capacity of the methanolic extract are promising.CONCLUSIONResults from this study clearly indicate that pineapple fruit residue could be utilised as a nutraceutical against diabetes and related complications. (c) 2013 Society of Chemical Industry