Elderberry (Sambucus nigra L.) Fruit Extract Alleviates Oxidative Stress, Insulin Resistance, and Inflammation in Hypertrophied 3T3-L1 Adipocytes and Activated RAW 264.7 Macrophages

Foods - Tập 8 Số 8 - Trang 326
Joanna Zielińska-Wasielica1, Anna Olejnik1, Katarzyna Kowalska1, Mariola Olkowicz2, Radosław Dembczyński1
1Department of Biotechnology and Food Microbiology, Poznan University of Life Sciences, Wojska Polskiego 48, 60-627 Poznan, Poland
2Department of Chemistry, University of Waterloo, 200 University Avenue West, Waterloo, ON, N2L 3G1, Canada

Tóm tắt

Oxidative stress and inflammation in hypertrophied adipose tissue with excessive fat accumulation play a crucial role in the development of obesity and accompanying metabolic dysfunctions. This study demonstrated the capacity of elderberry fruit (EDB) extract to decrease the elevated production of reactive oxygen species in hypertrophied 3T3-L1 adipocytes. Treatment with the EDB extract resulted in modulation of mRNA expression and protein secretion of key adipokines in hypertrophied adipocytes. Expression of leptin and adiponectin was, respectively, down- and up-regulated. Moreover, glucose uptake stimulation was noticed in mature adipocytes, both sensitive to insulin and insulin resistant. This may suggest a positive effect of EDB extract on insulin resistance status. The extract was also found to alleviate the inflammatory response in activated RAW 264.7 macrophages by down-regulating the expression of proinflammatory genes (TNF-α, IL-6, COX-2, iNOS) and suppressing the enhanced production of inflammatory mediators (TNF-α, IL-6, PGE2, NO). In vitro experiments showed that the EDB extract could inhibit digestive enzymes, including α-amylase, α-glucosidase, and pancreatic lipase, leading to reduced intestinal absorption of dietary lipids and carbohydrates. Further in vivo studies could be postulated to support EDB as a functional food component for the prevention and treatment of obesity and metabolic-immune comorbidities.

Từ khóa


Tài liệu tham khảo

Jo, J., Gavrilova, O., Pack, S., Jou, W., Mullen, S., Sumner, A.E., Cushman, S.W., and Periwal, V. (2009). Hypertrophy and/or Hyperplasia: Dynamics of Adipose Tissue Growth. PLoS Comput. Biol.

Schuster, 2010, Obesity and the development of type 2 diabetes: The effects of fatty tissue inflammation, Diabetes Metab. Syndr. Obes., 3, 253, 10.2147/DMSO.S7354

Tateya, 2013, Recent advances in obesity-induced inflammation and insulin resistance, Front. Endocrinol., 4, 93, 10.3389/fendo.2013.00093

Kowalska, 2016, Current evidence on the health-beneficial effects of berry fruits in the prevention and treatment of metabolic syndrome, Curr. Opin. Clin. Nutr. Metab. Care, 19, 446, 10.1097/MCO.0000000000000322

Veberic, 2009, European elderberry (Sambucus nigra L.) rich in sugars, organic acids, anthocyanins and selected polyphenols, Food Chem., 114, 511, 10.1016/j.foodchem.2008.09.080

Sidor, 2015, Advanced research on the antioxidant and health benefit of elderberry (Sambucus nigra) in food—A review, J. Funct. Foods, 18, 941, 10.1016/j.jff.2014.07.012

Olejnik, 2015, Anti-inflammatory effects of gastrointestinal digested Sambucus nigra L. fruit extract analysed in co-cultured intestinal epithelial cells and lipopolysaccharide-stimulated macrophages, J. Funct. Foods, 19, 649, 10.1016/j.jff.2015.09.064

Olejnik, 2016, Gastrointestinal digested Sambucus nigra L. fruit extract protects in vitro cultured human colon cells against oxidative stress, Food Chem., 197, 648, 10.1016/j.foodchem.2015.11.017

2018, Bioactive properties of Sambucus nigra L. as a functional ingredient for food and pharmaceutical industry, J. Funct. Foods, 40, 377, 10.1016/j.jff.2017.11.025

Neves, 2019, A new insight on elderberry anthocyanins bioactivity: Modulation of mitochondrial redox chain functionality and cell redox state, J. Funct. Foods, 56, 145, 10.1016/j.jff.2019.03.019

Badescu, 2015, Effects of Sambucus nigra and Aronia melanocarpa extracts on immune system disorders within diabetes mellitus, Pharm. Biol., 53, 533, 10.3109/13880209.2014.931441

Farrell, 2015, Black elderberry extract attenuates inflammation and metabolic dysfunction in diet-induced obese mice, Br. J. Nutr., 114, 1123, 10.1017/S0007114515002962

Salvador, Â.C., Król, E., Lemos, V.C., Santos, S.A.O., Bento, F.P.M.S., Costa, C.P., Almeida, A., Szczepankiewicz, D., Kulczyński, B., and Krejpcio, Z. (2017). Effect of Elderberry (Sambucus nigra L.) Extract Supplementation in STZ-Induced Diabetic Rats Fed with a High-Fat Diet. Int. J. Mol. Sci., 18.

Farrell, 2015, Anthocyanin-rich black elderberry extract improves markers of HDL function and reduces aortic cholesterol in hyperlipidemic mice, Food Funct., 6, 1278, 10.1039/C4FO01036A

Ho, G.T., Wangensteen, H., and Barsett, H. (2017). Elderberry and elderflower extracts, phenolic compounds, and metabolites and their effect on complement, RAW 264.7 macrophages and dendritic cells. Int. J. Mol. Sci., 18.

Simonyi, 2015, Inhibition of microglial activation by elderberry extracts and its phenolic components, Life Sci., 128, 30, 10.1016/j.lfs.2015.01.037

Kowalska, 2019, Inhibitory effects of lingonberry (Vaccinium vitis-idaea L.) fruit extract on obesity-induced inflammation in 3T3-L1 adipocytes and RAW 264.7 macrophages, J. Funct. Foods, 54, 371, 10.1016/j.jff.2019.01.040

Kowalska, K., Olejnik, A., Szwajgier, D., and Olkowicz, M. (2017). Inhibitory activity of chokeberry, bilberry, raspberry and cranberry polyphenol-rich extract towards adipogenesis and oxidative stress in differentiated 3T3-L1 adipose cells. PLoS ONE, 12.

Choi, 2006, A quantitative nitroblue tetrazolium assay for determining intracellular superoxide anion production in phagocytic cells, J. Immunoass. Immunoch., 27, 31, 10.1080/15321810500403722

2008, The anti-diabetic properties of Guazuma ulmifolia Lam are mediated by the stimulation of glucose uptake in normal and diabetic adipocytes without inducing adipogenesis, J. Ethnopharmacol., 118, 252, 10.1016/j.jep.2008.04.007

Boath, 2012, Berry Polyphenols Inhibit Digestive Enzymes: A Source of Potential Health Benefits?, Food Dig., 3, 1, 10.1007/s13228-012-0022-0

Tan, 2017, Comparison of α-amylase, α-glucosidase and lipase inhibitory activity of the phenolic substances in two black legumes of different genera, Food Chem., 214, 259, 10.1016/j.foodchem.2016.06.100

Schmitzer, 2012, Composition of sugars, organic acids, and total phenolics in 25 wild or cultivated berry species, J. Food Sci., 77, C1064

Schmitzer, 2014, Investigation of anthocyanin profile of four elderberry species and interspecific hybrids, J. Agric. Food Chem., 62, 5573, 10.1021/jf5011947

Bays, 2008, Pathogenic potential of adipose tissue and metabolic consequences of adipocyte hypertrophy and increased visceral adiposity, Expert Rev. Cardiovasc. Ther., 6, 343, 10.1586/14779072.6.3.343

Manna, 2015, Obesity, Oxidative Stress, Adipose Tissue Dysfunction, and the Associated Health Risks: Causes and Therapeutic Strategies, Metab. Syndr. Relat. Disord., 13, 423, 10.1089/met.2015.0095

Matsuda, 2013, Increased oxidative stress in obesity: Implications for metabolic syndrome, diabetes, hypertension, dyslipidemia, atherosclerosis, and cancer, Obes. Res. Clin. Pract., 7, e330, 10.1016/j.orcp.2013.05.004

Meier, 2004, Endocrine regulation of energy metabolism: Review of pathobiochemical and clinical chemical aspects of leptin, ghrelin, adiponectin, and resistin, Clin. Chem., 50, 1511, 10.1373/clinchem.2004.032482

Bravo, 2006, Leptin and hypertension in obesity, Vasc. Health Risk Manag., 2, 163, 10.2147/vhrm.2006.2.2.163

Zeyda, 2009, Obesity, inflammation, and insulin resistance—A mini-review, Gerontology, 55, 379, 10.1159/000212758

Kahn, 2000, Obesity and insulin resistance, J. Clin. Investig., 106, 473, 10.1172/JCI10842

Ho, G.T.T., Nguyen, T.K.Y., Kase, E.T., Tadesse, M., Barsett, H., and Wangensteen, H. (2017). Enhanced Glucose Uptake in Human Liver Cells and Inhibition of Carbohydrate Hydrolyzing Enzymes by Nordic Berry Extracts. Molecules, 22.

Ho, 2017, Phenolic Elderberry Extracts, Anthocyanins, Procyanidins, and Metabolites Influence Glucose and Fatty Acid Uptake in Human Skeletal Muscle Cells, J. Agric. Food Chem., 65, 2677, 10.1021/acs.jafc.6b05582

Majewska, 2014, In vitro inhibitory effect on digestive enzymes and antioxidant potential of commonly consumed fruits, J. Agric. Food Chem., 62, 4610, 10.1021/jf5008264

Hotamisligil, 2006, Inflammation and metabolic disorders, Nature, 444, 860, 10.1038/nature05485

Gregor, 2011, Inflammatory mechanisms in obesity, Annu. Rev. Immunol., 29, 415, 10.1146/annurev-immunol-031210-101322

Jayarathne, 2017, Anti-Inflammatory and Anti-Obesity Properties of Food Bioactive Components: Effects on Adipose Tissue, Prev. Nutr. Food Sci., 22, 251, 10.3746/pnf.2017.22.4.251

Aderem, 2000, Toll-like receptors in the induction of the innate immune response, Nature, 406, 782, 10.1038/35021228

2013, Obesity and Inflammation: Epidemiology, Risk Factors, and Markers of Inflammation, Int. J. Endocrinol., 2013, 678159

Suganami, 2005, A paracrine loop between adipocytes and macrophages aggravates inflammatory changes: Role of free fatty acids and tumor necrosis factor alpha, Arterioscler. Thromb. Vasc. Biol., 25, 2062, 10.1161/01.ATV.0000183883.72263.13

Popko, 2010, Proinflammatory cytokines Il-6 and TNF-α and the development of inflammation in obese subjects, Eur. J. Med. Res., 15, 120, 10.1186/2047-783X-15-S2-120

Chen, 2018, Inflammatory responses and inflammation-associated diseases in organs, Oncotarget, 9, 7204, 10.18632/oncotarget.23208

García-Alonso, V., Titos, E., Alcaraz-Quiles, J., Rius, B., Lopategi, A., López-Vicario, C., Jakobsson, P.J., Delgado, S., Lozano, J., and Clària, J. (2016). Prostaglandin E2 Exerts Multiple Regulatory Actions on Human Obese Adipose Tissue Remodeling, Inflammation, Adaptive Thermogenesis and Lipolysis. PLoS ONE, 11.

Hsieh, 2009, COX-2-mediated inflammation in fat is crucial for obesity-linked insulin resistance and fatty liver, Obesity, 17, 1150, 10.1038/oby.2008.674

Lin, 2003, Inhibition of lipopolysaccharide-induced nitric oxide production by flavonoids in RAW264.7 macrophages involves heme oxygenase-1, Biochem. Pharmacol., 66, 1821, 10.1016/S0006-2952(03)00422-2

Santini, 2018, Nutraceuticals: Shedding light on the grey area between pharmaceuticals and food, Expert Rev. Clin. Pharmacol., 11, 545, 10.1080/17512433.2018.1464911

Daliu, 2019, From pharmaceuticals to nutraceuticals: Bridging disease prevention and management, Expert Rev. Clin. Pharmacol., 12, 1, 10.1080/17512433.2019.1552135