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Archives of Physiology and Biochemistry
The Journal of Metabolic Diseases
Volume 129, 2023 - Issue 2
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Original Articles

Comparative study of dietary fat: lard and sugar as a better obesity and metabolic syndrome mice model

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Pages 449-459 | Received 17 Aug 2020, Accepted 08 Oct 2020, Published online: 11 Nov 2020

References

  • Almeida, M.E.F.D., et al., 2009. Perfil lipídico tecidual de ratos alimentados com diferentes fontes lipídicas. Revista de nutrição, 22 (1), 51–60.
  • Andrade, J.M., et al., 2014. Resveratrol attenuates hepatic steatosis in high-fat fed mice by decreasing lipogenesis and inflammation. Nutrition, 30 (7–8), 915–919.
  • Andrikopoulos, S., et al., 2008. Evaluating the glucose tolerance test in mice. American journal of physiology, endocrinology and metabolism, 295 (6), E1323–32.
  • Ardisson, L.P., et al., 2012. Influence of AIN-93 diet on mortality and cardiac remodeling after myocardial infarction in rats. International journal of cardiology, 156 (3), 265–269.
  • Bhathena, S.J., and Velasquez, M.T., 2002. Beneficial role of dietary phytoestrogens in obesity and diabetes. The American journal of clinical nutrition, 76 (6), 1191–1201.
  • Bourlier, V., and Bouloumie, A., 2009. Role of macrophage tissue infiltration in obesity and insulin resistance. Diabetes & metabolism, 35 (4), 251–260.
  • Browning, J.D., and Horton, J.D., 2004. Molecular mediators of hepatic steatosis and liver injury. The journal of clinical investigation, 114 (2), 147–152.
  • Caimari, A., et al., 2010. Peripheral blood mononuclear cells as a model to study the response of energy homeostasis-related genes to acute changes in feeding conditions. Omics : a journal of integrative biology, 14 (2), 129–141.
  • Dalboge, L.S., et al., 2015. A hamster model of diet-induced obesity for preclinical evaluation of anti-obesity, anti-diabetic and lipid modulating agents. PLoS One., 10 (8), e0135634.
  • Della Vedova, M.C., et al., 2016. A mouse model of diet-induced obesity resembling most features of human metabolic syndrome. Nutrition and metabolic insights., 9, S32907.
  • Dinicolantonio, J.J., and O'keefe, J.H., 2018. Effects of dietary fats on blood lipids: a review of direct comparison trials. Open heart, 5 (2), e000871.
  • Dinicolantonio, J.J., et al., 2016. The evidence for saturated fat and for sugar related to coronary heart disease. Progress in cardiovascular diseases, 58 (5), 464–472.
  • Eckel, R.H., et al., 2005. The metabolic syndrome. The lancet, 365 (9468), 1415–1428.
  • Erlanson-Albertsson, C., 2005. How palatable food disrupts appetite regulation. Basic & clinical pharmacology & toxicology, 97 (2), 61–73.
  • Farias Santos, J., et al., 2015. Dietary intake of ain-93 standard diet induces Fatty liver with altered hepatic fatty acid profile in Wistar rats. Nutricion hospitalaria, 31 (5), 2140–2146.
  • Farrell, G.C., and Larter, C.Z., 2006. Nonalcoholic fatty liver disease: from steatosis to cirrhosis. Hepatology (Baltimore, Md.).), 43 (2 Suppl 1), S99–S112.
  • Faust, I.M., et al., 1978. Diet-induced adipocyte number increase in adult rats: a new model of obesity. The American journal of physiology, 235 (3), E279–86.
  • Fernandes, M.R., et al., 2016. Animal models of obesity in rodents. An integrative review. Acta cirurgica brasileira, 31 (12), 840–844.
  • Fernández-Domínguez, I., et al., 2011. High-frequency ultrasound imaging for longitudinal evaluation of non-alcoholic fatty liver disease progression in mice. Ultrasound in medicine and biology, 37 (7), 1161–1169.
  • Ferreira, A.V., et al., 2011. High-carbohydrate diet selectively induces tumor necrosis factor-α production in mice liver. Inflammation, 34 (2), 139–145.
  • Ferreira, A.V., et al., 2014. Distinct metabolic pathways trigger adipocyte fat accumulation induced by high-carbohydrate and high-fat diets. Nutrition (Burbank, Los Angeles County, Calif.), 30 (10), 1138–1143.
  • Flanagan, A.M., et al., 2008. High-fat diets promote insulin resistance through cytokine gene expression in growing female rats. Journal of nutritional biochemistry, 19 (8), 505–513.
  • Gross, L.S., et al., 2004. Increased consumption of refined carbohydrates and the epidemic of type 2 diabetes in the United States: an ecologic assessment. The American journal of clinical nutrition, 79 (5), 774–779.
  • Hariri, N., and Thibault, L., 2010. High-fat diet-induced obesity in animal models. Nutrition research reviews, 23 (2), 270–299.
  • Heyne, A., et al., 2009. An animal model of compulsive food-taking behaviour. Addiction biology, 14 (4), 373–383.
  • Isken, F., et al., 2010. Effects of long-term soluble vs. insoluble dietary fiber intake on high-fat diet-induced obesity in C57BL/6J mice. The journal of nutritional biochemistry, 21 (4), 278–284.
  • Islam, M., and Loots, D.T., 2009. Experimental rodent models of Type 2 diabetes: a review. Methods and findings in experimental and clinical pharmacology, 31 (4), 249–261.
  • Jaki, T., and Wolfsegger, M.J., 2009. A theoretical framework for estimation of AUCs in complete and incomplete sampling designs. Statistics in biopharmaceutical research, 1 (2), 176–184.
  • Jameel, F., et al., 2014. Acute effects of feeding fructose, glucose and sucrose on blood lipid levels and systemic inflammation. Lipids in health and disease, 13 (1), 195.
  • Jin, J., et al., 2013. Increased expression of enzymes of triglyceride synthesis is essential for the development of hepatic steatosis. Cell reports, 3 (3), 831–843.
  • Kakimoto, P.A., and Kowaltowski, A.J., 2016. Effects of high fat diets on rodent liver bioenergetics and oxidative imbalance. Redox biology, 8, 216–225.
  • Koplay, M., et al., 2015. Importance of imaging and recent developments in diagnosis of nonalcoholic fatty liver disease. World journal of hepatology, 7 (5), 769–776.
  • Krauss, R.M., 2001. Atherogenic lipoprotein phenotype and diet-gene interactions. The Journal of Nutrition, 131 (2), 340s–343s.
  • Kuroda, H., 2012. Non-invasive determination of hepatic steatosis by acoustic structure quantification from ultrasound echo amplitude. World journal of gastroenterology, 18 (29), 3889–3895.
  • Livak, K.J., and Schmittgen, T.D., 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-delta delta C(T)) method. Methods, 25 (4), 402–408.
  • Lupsor-Platon, M., et al., 2014. Noninvasive assessment of liver steatosis using ultrasound methods. Medical ultrasonography, 16 (3), 236–245.
  • Maioli, T.U., et al., 2016. High sugar and butter (HSB) diet induces obesity and metabolic syndrome with decrease in regulatory T cells in adipose tissue of mice. Inflammation research, 65 (2), 169–178.
  • Matsusue, K., et al., 2004. Hepatic CCAAT/enhancer binding protein alpha mediates induction of lipogenesis and regulation of glucose homeostasis in leptin-deficient mice. Molecular endocrinology, 18 (11), 2751–2764.
  • Mendes-Junior, L.G., et al., 2018. The usefulness of short-term high-fat/high salt diet as a model of metabolic syndrome in mice. Life sciences, 209, 341–348.
  • Mendez-Sanchez, N., et al., 2007. Current concepts in the pathogenesis of nonalcoholic fatty liver disease. Liver international, 27 (4), 423–433.
  • Moghadasian, M.H., et al., 2001. Advances in experimental dyslipidemia and atherosclerosis. Laboratory investigation; a journal of technical methods and pathology, 81 (9), 1173–1183.
  • Ncd Risk Factor Collaboration, 2016. Trends in adult body-mass index in 200 countries from 1975 to 2014: a pooled analysis of 1698 population-based measurement studies with 19.2 million participants. Lancet, 387 (10026), 1377–1396.
  • Ng, M., et al., 2014. Global, regional, and national prevalence of overweight and obesity in children and adults during 1980-2013: a systematic analysis for the Global Burden of Disease Study 2013. Lancet, 384 (9945), 766–781.
  • Ogden, C.L., et al., 2007. The epidemiology of obesity. Gastroenterology, 132 (6), 2087–2102.
  • Oliveira, M.C., et al., 2013. Acute and sustained inflammation and metabolic dysfunction induced by high refined carbohydrate-containing diet in mice. Obesity, 21 (9), E396–406.
  • O'rahilly, S., and Farooqi, I.S., 2008. Human obesity: a heritable neurobehavioral disorder that is highly sensitive to environmental conditions. Diabetes, 57 (11), 2905–2910.
  • Panchal, S.K., and Brown, L., 2011. Rodent models for metabolic syndrome research. Journal of biomedicine & biotechnology, 2011, 351982.
  • Reaven, G.M., 1991. Insulin resistance, hyperinsulinemia, hypertriglyceridemia, and hypertension. Parallels between human disease and rodent models. Diabetes care, 14 (3), 195–202.
  • Reeves, P.G., et al., 1993. AIN-93 purified diets for laboratory rodents: final report of the American Institute of Nutrition ad hoc writing committee on the reformulation of the AIN-76A rodent diet. The journal of nutrition, 123 (11), 1939–1951.
  • Rice, M.C., and O'Brien, S.J., 1980. Genetic variance of laboratory outbred Swiss mice. Nature, 283 (5743), 157–161.
  • Russell, J.C., and Proctor, S.D., 2006. Small animal models of cardiovascular disease: tools for the study of the roles of metabolic syndrome, dyslipidemia, and atherosclerosis. Cardiovascular pathology., 15 (6), 318–330.
  • Sampey, B.P., et al., 2011. Cafeteria diet is a robust model of human metabolic syndrome with liver and adipose inflammation: comparison to high-fat diet. Obesity, 19 (6), 1109–1117.
  • Samuels, L.T., et al., 1948. The effect of previous diet on the ability of animals to do work during subsequent fasting. The journal of nutrition, 36 (5), 639–651.
  • Sanchez-Bayle, M., et al., 2008. A cross-sectional study of dietary habits and lipid profiles. The Rivas-Vaciamadrid study. European journal of pediatrics, 167 (2), 149–154.
  • Santos, S.H., et al., 2012. Increased circulating angiotensin-(1-7) protects white adipose tissue against development of a proinflammatory state stimulated by a high-fat diet. Regulatory peptides, 178 (1–3), 64–70.
  • Sanyal, A.J., et al., 2001. Nonalcoholic steatohepatitis: association of insulin resistance and mitochondrial abnormalities. Gastroenterology, 120 (5), 1183–1192.
  • Saper, C.B., et al., 2002. The need to feed: homeostatic and hedonic control of eating. Neuron, 36 (2), 199–211.
  • Speakman, J., et al., 2007. Animal models of obesity. Obesity reviews : an official journal of the international association for the study of obesity, 8 (Suppl 1), 55–61.
  • Speakman, J.R., 2019. Use of high-fat diets to study rodent obesity as a model of human obesity. International journal of obesity, 43 (8), 1491–1492.
  • Stanhope, K.L., et al., 2009. Consuming fructose-sweetened, not glucose-sweetened, beverages increases visceral adiposity and lipids and decreases insulin sensitivity in overweight/obese humans. The journal of clinical investigation, 119 (5), 1322–1334.
  • Sun, K., et al., 2011. Adipose tissue remodeling and obesity. The journal of clinical investigation, 121 (6), 2094–2101.
  • Veeramani, C., et al., 2017. Lavatera critica, a green leafy vegetable, controls high fat diet induced hepatic lipid accumulation and oxidative stress through the regulation of lipogenesis and lipolysis genes. Biomedicine & pharmacotherapy = biomedecine & pharmacotherapie, 96, 1349–1357.
  • Wakil, S.J., and Abu-Elheiga, L.A., 2009. Fatty acid metabolism: target for metabolic syndrome. Journal of lipid research, 50 (Suppl), S138–S43.
  • West, D.B., et al., 1992. Dietary obesity in nine inbred mouse strains. The American journal of physiology, 262 (6 Pt 2), R1025–32.
  • Wong, S.K., et al., 2016. Animal models of metabolic syndrome: a review. Nutrition & metabolism, 13, 65–65.
  • Xu, H., et al., 2003. Chronic inflammation in fat plays a crucial role in the development of obesity-related insulin resistance. Journal of clinical investigation, 112 (12), 1821–1830.
  • Yang, Z.H., et al., 2012. Diet high in fat and sucrose induces rapid onset of obesity-related metabolic syndrome partly through rapid response of genes involved in lipogenesis, insulin signalling and inflammation in mice. Diabetology & metabolic syndrome, 4 (1), 32.
  • Yin, Y.N., et al., 2010. Effects of four Bifidobacteria on obesity in high-fat diet induced rats. World Journal of gastroenterology, 16 (27), 3394–3401.
  • Zeeni, N., et al., 2015. Cafeteria diet-fed mice is a pertinent model of obesity-induced organ damage: a potential role of inflammation. Inflammation research : official journal of the european histamine research society, 64 (7), 501–512.
  • Zhuhua, Z., et al., 2015. A novel mice model of metabolic syndrome: the high-fat-high-fructose diet-fed ICR mice. Experimental animals, 64 (4), 435–442.

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