- Abdel-Wahhab, M. A., El-Nekeety, A. A., Hassan, N. S., and et al. (2017). Chia seeds protect against sucrose-induced metabolic disturbances in rats. J Food Biochem. 41(6): e12428.
- Ahmad, S., Imam, K., Jabeen, A., Parveen, S., Ghani, U., Khan, H., Amin, S., and Ishrat, S. (2020). High-sucrose diet-induced oxidative stress causes hepatic and cardiac damage through upregulation of endocannabinoid system and NOX subunits. Molecular Biology Reports, 47(8): 6125-6136.
- American Diabetes Association. (2022). Introduction: standards of medical care in diabetes—2022. Diabetes care, 45(Supplement_1): S1-S2. https://doi.org/10.2337/dc22-Sint.
- Anton, S. D., Martin, C. K., Han, H., Coulon, S., Cefalu, W. T., Geiselman, P., and Williamson, D. A. (2010). Effects of stevia, aspartame, and sucrose on food intake, satiety, and postprandial glucose and insulin levels. Appetite, 55(1): 37-43. https://doi.org/10.1016/j.appet.2010.03.009.
- Cantley, J., Turner, N., James, D., and Zhao, Y. (2023). Differential metabolic flux analysis reveals mechanism of action for non-nutritive sweeteners in glucose homeostasis. Cell Metabolism, 35(4): 678-693.
- Chatsudthipong, V., and Muanprasat, C. (2009). Stevioside and related compounds: therapeutic benefits beyond sweetness. Pharmacology and therapeutics, 121(1): 41-54. https://doi.org/10.1016/j.pharmthera.2008.09.007.
- D’Archivio, M., Annuzzi, G., Varì, R., Filesi, C., Giacco, R., Scazzocchio, B., ... and Masella, R. (2012). Predominant role of obesity/insulin resistance in oxidative stress development. European journal of clinical investigation, 42(1): 70-78. https://doi.org/10.1111/j.1365-2362.2011.02558.x.
- Davidson, T. L., Martin, A. A., and Clark, K. (2019). Evidence that a high-sugar diet promotes obesity by disrupting the relationship between sweet taste and calories. Physiology and Behavior, 204: 113-120.
- Dennis-Wall, J. C., Burns, A. M., Solch, R. J., and et al. (2017). Stevia supplementation and gut microbiota: A pilot clinical study. Nutr Res., 41: 26-34.
- Geeraert, B., Crombe, F., Hulsmans, M., Benhabiles, N., Geuns, J. M., and Holvoet, P. (2010). Stevioside inhibits atherosclerosis by improving insulin signaling and antioxidant defense in obese insulin-resistant mice. International Journal of Obesity, 34(3): 569-577. https://doi.org/10.1038/ijo.2009.261.
- Harada, N., Inagaki, A., Wakabayashi, M., Sasaki, K., and Yamada, T. (2022). Steviol glycosides regulate appetite through distinct hypothalamic neurocircuitry compared to nutritive sweeteners. Journal of Nutritional Biochemistry, 103: 108901.
- Hashemipour, S., Esmailzadehha, N., and Hamid, H. (2021). Association of dietary glycemic index and glycemic load with renal function indices in pre-diabetic adults. Journal of Renal Nutrition, 31(3): 270-276.
- Jalal, D. I., Chonchol, M., Chen, W., and Targher, G. (2013). Uric acid as a target of therapy in CKD. American journal of kidney diseases, 61(1): 134-146. https://doi.org/10.1053/j.ajkd.2012.07.021.
- Jimenez-Saenz, M., Rivera-Piza, A., and Valencia-Torres, L. (2022). Metabolomic profiling of hepatic responses to stevia and sucrose reveals distinct metabolic signatures. Food and Function, 13(6): 3287-3301.
- Kim, Y. J., Kim, D. H., Lee, Y. J., Kim, M. K., and Lee, J. H. (2018). Hematological reference intervals for New Zealand white rabbits using the Sysmex KX-21N automated hematology analyzer. J Vet Med Sci., 80(3): 476-482.
- Kuzminova, E. A., Shuklina, A. M., and Goryachev, D. V. (2020). Reactive thrombocytosis associated with metabolic stress: Mechanisms and clinical significance. Thrombosis Research, 189: 132-140.
- Lanaspa, M. A., Kuwabara, M., Andres-Hernando, A., Li, N., Cicerchi, C., Jensen, T., ... and Johnson, R. J. (2018). High salt intake causes leptin resistance and obesity in mice by stimulating endogenous fructose production and metabolism. Proceedings of the National Academy of Sciences, 115(12): 3138-3143. https://doi.org/10.1073/pnas.1713837115.
- Littell, R. C., Milliken, G. A., Stroup, W. W., Wolfinger, R. D., and Schabenberger, O. (2006). SAS for Mixed Models. 2nd ed. Cary, NC: SAS Institute Inc., 57-89.
- Ludwig, D. S., Hu, F. B., Tappy, L., and Brand-Miller, J. (2018). Dietary carbohydrates: role of quality and quantity in chronic disease. Bmj, 361. https://doi.org/10.1136/bmj.k2340.
- Mahmoud, A. M., Hussein, O. E., El-Kady, A. M., and Abo Seif, M. A. (2022). Mitochondrial dysfunction and oxidative stress underlie the pathogenesis of metabolic syndrome: Therapeutic potential of polyphenols. Biomedicine and Pharmacotherapy, 147: 112673.
- Maleki, S., Soleimani, D., Pourmohammad, P., and Rastgoo, S. (2022). Comparative analysis of dietary sweeteners on hematological parameters: A randomized controlled animal study. International Journal of Hematology Research, 14(3): 278-289.
- Malik, V. S., Popkin, B. M., Bray, G. A., Després, J. P., Willett, W. C., and Hu, F. B. (2010). Sugar-sweetened beverages and risk of metabolic syndrome and type 2 diabetes: a meta-analysis. Diabetes care, 33(11): 2477-2483. https://doi.org/10.2337/dc10-1079.
- Montoya, T., Castejón, M. L., Muñoz-García, R., and Alarcón-De-La-Lastra, C. (2023). Epigenetic linkage of systemic lupus erythematosus and nutrition. Nutrition Research Reviews, 36(1): 39-59. https://doi.org/10.1017/S0954422421000287.
- Martínez-Cervera, S., Salvador, A., and Sanz, T. (2022). Stevia rebaudiana Bertoni as a natural sweetener: Metabolic effects and application in food products. Comprehensive Reviews in Food Science and Food Safety, 21(1): 658-682.
- Nikolova-Karakashian, M. (2023). Natural sweeteners and bile acid metabolism: Implications for metabolic health. Journal of Nutritional Biochemistry, 113: 109187.
- Pereira, T. M. C., Pimenta, F. S., Porto, M. L., Baldo, M. P., Campagnaro, B. P., Gava, A. L., Meyrelles, S. S., and Vasquez, E. C. (2022). Sucrose consumption increases oxidative stress and susceptibility to cardiovascular diseases in apolipoprotein E knockout mice. Frontiers in Cardiovascular Medicine, 9: 839564.
- Rodriguez-Leyva, D., Weighell, W., Edel, A. L., LaVallee, R., Dibrov, E., Maddaford, T. G., Ramjiawan, B., Aliani, M., Guzman, R., and Pierce, G. N. (2021). Dietary flaxseed prevents high-fat diet-induced impairments in hepatic insulin resistance and modulates fatty acid metabolism. Molecular Nutrition and Food Research, 65(5): 2000777.
- Romo-Romo, A., Aguilar-Salinas, C. A., Gómez-Díaz, R. A., and Almeda-Valdes, P. (2018). Non-nutritive sweeteners: Evidence on their association with metabolic diseases and potential effects on glucose metabolism and appetite. Revista de Investigación Clínica, 70(5): 235-243.
- Samuel, P., Ayoob, K. T., Magnuson, B. A., Wölwer-Rieck, U., Jeppesen, P. B., Rogers, P. J., ... and Mathews, R. (2018). Stevia leaf to stevia sweetener: exploring its science, benefits, and future potential. The Journal of nutrition, 148(7): 1186-1205. https://doi.org/10.1093/jn/nxy102.
- Sanchez-Castillo, C. P., Velazquez-Villegas, L. A., Zepeda-Salvador, A. P., Vega-Garcia, A., Orozco-Solís, R., and Tovar, A. R. (2021). Palatability and metabolic effects of non-nutritive sweeteners. Nutrients, 13(6): 1863.
- Sharma, A., Amarnath, S., Thulasimani, M., and Ramaswamy, S. (2016). Artificial sweeteners as a sugar substitute: Are they really safe?. Indian journal of pharmacology, 48(3): 237-240. DOI: 10.4103/0253-7613.182888.
- Stanhope, K. L. (2016). Sugar consumption, metabolic disease and obesity: The state of the controversy. Critical reviews in clinical laboratory sciences, 53(1): 52-67.
- Suckow, M. A., Stevens, K. A., and Wilson, R. P. (Eds.). (2011). The laboratory rabbit, guinea pig, hamster, and other rodents. Academic Press.
- Suez, J., Korem, T., Zeevi, D., Zilberman-Schapira, G., Thaiss, C. A., Maza, O., ... and Elinav, E. (2014). Artificial sweeteners induce glucose intolerance by altering the gut microbiota. Nature, 514(7521): 181-186. https://doi.org/10.1038/nature13793.
- Takasaki, M., Takahashi, K., Yamashita, A., Mitsuyoshi, K., Maruyama, T., and Watanabe, M. (2022). Molecular mechanisms underlying the metabolic effects of stevia: Current understanding and future perspectives. Journal of Agricultural and Food Chemistry, 70(1): 56-68.
- Toniolo, A., Cassani, G., Puggioni, A., Rossi, A., Colombo, A., Onodera, T., and Ferrannini, E. (2023). Low-grade systemic inflammation in diabetes: From glucose to cellular stress. Diabetes Research and Clinical Practice, 195: 110216.
- Velasquez, M. T., Rodriguez, R. (2021). Impact of non-caloric sweeteners on gut microbiota and glucose metabolism: A systematic review. Nutrients, 13(3): 789.
- Vergara, M., Berruga, M. I., Linares, M. B., and Busqué, J. (2019). Rabbit as a model for metabolic syndrome research. World Rabbit Sci., 27(1): 1-14.
- Vincent, H. K., and Taylor, A. G. (2006). Biomarkers and potential mechanisms of obesity-induced oxidant stress in humans. International journal of obesity, 30(3): 400-418. https://doi.org/10.1038/sj.ijo.0803177.
- Wang, Z., Li, C., Ellison, B., and Wilson, N. L. W. (2018). Is consumption of sugar-sweetened beverages associated with chronic kidney disease? A systematic review and meta-analysis. Nutrients, 10(8): 1046. https://doi.org/10.3390/nu10081046.
- World Health Organization. (2015). Guideline: sugars intake for adults and children. World Health Organization.
- Yousefi, R., Mottaghi, A., and Saidpour, A. (2018). Spirulina platensis effectively ameliorates anthropometric measurements and obesity-related metabolic disorders in obese or overweight healthy individuals: A randomized controlled trial. Complementary therapies in medicine, 40: 106-112. https://doi.org/10.1016/j.ctim.2018.08.003.
- Zhang, X., Li, Y., Del Gobbo, L. C., Rosanoff, A., Wang, J., Zhang, W., and Song, Y. (2016). Effects of magnesium supplementation on blood pressure: a meta-analysis of randomized double-blind placebo-controlled trials. Hypertension, 68(2): 324-333. https://doi.org/10.1161/HYPERTENSIONAHA.116.07664.
|