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Archives of Physiology and Biochemistry
The Journal of Metabolic Diseases
Volume 130, 2024 - Issue 2
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Original Articles

Cholecalciferol ameliorates insulin signalling and insulin regulation of enzymes involved in glucose metabolism in the rat heart

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Pages 196-204 | Received 14 Jul 2021, Accepted 27 Oct 2021, Published online: 11 Nov 2021

References

  • Abel, E.D., 2021. Insulin signaling in the heart. American journal of physiology-endocrionlogy metabolism 321 (1), E130–E145.
  • Al-Shoumer, K.A., and Al-Essa, T.M., 2015. Is there a relationship between vitamin D with insulin resistance and diabetes mellitus? World journal of diabetes, 6 (8), 1057–1064.
  • Antinozzi, C., et al., 2017. Potential role for the VDR agonist elocalcitol in metabolic control: evidences in human skeletal muscle cells. The journal of steroid biochemistry and molecular biology, 167, 169–181.
  • Bettoun, D.J., et al., 2002. A vitamin D receptor-Ser/Thr phosphatase-p70 S6 kinase complex and modulation of its enzymatic activities by the ligand. The journal of biological chemistry, 277 (28), 24847–24850.
  • Bouskila, M., et al., 2010. Allosteric regulation of glycogen synthase controls glycogen synthesis in muscle. Cell metabolism, 12 (5), 456–466.
  • Bundalo, M., et al., 2015. Oestradiol treatment counteracts the effect of fructose-rich diet on matrix metalloproteinase 9 expression and NFκB activation. Folia biologica, 61 (6), 233–240.
  • Calle, C., Maestro, B., and García-Arencibia, M., 2008. Genomic actions of 1,25-dihydroxyvitamin D3 on insulin receptor gene expression, insulin receptor number and insulin activity in the kidney, liver and adipose tissue of streptozotocin-induced diabetic rats. BMC molecular biology, 9, 65.
  • Camici, M., et al., 2013. Vitamin D and heart. Internal and emergency medicine, 8(S1), 5–9.
  • Chanakul, A., et al., 2013. FGF-23 regulates CYP27B1 transcription in the kidney and in extra-renal tissues. PLOS one, 8(9), e72816.
  • Chanda, D., Luiken, J.J.F.P., and Glatz, J.F.C., 2016. Signaling pathways involved in cardiac energy metabolism. FEBS letters, 590 (15), 2364–2374.
  • Chen, S., Gardner, D.G., and Glenn, D.J., 2013. Vitamin D and the heart. American journal of physiology regulatory integrative and comparative physiology, 305(9), R969–77.
  • Chen, S., Villalta, S.A., and Agrawal, D.K., 2016. FOXO1 mediates vitamin D deficiency-induced insulin resistance in skeletal muscle. Journal of bone and mineral research, 31 (3), 585–595.
  • Deprez, J., et al., 1997. Phosphorylation and activation of heart 6-phosphofructo-2-kinase by protein kinase B and other protein kinases of the insulin signaling cascades. The journal of biological chemistry, 272 (28), 17269–17275.
  • Duncombe, W.G., 1964. The colorimetric micro-determination of non-esterified fatty acids in plasma. Clinica chimica acta, 9, 122–125.
  • Elseweidy, M.M., et al., 2017. Vitamin D3 intake as regulator of insulin degrading enzyme and insulin receptor phosphorylation in diabetic rats. biomedecine and pharmacotherapie [Biomedicine and pharmacotherapy], 85, 155–159.
  • Evans, R.W., Farwell, A.P., and Braverman, L.E., 1983. Nuclear thyroid hormone receptor in the rat uterus. Endocrinology, 113 (4), 1459–1463.
  • Gao, L., et al., 2016. Calcitriol attenuates cardiac remodeling and dysfunction in a murine model of polycystic ovary syndrome. Endocrine, 52 (2), 363–373.
  • Gomes Castro, A.J., et al., 2014. Betulinic acid and 1,25(OH)2 vitamin D3 share intracellular signal transduction in glucose homeostasis in soleus muscle. The international journal of biochemistry and cell biology, 48, 18–27.
  • Gupta, A., and Houston, B., 2017. A comprehensive review of the bioenergetics of fatty acid and glucose metabolism in the healthy and failing heart in nondiabetic condition. Heart failure reviews, 22 (6), 825–842.
  • Haap, M., et al., 2006. Association of serum phosphate levels with glucose tolerance, insulin sensitivity and insulin secretion in non-diabetic subjects. European journal of clinical nutrition, 60 (6), 734–739.
  • Harrington, L.S., et al., 2004. The TSC1-2 tumor suppressor controls insulin-PI3K signaling via regulation of IRS proteins. The journal of cell biology, 166 (2), 213–223.
  • Haussler, M.R., et al., 2013. Molecular mechanisms of vitamin D action. Calcified tissue international, 92(2), 77–98.
  • Khattab, M., et al., 2015. Phosphorus ingestion improves oral glucose tolerance of healthy male subjects: a crossover experiment. Nutrition journal, 14, 112.
  • Kolwicz, S.C., Purohit, S., and Tian, R., 2013. Cardiac metabolism and its interactions with contraction, growth, and survival of cardiomyocytes. Circulation research, 113 (5), 603–616.
  • Koricanac, G., et al., 2011. Interference between insulin and estradiol signaling pathways in the regulation of cardiac eNOS and Na(+)/K(+)-ATPase. European journal of pharmacology, 655 (1–3), 23–30.
  • Li, T., et al., 2017. Glucose oxidation positively regulates glucose uptake and improves cardiac function recovery after myocardial reperfusion. American journal of physiology. endocrinology and metabolism, 313 (5), E577–E585.
  • Luiken, J.J.F.P., et al., 2002. Insulin stimulates long-chain fatty acid utilization by rat cardiac myocytes through cellular redistribution of FAT/CD36. Diabetes, 51 (10), 3113–3119.
  • Maestro, B., et al., 2000. Stimulation by 1,25-dihydroxyvitamin D3 of insulin receptor expression and insulin responsiveness for glucose transport in U-937 human promonocytic cells. Endocrine journal, 47 (4), 383–391.
  • Maestro, B., et al., 2003. Identification of a Vitamin D response element in the human insulin receptor gene promoter, in. The journal of steroid biochemistry and molecular biology, 84 (2-3), 223–230.
  • Manna, P., and Jain, S.K., 2012. Vitamin D up-regulates glucose transporter 4 (GLUT4) translocation and glucose utilization mediated by cystathionine-γ-lyase (CSE) activation and H2S formation in 3T3L1 adipocytes. The journal of biological chemistry, 287 (50), 42324–42332.
  • Marquina, C., et al., 2019. Vitamin D and cardiometabolic disorders: a review of current evidence, genetic determinants and pathomechanisms. Obesity reviews, 20(2), 262–277.
  • Nizami, H.L., et al., 2019. Vitamin D deficiency in rats causes cardiac dysfunction by inducing myocardial insulin resistance. Molecular nutrition and food research, 63 (17), 1900109.
  • Parker, L., et al., 2016. Plasma 25-hydroxyvitamin D is related to protein signaling involved in glucose homeostasis in a tissue-specific manner. Nutrients, 8 (10), 631.
  • Patel, P., and Woodgett, J.R., 2017. Glycogen synthase kinase 3: a kinase for all pathways? In: current topics in developmental biology, 123, 277–302.
  • Puthanveetil, P., Wan, A., and Rodrigues, B., 2013. FoxO1 is crucial for sustaining cardiomyocyte metabolism and cell survival. Cardiovascular research, 97 (3), 393–403.
  • Qu, H., et al., 2017. 1,25(OH)2D3 improves cardiac dysfunction, hypertrophy, and fibrosis through PARP1/SIRT1/mTOR-related mechanisms in type 1 diabetes. Molecular nutrition and food research, 61 (5), 1600338.
  • Riehle, C., and Abel, E.D., 2016. Insulin signaling and heart failure. Circulation research, 118 (7), 1151–1169.
  • Romić, S., et al., 2014. Gender differences in the expression and cellular localization of lipin 1 in the hearts of fructose-fed rats. Lipids, 49 (7), 655–663.
  • Rui, Y., et al., 2017. Effects of vitamin D and resveratrol on metabolic associated markers in liver and adipose tissue from SAMP8 mice. Experimental gerontology, 93, 16–28.
  • Salum, E., et al., 2012. Effect of vitamin D on aortic remodeling in streptozotocin-induced diabetes. Cardiovascular diabetology, 11, 58.
  • Sears, B., and Perry, M., 2015. The role of fatty acids in insulin resistance. Lipids in health and disease, 14, 121.
  • Shi, H., et al., 2001. 1alpha,25-Dihydroxyvitamin D3 modulates human adipocyte metabolism via nongenomic action. The FASEB journal, 15 (14), 1–2753.
  • Szablewski, L., 2017. Glucose transporters in healthy heart and in cardiac disease. International journal of cardiology, 230, 70–75.
  • Teegarden, D., and Donkin, S.S., 2009. Vitamin D: emerging new roles in insulin sensitivity. Nutrition research reviews, 22 (1), 82–92.
  • Tepavcevic, S., et al., 2011. Interaction between insulin and estradiol in regulation of cardiac glucose and free fatty acid transporters. hormon- und stoffwechselforschung, hormones et metabolisme [Hormone and metabolic research], 43 (8), 524–530.
  • Wang, Y., and DeLuca, H.F., 2011. Is the vitamin D receptor found in muscle? Endocrinology, 152 (2), 354–363.
  • Wong, K.E., et al., 2011. Targeted expression of human vitamin D receptor in adipocytes decreases energy expenditure and induces obesity in mice. The journal of biological chemistry, 286 (39), 33804–33810.
  • Yoon, M.S., 2017. The role of mammalian target of rapamycin (mTOR) in insulin signaling. Nutrients, 9 (11), 1176.

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