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Published in: BMC Complementary Medicine and Therapies 1/2016

Open Access 01-12-2016 | Research article

The influence of goutweed (Aegopodium podagraria L.) tincture and metformin on the carbohydrate and lipid metabolism in dexamethasone-treated rats

Author: O. V. Tovchiga

Published in: BMC Complementary Medicine and Therapies | Issue 1/2016

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Abstract

Background

Diabetes mellitus and metabolic syndrome are the common problems of the modern society. The interest in herbal medicines increases, and often they are used in combination with conventional drugs. Aegopodium podagraria L. (goutweed) is a plant widely used in traditional medicine. Hypoglycemic effect of goutweed aerial part tincture has been previously shown in alloxan-induced diabetic mice and in rats receiving excess of fructose and hydrochlorothiazide. The effects of co-administration of the tincture with widely used antihyperglycemic drugs have not been verified. The objective of this study is to determine the efficacy of goutweed tincture and its combination with metformin using the model reproducing the pathogenetic mechanisms of the metabolic syndrome and type 2 diabetes.

Methods

The animals were divided into 5 groups, as follows: intact control, dexamethasone (untreated), dexamethasone + metformin, 50 mg/kg; dexamethasone + A. podagraria tincture, 1 ml/kg intragastrically; dexamethasone + metformin, 50 mg/kg intragastrically + A. podagraria tincture, 1 ml/kg intragastrically. Dexamethasone was used at a dose of 5 mg/kg subcutaneously for 5 days. Insulin tolerance test and oral glucose tolerance test were performed, triglycerides, total lipids, total and HDL cholesterol content in plasma were determined, LDL cholesterol content was calculated, glycogen content in the liver was measured.

Results

Goutweed tincture combined with metformin increased its effect on the basal glycemia and on the results of the short insulin test. In the oral glucose tolerance test the lowest area under glucose curve and average glycemia value were seen in animals receiving this combination. Only metformin tended toward the reduction of liver glycogen. The decrease in triglycerides and increment of HDL cholesterol content (caused by the tincture), as well as tendency towards the decrease in total lipids level (caused by metformin) were observed against a background of the investigated combination, though the ability of GW tincture to reduce LDL cholesterol content and the same tendency seen against a background of metformin were eliminated when these preparations were administered together.

Conclusion

It has been shown that goutweed tincture combined with the respectively low dose of metformin partially increases the efficacy of the latter in dexamethasone-treated rats.

Graphical abstract

Goutweed tincture combined with the respectively low dose of metformin partially increases the efficacy of the latter in dexamethasone-treated rats
Literature
1.
go back to reference Wild S, Roglic G, Green A, Sicree R, King H. Global prevalence of diabetes. Estimates for the year 2000 and projections for 2030. Diabetes Care. 2004;27:1047–53.CrossRefPubMed Wild S, Roglic G, Green A, Sicree R, King H. Global prevalence of diabetes. Estimates for the year 2000 and projections for 2030. Diabetes Care. 2004;27:1047–53.CrossRefPubMed
3.
go back to reference Liu MZ, Zhang YL, Zeng MZ, He FZ, Luo ZY, Luo JQ, et al. Pharmacogenomics and herb-drug interactions: merge of future and tradition. Evid Based Complement Alternat Med. 2015;2015:321091.PubMedPubMedCentral Liu MZ, Zhang YL, Zeng MZ, He FZ, Luo ZY, Luo JQ, et al. Pharmacogenomics and herb-drug interactions: merge of future and tradition. Evid Based Complement Alternat Med. 2015;2015:321091.PubMedPubMedCentral
4.
go back to reference Rehman SU, Choi MS, Choe K, Yoo HH. Interactions between herbs and antidiabetics: an overview of the mechanisms, evidence, importance, and management. Arch Pharm Res. 2015;38:1281–98.CrossRefPubMed Rehman SU, Choi MS, Choe K, Yoo HH. Interactions between herbs and antidiabetics: an overview of the mechanisms, evidence, importance, and management. Arch Pharm Res. 2015;38:1281–98.CrossRefPubMed
5.
go back to reference Meng S, Cao J, Feng Q, Peng J, Hu Y. Roles of chlorogenic acid on regulating glucose and lipids metabolism: a review. Evid-Based Compl Alt Med. 2013;2013:801457. Meng S, Cao J, Feng Q, Peng J, Hu Y. Roles of chlorogenic acid on regulating glucose and lipids metabolism: a review. Evid-Based Compl Alt Med. 2013;2013:801457.
6.
go back to reference Vinayagam R, Xu B. Antidiabetic properties of dietary flavonoids: a cellular mechanism review. Nutr Metab. 2015;12:60.CrossRef Vinayagam R, Xu B. Antidiabetic properties of dietary flavonoids: a cellular mechanism review. Nutr Metab. 2015;12:60.CrossRef
7.
go back to reference Fakeye TO, Oladipupo T, Showande O, Ogunremi Y. Effects of coadministration of extract of Carica papaya Linn (family Cariaceae) on activity of two oral hypoglycemic agents. Trop J Pharm Res. 2007;6:671–8.CrossRef Fakeye TO, Oladipupo T, Showande O, Ogunremi Y. Effects of coadministration of extract of Carica papaya Linn (family Cariaceae) on activity of two oral hypoglycemic agents. Trop J Pharm Res. 2007;6:671–8.CrossRef
8.
go back to reference Poonam T, Prakash GP, Kumar LV. Interaction of Momordica charantia with metformin in diabetic rats. Am J Pharmacol Toxicol. 2013;8:102–6.CrossRef Poonam T, Prakash GP, Kumar LV. Interaction of Momordica charantia with metformin in diabetic rats. Am J Pharmacol Toxicol. 2013;8:102–6.CrossRef
9.
go back to reference Prabhakar PK, Doble M. Synergistic effect of phytochemicals in combination with hypoglycemic drugs on glucose uptake in myotubes. Phytomedicine. 2009;16:1119–26.CrossRefPubMed Prabhakar PK, Doble M. Synergistic effect of phytochemicals in combination with hypoglycemic drugs on glucose uptake in myotubes. Phytomedicine. 2009;16:1119–26.CrossRefPubMed
11.
go back to reference Koyro O. O. Role of goutweed (Aegopodium podagraria L.) biologically active substances in nephroprotective, hepatoprotective and hypouricemic activity. PhD thesis. Kharkiv: NUPh; 2013. http://www.google.com.ua/url?sa=t&rct=j&q=&esrc=s&frm=1&source=web&cd=1&cad=rja&uact=8&ved=0ahUKEwij65bFwLHLAhVpGZoKHS5EBbcQFggaMAA&url=http%3A%2F%2Fdspace.nuph.edu.ua%2Fbitstream%2F123456789%2F4008%2F1%2F%25D0%259A%25D0%25BE%25D0%25B9%25D1%2580%25D0%25BE.doc&usg = AFQjCNHpH0Az-oI3SmY8NHoWk34iCkFALQ Accessed 16 June 2016. Koyro O. O. Role of goutweed (Aegopodium podagraria L.) biologically active substances in nephroprotective, hepatoprotective and hypouricemic activity. PhD thesis. Kharkiv: NUPh; 2013. http://​www.​google.​com.​ua/​url?​sa=​t&​rct=​j&​q=​&​esrc=​s&​frm=​1&​source=​web&​cd=​1&​cad=​rja&​uact=​8&​ved=​0ahUKEwij65bFwLH​LAhVpGZoKHS5EBbc​QFggaMAA&​url=​http%3A%2F%2Fdspace.nuph.edu.ua%2Fbitstream%2F123456789%2F4008%2F1%2F%25D0%259A%25D0%25BE%25D0%25B9%25D1%2580%25D0%25BE.doc&usg = AFQjCNHpH0Az-oI3SmY8NHoWk34iCkFALQ Accessed 16 June 2016.
12.
go back to reference Orav A, Viitak A, Vaher M. Identification of bioactive compounds in the leaves and stems of Aegopodium podagraria by various analytical techniques. Proc Chem. 2010;2(1):152–60.CrossRef Orav A, Viitak A, Vaher M. Identification of bioactive compounds in the leaves and stems of Aegopodium podagraria by various analytical techniques. Proc Chem. 2010;2(1):152–60.CrossRef
13.
go back to reference Tovchiga OV. The influence of goutweed (Aegopodium podagraria L.) preparations on the metabolic processes in alloxan-induced diabetic mice. Pharmacol Med Toxicol. 2012;5:73–8. Tovchiga OV. The influence of goutweed (Aegopodium podagraria L.) preparations on the metabolic processes in alloxan-induced diabetic mice. Pharmacol Med Toxicol. 2012;5:73–8.
14.
go back to reference Tovchiga O. Effects of Aegopodium podagraria preparations on the metabolic disorders induced in rats by excess fructose combined with hydrochlorothiazide: the relationship between influence on electrolyte and carbohydrate metabolism. Int J Biochem Res Rev. 2014;4:80–98.CrossRef Tovchiga O. Effects of Aegopodium podagraria preparations on the metabolic disorders induced in rats by excess fructose combined with hydrochlorothiazide: the relationship between influence on electrolyte and carbohydrate metabolism. Int J Biochem Res Rev. 2014;4:80–98.CrossRef
15.
go back to reference Tovchiga OV, Shtrygol’ SYu, Stepanova SI, inventors; National University of Pharmacy, assignee. Use of 20 % tincture of bishop's-weed with 70 % ethyl alcohol as means of hypoglycemic action. Ukraine patent 104448 10.02.2014. http://base.uipv.org/searchINV/search.php?action=viewdetails&IdClaim=196580&chapter=biblio Accessed 16 June 2016. Tovchiga OV, Shtrygol’ SYu, Stepanova SI, inventors; National University of Pharmacy, assignee. Use of 20 % tincture of bishop's-weed with 70 % ethyl alcohol as means of hypoglycemic action. Ukraine patent 104448 10.02.2014. http://​base.​uipv.​org/​searchINV/​search.​php?​action=​viewdetails&​IdClaim=​196580&​chapter=​biblio Accessed 16 June 2016.
16.
go back to reference Johnson RJ, Nakagawa T, Sanchez-Lozada LG, Shafiu M, Sundaram S, Le M, et al. Sugar, uric acid, and the etiology of diabetes and obesity. Diabetes. 2013;62:3307–15.CrossRefPubMedPubMedCentral Johnson RJ, Nakagawa T, Sanchez-Lozada LG, Shafiu M, Sundaram S, Le M, et al. Sugar, uric acid, and the etiology of diabetes and obesity. Diabetes. 2013;62:3307–15.CrossRefPubMedPubMedCentral
17.
go back to reference Rafacho A, Ortsäter H, Nadal A, Quesada I. Glucocorticoid treatment and endocrine pancreas function: implications for glucose homeostasis, insulin resistance and diabetes. J Endocrinol. 2014;223:R49–62.CrossRefPubMed Rafacho A, Ortsäter H, Nadal A, Quesada I. Glucocorticoid treatment and endocrine pancreas function: implications for glucose homeostasis, insulin resistance and diabetes. J Endocrinol. 2014;223:R49–62.CrossRefPubMed
18.
go back to reference Stefanov OV. Preclinical studies of drugs. Avicenna: Kyiv; 2001. Stefanov OV. Preclinical studies of drugs. Avicenna: Kyiv; 2001.
19.
go back to reference Koshevaya E.Y. Experimental basis of clinical application natural antidiabetic phytocomposition “Phytoglunor” PhD thesis. Kharkiv: NUPh; 2011 http://dspace.nuph.edu.ua/bitstream/123456789/570/1/%d0%90%d0%b2%d1%82%d0%be%d1%80%d0%b5%d1%84-2011%20%d0%9a%d0%be%d1%88%d0%be%d0%b2%d0%b0.doc Accessed 16 June 2016. Koshevaya E.Y. Experimental basis of clinical application natural antidiabetic phytocomposition “Phytoglunor” PhD thesis. Kharkiv: NUPh; 2011 http://​dspace.​nuph.​edu.​ua/​bitstream/​123456789/​570/​1/​%d0%90%d0%b2%d1%82%d0%be%d1%80%d0%b5%d1%84-2011%20%d0%9a%d0%be%d1%88%d0%be%d0%b2%d0%b0.doc Accessed 16 June 2016.
20.
go back to reference Babu KS, Nayak N, Hebbal GV. Preventive effect of alcoholic extract of Eugenia jambolana seed on dexamethasone induced hepatic steatosis in rats. IJHSR. 2015;5:151–5. Babu KS, Nayak N, Hebbal GV. Preventive effect of alcoholic extract of Eugenia jambolana seed on dexamethasone induced hepatic steatosis in rats. IJHSR. 2015;5:151–5.
21.
go back to reference Singh S, Bigoniya P, Shrivastava B. Comparative hypoglycemic activity of glycyrrhizic acid and gymnemic acid on non-insulin dependent rodent diabetic model. Int J Pharm Bio Sci. 2015;6:365–9. Singh S, Bigoniya P, Shrivastava B. Comparative hypoglycemic activity of glycyrrhizic acid and gymnemic acid on non-insulin dependent rodent diabetic model. Int J Pharm Bio Sci. 2015;6:365–9.
22.
go back to reference Barham D, Trinder P. An improved colour reagent for the determination of blood glucose by the oxidase system. Analyst. 1972;97:142–5.CrossRefPubMed Barham D, Trinder P. An improved colour reagent for the determination of blood glucose by the oxidase system. Analyst. 1972;97:142–5.CrossRefPubMed
23.
go back to reference Kaiser de Souza D, de Souza FA, de Fraga LS, Peres Konrad S, Belló-Klein A, Martins da Silva RS, et al. Visceral adiposity influences glucose and glycogen metabolism in control and hyperlipidic-fed animals. Nutr Hosp. 2013;28:545–52.PubMed Kaiser de Souza D, de Souza FA, de Fraga LS, Peres Konrad S, Belló-Klein A, Martins da Silva RS, et al. Visceral adiposity influences glucose and glycogen metabolism in control and hyperlipidic-fed animals. Nutr Hosp. 2013;28:545–52.PubMed
24.
go back to reference Fossati P, Prencipe L. Serum triglycerides determined colorimetrically with an enzyme that produces hydrogen peroxide. Clin Chem. 1982;28:2077–80.PubMed Fossati P, Prencipe L. Serum triglycerides determined colorimetrically with an enzyme that produces hydrogen peroxide. Clin Chem. 1982;28:2077–80.PubMed
25.
go back to reference Deacon AC, Dawson PJ. Enzymic assay of total cholesterol involving chemical or enzymic hydrolysis--a comparison of methods. Clin Chem. 1979;25:976–84.PubMed Deacon AC, Dawson PJ. Enzymic assay of total cholesterol involving chemical or enzymic hydrolysis--a comparison of methods. Clin Chem. 1979;25:976–84.PubMed
26.
go back to reference Warnick GR, Mayfield C, Benderson J, Chen JS, Albers JJ. HDL cholesterol quantitation by phosphotungstate-Mg2+ and by dextran sulfate-Mn2 + −polyethylene glycol precipitation, both with enzymic cholesterol assay compared with the lipid research method. Am J Clin Pathol. 1982;78:718–23.CrossRefPubMed Warnick GR, Mayfield C, Benderson J, Chen JS, Albers JJ. HDL cholesterol quantitation by phosphotungstate-Mg2+ and by dextran sulfate-Mn2 + −polyethylene glycol precipitation, both with enzymic cholesterol assay compared with the lipid research method. Am J Clin Pathol. 1982;78:718–23.CrossRefPubMed
27.
go back to reference Zollner N, Kirsch K. Serum total lipids determination colorimetrically. Z Ges Exp Meal. 1962;1335:54. Zollner N, Kirsch K. Serum total lipids determination colorimetrically. Z Ges Exp Meal. 1962;1335:54.
28.
go back to reference Muruganandan S, Srinivasan K, Gupta S, Gupta PK, Lal J. Effect of mangiferin on hyperglycemia and atherogenicity in streptozotocin diabetic rats. J Ethnopharmacol. 2005;97:497–501.CrossRefPubMed Muruganandan S, Srinivasan K, Gupta S, Gupta PK, Lal J. Effect of mangiferin on hyperglycemia and atherogenicity in streptozotocin diabetic rats. J Ethnopharmacol. 2005;97:497–501.CrossRefPubMed
29.
go back to reference Sanchez-Muniz FJ, Bastida S. Do not use the Friedewald formula to calculate LDL-cholesterol in hypercholesterolaemic rats. Eur J Lipid Sci Technol. 2008;110:295–301.CrossRef Sanchez-Muniz FJ, Bastida S. Do not use the Friedewald formula to calculate LDL-cholesterol in hypercholesterolaemic rats. Eur J Lipid Sci Technol. 2008;110:295–301.CrossRef
30.
go back to reference Benavides A, Siches M, Llobera M. Circadian rhythms of lipoprotein lipase and hepatic lipase activities in intermediate metabolism of adult rat. Am J Physiol. 1998;275:R811–7.PubMed Benavides A, Siches M, Llobera M. Circadian rhythms of lipoprotein lipase and hepatic lipase activities in intermediate metabolism of adult rat. Am J Physiol. 1998;275:R811–7.PubMed
31.
go back to reference Ricart-Jané D, Cejudo-Martín P, Peinado-Onsurbe J, López-Tejero MD, Llobera M. Changes in lipoprotein lipase modulate tissue energy supply during stress. J Appl Physiol. 2005;99:1343–51.CrossRefPubMed Ricart-Jané D, Cejudo-Martín P, Peinado-Onsurbe J, López-Tejero MD, Llobera M. Changes in lipoprotein lipase modulate tissue energy supply during stress. J Appl Physiol. 2005;99:1343–51.CrossRefPubMed
32.
go back to reference Weissgerber TL, Milic NM, Winham SJ, Garovic VD. Beyond bar and line graphs: time for a new data presentation paradigm. PLoS Biol. 2015;13(4), e1002128.CrossRefPubMedPubMedCentral Weissgerber TL, Milic NM, Winham SJ, Garovic VD. Beyond bar and line graphs: time for a new data presentation paradigm. PLoS Biol. 2015;13(4), e1002128.CrossRefPubMedPubMedCentral
33.
go back to reference Lee PN, Lovel D. Statistics for toxicology. In: Ballantyne B, Marrs TC, Syversen T, editors. General and applied toxicology. London: John Wiley & Sons; 2009. p. 675–69. Lee PN, Lovel D. Statistics for toxicology. In: Ballantyne B, Marrs TC, Syversen T, editors. General and applied toxicology. London: John Wiley & Sons; 2009. p. 675–69.
34.
go back to reference Burén J, Lai YC, Lundgren M, Eriksson JW, Jensen J. Insulin action and signalling in fat and muscle from dexamethasone-treated rats. Arch Biochem Biophys. 2008;474:91–101.CrossRefPubMed Burén J, Lai YC, Lundgren M, Eriksson JW, Jensen J. Insulin action and signalling in fat and muscle from dexamethasone-treated rats. Arch Biochem Biophys. 2008;474:91–101.CrossRefPubMed
35.
go back to reference Del Prato S. Loss of early insulin secretion leads to postprandial hyperglycaemia. Diabetologia. 2003;46 Suppl 1:M2–8.CrossRefPubMed Del Prato S. Loss of early insulin secretion leads to postprandial hyperglycaemia. Diabetologia. 2003;46 Suppl 1:M2–8.CrossRefPubMed
36.
go back to reference Stojanovska L, Rosella G, Proietto J. Dexamethasone-induced increase in the rate of appearance in plasma of gut-derived glucose following an oral glucose load in rats. Metabolism. 1991;40:297–301.CrossRefPubMed Stojanovska L, Rosella G, Proietto J. Dexamethasone-induced increase in the rate of appearance in plasma of gut-derived glucose following an oral glucose load in rats. Metabolism. 1991;40:297–301.CrossRefPubMed
37.
go back to reference Kim YD, Park KG, Lee YS, Park YY, Kim DK, Nedumaran B, et al. Metformin inhibits hepatic gluconeogenesis through AMP-activated protein kinase-dependent regulation of the orphan nuclear receptor SHP. Diabetes. 2008;57:306–14.CrossRefPubMed Kim YD, Park KG, Lee YS, Park YY, Kim DK, Nedumaran B, et al. Metformin inhibits hepatic gluconeogenesis through AMP-activated protein kinase-dependent regulation of the orphan nuclear receptor SHP. Diabetes. 2008;57:306–14.CrossRefPubMed
38.
go back to reference Zheng XF, Liu L, Zhou J, Miao MY, Zhou JR, Zhu D, et al. Biphasic effects of dexamethasone on glycogen metabolism in primary cultured rat hepatocytes. J Endocrinol Invest. 2009;32:756–8.CrossRefPubMed Zheng XF, Liu L, Zhou J, Miao MY, Zhou JR, Zhu D, et al. Biphasic effects of dexamethasone on glycogen metabolism in primary cultured rat hepatocytes. J Endocrinol Invest. 2009;32:756–8.CrossRefPubMed
39.
go back to reference Baque S, Roca A, Guinovart JJ, Gomez-Foi AM. Direct activating effects of dexamethasone on glycogen metabolizing enzymes in primary cultured rat hepatocytes. Eur J Biochem. 1996;236:772–7.CrossRefPubMed Baque S, Roca A, Guinovart JJ, Gomez-Foi AM. Direct activating effects of dexamethasone on glycogen metabolizing enzymes in primary cultured rat hepatocytes. Eur J Biochem. 1996;236:772–7.CrossRefPubMed
40.
go back to reference Alengrin F, Grossi G, Canivet B, Dolais-Kitabgi J. Inhibitory effects of metformin on insulin and glucagon action in rat hepatocytes involve post-receptor alterations. Diabetes Metab. 1987;13:591–7. Alengrin F, Grossi G, Canivet B, Dolais-Kitabgi J. Inhibitory effects of metformin on insulin and glucagon action in rat hepatocytes involve post-receptor alterations. Diabetes Metab. 1987;13:591–7.
41.
go back to reference Nicastro H, da Luz CR, Chaves DF, das Neves W, Valente KS, Lancha Jr AH. Leucine supplementation combined with resistance exercise improves the plasma lipid profile of dexamethasone-treated rats. Lip Health Dis. 2012;11:7.CrossRef Nicastro H, da Luz CR, Chaves DF, das Neves W, Valente KS, Lancha Jr AH. Leucine supplementation combined with resistance exercise improves the plasma lipid profile of dexamethasone-treated rats. Lip Health Dis. 2012;11:7.CrossRef
43.
go back to reference Wulffele MG, Kooy A, De Zeeuw D, Stehouwer CD, Gansevoort RT, et al. The effect of metformin on blood pressure, plasma cholesterol and triglycerides in type 2 diabetes mellitus: a systematic review. J Intern Med. 2004;256:1–14.CrossRefPubMed Wulffele MG, Kooy A, De Zeeuw D, Stehouwer CD, Gansevoort RT, et al. The effect of metformin on blood pressure, plasma cholesterol and triglycerides in type 2 diabetes mellitus: a systematic review. J Intern Med. 2004;256:1–14.CrossRefPubMed
44.
go back to reference Hajiaghaalipour F, Khalilpourfarshbafi M, Arya A. Modulation of glucose transporter protein by dietary flavonoids in type 2 diabetes mellitus. Int J Biol Sci. 2015;11:508–24.CrossRefPubMedPubMedCentral Hajiaghaalipour F, Khalilpourfarshbafi M, Arya A. Modulation of glucose transporter protein by dietary flavonoids in type 2 diabetes mellitus. Int J Biol Sci. 2015;11:508–24.CrossRefPubMedPubMedCentral
45.
go back to reference Hunyadi A, Martins A, Hsieh T-J, Seres A, Zupkoґ I. Chlorogenic acid and rutin play a major role in the in vivo anti-diabetic activity of Morus alba leaf extract on type II diabetic rats. PLoS One. 2012;7(11), e50619.CrossRefPubMedPubMedCentral Hunyadi A, Martins A, Hsieh T-J, Seres A, Zupkoґ I. Chlorogenic acid and rutin play a major role in the in vivo anti-diabetic activity of Morus alba leaf extract on type II diabetic rats. PLoS One. 2012;7(11), e50619.CrossRefPubMedPubMedCentral
46.
go back to reference Andrade-Cetto A, Vázquez RC. Gluconeogenesis inhibition and phytochemical composition of two Cecropia species. J Ethnopharmacol. 2010;130:93–7.CrossRefPubMed Andrade-Cetto A, Vázquez RC. Gluconeogenesis inhibition and phytochemical composition of two Cecropia species. J Ethnopharmacol. 2010;130:93–7.CrossRefPubMed
47.
go back to reference Karthikesan K, Pari L, Menon VP. Combined treatment of tetrahydrocurcumin and chlorogenic acid exerts potential antihyperglycemic effect on streptozotocin-nicotinamide induced diabetic rats. Gen Physiol Biophys. 2010;29:23–30.CrossRefPubMed Karthikesan K, Pari L, Menon VP. Combined treatment of tetrahydrocurcumin and chlorogenic acid exerts potential antihyperglycemic effect on streptozotocin-nicotinamide induced diabetic rats. Gen Physiol Biophys. 2010;29:23–30.CrossRefPubMed
48.
go back to reference Chirumbolo S. In vivo anti-diabetic potential of chlorogenic acid as a consequence of synergism with other phenolic compounds? Br J Nutr. 2015;113:546–7.CrossRefPubMed Chirumbolo S. In vivo anti-diabetic potential of chlorogenic acid as a consequence of synergism with other phenolic compounds? Br J Nutr. 2015;113:546–7.CrossRefPubMed
49.
go back to reference Tovchiga OV, Gorbatch TV, Shtrygol’ SYu, Stepanova SI. The influence of goutweed (Aegopodium podagraria L.) preparations on the lipid metabolism in rats with a single dose of ethanol. Pharmacol Med Toxicol. 2015;45:87–96. Tovchiga OV, Gorbatch TV, Shtrygol’ SYu, Stepanova SI. The influence of goutweed (Aegopodium podagraria L.) preparations on the lipid metabolism in rats with a single dose of ethanol. Pharmacol Med Toxicol. 2015;45:87–96.
50.
go back to reference Li XJ, Mu YM, Li TT, Yang YL, Zhang MT, Li YS, et al. Gynura procumbens reverses acute and chronic ethanol-induced liver steatosis through MAPK/SREBP-1c-dependent and -independent pathways. J Agric Food Chem. 2015;63:8460–71.CrossRefPubMed Li XJ, Mu YM, Li TT, Yang YL, Zhang MT, Li YS, et al. Gynura procumbens reverses acute and chronic ethanol-induced liver steatosis through MAPK/SREBP-1c-dependent and -independent pathways. J Agric Food Chem. 2015;63:8460–71.CrossRefPubMed
51.
go back to reference Hao S, Xiao Y, Lin Y, Mo Z, Chen Y, Peng X, et al. Chlorogenic acid-enriched extract from Eucommia ulmoides leaves inhibits hepatic lipid accumulation through regulation of cholesterol metabolism in HepG2 cells. Pharm Biol. 2016;54:251–9.CrossRefPubMed Hao S, Xiao Y, Lin Y, Mo Z, Chen Y, Peng X, et al. Chlorogenic acid-enriched extract from Eucommia ulmoides leaves inhibits hepatic lipid accumulation through regulation of cholesterol metabolism in HepG2 cells. Pharm Biol. 2016;54:251–9.CrossRefPubMed
52.
go back to reference Zheng G, Qiu Y, Zhang Q-F, Li D. Chlorogenic acid and caffeine in combination inhibit fat accumulation by regulating hepatic lipid metabolism-related enzymes in mice. Br J Nutr. 2014;112:1034–40.CrossRefPubMed Zheng G, Qiu Y, Zhang Q-F, Li D. Chlorogenic acid and caffeine in combination inhibit fat accumulation by regulating hepatic lipid metabolism-related enzymes in mice. Br J Nutr. 2014;112:1034–40.CrossRefPubMed
53.
go back to reference Yang Y, Zhang Z, Li S, Ye X, Li X, He K. Synergy effects of herb extracts: pharmacokinetics and pharmacodynamic basis. Fitoterapia. 2014;92:133–47.CrossRefPubMed Yang Y, Zhang Z, Li S, Ye X, Li X, He K. Synergy effects of herb extracts: pharmacokinetics and pharmacodynamic basis. Fitoterapia. 2014;92:133–47.CrossRefPubMed
54.
go back to reference Moon J, Lee SM, Do HJ, Cho Y, Chung JH, Shin MJ. Quercetin up-regulates LDL receptor expression in HepG2 cells. Phytother Res. 2012;26:1688–94.CrossRefPubMed Moon J, Lee SM, Do HJ, Cho Y, Chung JH, Shin MJ. Quercetin up-regulates LDL receptor expression in HepG2 cells. Phytother Res. 2012;26:1688–94.CrossRefPubMed
55.
go back to reference Odbayar TO, Badamhand D, Kimura T, Takashi Y, Tsushida T, Ide T. Comparative studies of some phenolic compounds (quercetin, rutin, and ferulic acid) affecting hepatic fatty acid synthesis in mice. J Agric Food Chem. 2006;54:8261–5.CrossRefPubMed Odbayar TO, Badamhand D, Kimura T, Takashi Y, Tsushida T, Ide T. Comparative studies of some phenolic compounds (quercetin, rutin, and ferulic acid) affecting hepatic fatty acid synthesis in mice. J Agric Food Chem. 2006;54:8261–5.CrossRefPubMed
56.
go back to reference Chang CJ, Tzeng TF, Liou SS, Chang YS, Liu IM. Kaempferol regulates the lipid-profile in high-fat diet-fed rats through an increase in hepatic PPARα levels. Planta Med. 2011;77:1876–82.CrossRefPubMed Chang CJ, Tzeng TF, Liou SS, Chang YS, Liu IM. Kaempferol regulates the lipid-profile in high-fat diet-fed rats through an increase in hepatic PPARα levels. Planta Med. 2011;77:1876–82.CrossRefPubMed
57.
go back to reference Sozio MS, Lu C, Zeng Y, Liangpunsakul S, Crabb DW. Activated AMPK inhibits PPAR-{alpha} and PPAR-{gamma} transcriptional activity in hepatoma cells. Am J Physiol Gastrointest Liver Physiol. 2011;301:G739–47.CrossRefPubMedPubMedCentral Sozio MS, Lu C, Zeng Y, Liangpunsakul S, Crabb DW. Activated AMPK inhibits PPAR-{alpha} and PPAR-{gamma} transcriptional activity in hepatoma cells. Am J Physiol Gastrointest Liver Physiol. 2011;301:G739–47.CrossRefPubMedPubMedCentral
58.
go back to reference Li SY, Chang CQ, Ma FY, Yu CL. Modulating effects of chlorogenic acid on lipids and glucose metabolism and expression of hepatic peroxisome proliferator-activated receptor-alpha in golden hamsters fed on high fat diet. Biomed Environ Sci. 2009;22:122–9.CrossRefPubMed Li SY, Chang CQ, Ma FY, Yu CL. Modulating effects of chlorogenic acid on lipids and glucose metabolism and expression of hepatic peroxisome proliferator-activated receptor-alpha in golden hamsters fed on high fat diet. Biomed Environ Sci. 2009;22:122–9.CrossRefPubMed
59.
go back to reference Huang K, Liang XC, Zhong YL, He WY, Wang Z. 5-Caffeoylquinic acid decreases diet-induced obesity in rats by modulating PPARα and LXRα transcription. J Sci Food Agric. 2015;95:1903–10.CrossRefPubMed Huang K, Liang XC, Zhong YL, He WY, Wang Z. 5-Caffeoylquinic acid decreases diet-induced obesity in rats by modulating PPARα and LXRα transcription. J Sci Food Agric. 2015;95:1903–10.CrossRefPubMed
Metadata
Title
The influence of goutweed (Aegopodium podagraria L.) tincture and metformin on the carbohydrate and lipid metabolism in dexamethasone-treated rats
Author
O. V. Tovchiga
Publication date
01-12-2016
Publisher
BioMed Central
Published in
BMC Complementary Medicine and Therapies / Issue 1/2016
Electronic ISSN: 2662-7671
DOI
https://doi.org/10.1186/s12906-016-1221-y

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