Metabolomic profiling and antidiabetic potential of Rumex vesicarius seed extract in high-fat diet and streptozotocin-induced diabeticrat

Authors

  • Anisur Rehman Department of Biotechnology, Jamia Millia Islamia, New Delhi, India; Bioactive Natural Product Laboratories, School of Pharmaceutical Education and Research, Jamia Hamdard, New Delhi, India
  • Mohammad Ibrahim Bioactive Natural Product Laboratories, School of Pharmaceutical Education and Research, Jamia Hamdard, New Delhi, India
  • Shafeeque Ahmed Ansari Department of Biotechnology, Jamia Millia Islamia, New Delhi, India
  • Javed Inam Siddiqui Department of IlmulAdvia (Pharmacology), Central Institutes for Research in Unani Medicine, Hyderabad, Telangana, India
  • Sayeed Ahmad Bioactive Natural Product Laboratories, School of Pharmaceutical Education and Research, Jamia Hamdard, New Delhi, India https://orcid.org/0000-0003-1573-152X

DOI:

https://doi.org/10.1590/s2175-97902022e21032

Keywords:

Diabetes, Rumex vesicarius, Antioxidant, UPLC-QTOF-MS

Abstract

Rumex vesicarius hasbeen extensively used for the management of diabetes in the traditional system of medicine. The current study was designed to investigate antidiabetic and antihyperlipidemic effects of R.vesicarius and also to explore metabolomic profiling using UPLC-QTOF-MS. The effect of extracts was observed by checking the biochemical and histopathological parameters in diabetic rats. The results had shown a significant dose- dependent inhibition potential of aqueous extract of R. vesicarius seed against α-amylase and α-glucosidase along with significant inhibition in DPPH free-radical scavenging activity. Oral administration of R. vesicarius to diabetic rats significantly ( p< 0.05) ameliorated blood glucose level. It also improved the function of the liver and kidney as well as ameliorated dyslipidemia in diabetic rats. Histopathological examination of the treatment groups reversed the damage of the pancreas, liver, and kidney tissues confirming the antidiabetic efficacy of R. vesicarius. UPLC- QTOF-MS analysis of the extract revealed a total of 42 bioactive compounds, which might contribute to the antidiabetic activity. Based on our findings, we can conclude that R. vesicarius might be a promising candidate for the management of diabetes.

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References

Ahangarpour A, Ali-Akbari FR, Mohaghegh SM, Asadinia E. Effects of Arctiumlappa aqueous extract on lipid profile and hepatic enzyme levels of sucrose-induced metabolic syndrome in female rats.Braz J Pharm Sci. 2016;52(3):425- 431.

Al-Daghri NM, Al-Attas OS, Wani K, Sabico S, Alokail MS. Serum uric acid to creatinine ratio and risk of metabolic syndrome in Saudi type 2 diabetic patients.Sci Rep. 2017;7:12104.

Al-Ishaq RK, Abotaleb M, Kubatka P, Kajo K, Büsselberg D. Flavonoids and their anti-diabetic effects: cellular mechanisms and effects to improve blood sugar levels. Biomolecules. 2019;9(9):430.

Beddou F, Bekhechi C, Ksouri R, Sari CD, Bekkara AF. Potential assessment of Rumexvesicarius L. as a source of natural antioxidants and bioactive compounds. J Food Sci Technol. 2015;52(6):3549-60.

Belgacem A, Gdara NB, Khemiri I, Bitri L. Exploration of hypoglycemic effect of an extract from leaves of a plant from Tunisian Pharmacopeia: Artemisia campestris (Asteraceae). Afr Health Sci. 2019;19(4):2846-53.

Chen Z, Wang C, Pan Y, Gao X, Chen H. Hypoglycemic and hypolipidemic effects of anthocyanins extract from black soybean seed coat in high-fat diet and streptozotocin- induced diabetic mice. Food Func. 2018;9(1):426-39.

Cho NH, Shaw JE, Karuranga S, Huang Y, Rocha JD, Ohlrogge AW, et al. IDF Diabetes Atlas: Global estimates of diabetes prevalence for 2017 and projections for 2045. Diabetes Res Clin Pract. 2018;138:271-81.

de Medeiros TD, Pereira AT, da Silva FS, Bortolin RH, Taveira KVM, da Graça BJ, et al. Ethanol extract of Cissampelossympodialis ameliorates lung tissue damage in streptozotocin-induced diabetic rats. Braz J Pharm Sci . 2020;56:e17374

Fahim M, Ibrahim M, Zahiruddin S, Parveen R, Khan W, Ahmad S, et al. TLC-bioautography identification and GC-MS analysis of antimicrobial and antioxidant active compounds in Musa × paradisiaca L. fruit pulp essential oil. Phytochem Anal. 2019;30(3):332-345.

Franco RR, Alves MVH, Zabisky RLF, Justino AB, Martins MM, Saraiva AL, et al. Antidiabetic potential of Bauhinia forficata Link leaves: a non-cytotoxic source of lipase and glycoside hydrolases inhibitors and molecules with antioxidant and antiglycation properties. Biomed Pharmacother. 2020;123:109798.

Gaurav, Zahiruddin S, Parveen B, Ibrahim M, Sharma I, Sharma S, et al. TLC-MS Bioautography-based identification of free-radical scavenging, α-amylase, and α-glucosidase inhibitor compounds of antidiabetic tablet BGR-34. ACS Omega. 2020;5(46):29688-29697.

Guo X, Wang Y, Wang K, Ji B, Zhou F. Stability of a type 2 diabetes rat model induced by high-fat diet feeding with low-dose streptozotocin injection. J Zhejiang UnivSci B. 2018;19(7):559-569.

Husain I, Chander R, Saxena JK, Mahdi AA, Mahdi F. Antidyslipidemic effect of Ocimum sanctum leaf extract in streptozotocin-induced diabetic rats. Indian J ClinBiochem. 2015;30(1):72-77.

Ibrahim M, Parveen B, Zahiruddin S, Gautam G, Parveen R, Ahmed M, et al. Analysis of polyphenols in Aegle marmelos leaf and ameliorative efficacy against diabetic mice through restoration of antioxidant and anti-inflammatory status. 2021; 1-15. doi:10.1111/jfbc.13852.

» https://doi.org/10.1111/jfbc.13852

Incalza MA, D’Oria R, Natalicchio A, Perrini S, Laviola L, Giorgino F. Oxidative stress and reactive oxygen species in endothelial dysfunction associated with cardiovascular and metabolic diseases. Vascul Pharmacol. 2018;100(1):1-19.

Joseph JJ, Echouffo-Tcheugui JB, Golden SH, Chen H, Jenny NS, Carnethon MR, et al. Physical activity, sedentary behaviors and the incidence of type 2 diabetes mellitus: The multi-ethnic study of atherosclerosis (MESA). BMJ Open Diabetes Res Care. 2016;4(1):e000185.

Junejo JA, Rudrapal M, Nainwal LM, Zaman K. Antidiabetic activity of hydro-alcoholic stem bark extract of CallicarpaArboreaRoxb. with antioxidant potential in diabetic rats. Biomed Pharmacother . 2017;95:84-94.

Khan MZ, Shabbir MI, Saqib Z, Gilani SA, Jogezai NU, Kiyani MM, et al. Investigation of polyphenol profile, antioxidant activity and hepatoprotective potential of Aconogononalpinum (All.) Schur roots. Open Chem. 2020;18(1):516-536.

Kim JY, Young J, Sara F, Michaliszyn AN, Lee SJ, Tfayli H, et al. The shape of the glucose response curve during an oral glucose tolerance test heralds biomarkers of type 2 diabetes risk in obese youth. Diabetes Care. 2016;39(8):1431-1439.

Mohamed med H, Osman B, Abdoon IH, Mustafa A. Biomedicine & Pharmacotherapy Ameliorative activity of Adansoniadigitata fruit on high sugar/high fat diet-simulated Metabolic Syndrome model in male Wistar rats. Biomed Pharmacother . 2020;125:109968.

Panche AN, Diwan AD, Chandra SR. Flavonoids: an overview. J Nutr Sci. 2016;5:E47.

Parveen A, Parveen B, Parveen R, Ahmad S. Challenges and guidelines for clinical trial of herbal drugs. J Pharm Bioallied Sci. 2015;7(4):329-333.

Parveen S, Ansari MHR, Parveen R, Khan W, Ahmad S, Husain SA. Chromatography based metabolomics and in silico screening of Gymnema sylvestre leaf extract for its antidiabetic potential. Evid-Based Compl Alt. 2019;7523159.

Reddy NS, Ramanjaneyulu K, Sabbani V, Choday V. In vitro and in vivo antidiabetic activity of Rumexvesicarius leaves extract in streptozotocin induced diabetic albino Wister rats. J Diabetes Metab. 2017;8(6). doi: 10.4172/2155-6156.1000745.

» https://doi.org/10.4172/2155-6156.1000745

Rena G, Hardie DG, Pearson ER. The mechanisms of action of metformin.Diabetologia. 2017;60(9):1577-1585.

Rui L. Energy Metabolism in the Liver.Compr Physiol. 2014;4(1):177-197.

Sagbo IJ, Maryna MVD, Koekemoer T, Bradley G. In vitro antidiabetic activity and mechanism of action of Brachylaenaelliptica (Thunb.) DC. Evid Based Complement Alternat Med. 2018;4170372.

Sasidharan S, Chen Y, Saravanan D, Sundram KM, Latha LY. Extraction, isolation and characterization of bioactive compounds from plants extracts. Afr J Tradit Complement Altern Med. 2011;8(1):1-10.

Schofield JD, Liu Y, Rao-Balakrishna P, Malik RA, Soran H. Diabetes Dyslipidemia.Diabetes Ther. 2016;7(2):203-219.

Shah MAR, Khan RA, Ahmed M. Anti-diabetic activity of Iphionaaucheri leaf extract. Bangladesh J Pharmacol. 2020;15(4):99-109.

Shibabaw T, Dessie G, Molla MD, Zerihun MF, Ayelign B. Assessment of liver marker enzymes and its association with type 2 diabetes mellitus in Northwest Ethiopia. BMC Research Notes. 2019;707.

Syiem D, Warjri P. Antidiabetic, antioxidant, and TNF-α lowering properties of extract of the traditionally used plant Ixeris gracilis in alloxan-induced diabetic mice. Pharm Biol. 2015;53(4):494-502.

Taskinen MR. Diabetic dyslipidaemia: from basic research to clinical practice. Diabetologia . 2003;46(6):733-49.

Unuofin JO, Lebelo SL. Antioxidant effects and mechanisms of medicinal plants and their bioactive compounds for the prevention and treatment of type 2 diabetes: an updated review. Oxid Med Cell Longev. 2020;1356893.

Zheng Y, Ley SH, Hu FB. Global aetiology and epidemiology of type 2 diabetes mellitus and its complications. Nat Rev Endocrinol. 2018;14(2):88-98.

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Published

2023-02-08

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Original Article

How to Cite

Metabolomic profiling and antidiabetic potential of Rumex vesicarius seed extract in high-fat diet and streptozotocin-induced diabeticrat. (2023). Brazilian Journal of Pharmaceutical Sciences, 58. https://doi.org/10.1590/s2175-97902022e21032