Lipid Altering Potential of Moringa oleifera Lam Seed Extract and Isolated Constituents in Wistar Rats

Autor

  • T. O. Ajayi
  • Jones O. Moody
  • O.J. Odumuwagun
  • Joseph A. O. Olugbuyiro

Słowa kluczowe:

Serum lipid profile, Antilipase, High Density Lipoprotein, Moringaceae,, High fat diet, 4- acetyl benzylisothiocyanate-O –α-L rhamnopyranoside

Abstrakt

The use of natural products have become popular because of their minimal adverse effect, cost effectiveness and accessibility. Moringa oleifera, is a valued plant that has found use ethnomedicinally and economically. The leaves have been investigated in various researches for different activities. This study is aimed at evaluating the seeds for its serum lipid profile altering activities in animal models. Five groups of five animals (120-150 g) per group were made obese by feeding with a high fat diet (HFD) for 10 weeks. The basal lipid profile was determined, and treatment commenced with methanol extracts of Moringa oleifera seed (MOSE) at 100 and 200 mg/kg b w for 6 weeks. Control groups were the Orlistat treated (50 mg/kg b w), untreated and normal diet groups. The antihyperlipidemic activity in-vivo and an enzyme anti lipase assay in-vitro were determined respectively. The characterisation of isolated compounds and derivative was by spectroscopic techniques. A significant decrease in Very Low Density Lipoprotein cholesterol (VLDLc) at p< 0.01 was observed across the five groups when compared with the standard Orlistat. A significant increase in High Density Lipoprotein cholesterol (HDLc) at p< 0.01 was observed in the group treated with 200 mg/kg MOSE. However, a dangerous significant increase in Athereogenic index (AI) was observed in the group treated with 100mg/kg MOSE The derived 4- acetyl benzylisothiocyanate-O –α-L rhamnopyranoside (2) from isolated 4- hydroxybenzylisothiocyanate-O-α-L rhamnopyranoside (1) revealed the highest activity of 99.17% at 0.5 mg/mL. The methanol extract of Moringa oleifera seed could alter lipid profile and a structure activity relationship was observed with respect to the isolated compound and its derivatized analogue

Bibliografia

Ahmed AG, El-Olemy MM, Essam A, El-Said M, Niwa M (2000): Cardenolides and β- Sitosterol glucoside from Pergularia tomentosa L. Nat. Prod. Sci. 6(3):142-146.

Al-Dosari MS (2011): Hypolipidemic and antioxidant activities of avocado fruit pulp on high cholesterol fed diet in rats. Afr. J. Pharm. Pharmacol. 5(12):1475-1483.

Ali MS, Saleem M, Waqar A, Masood P, Ragav Y(2001): A chlorinated monoterpene ketone, acylated β-sitosterol glycosides and a flavanone glycoside from Mentha longifolia (Lamiaceae). Phytochem. 59:889-895.

Ajayi TO, Moody JO, Akintayo CO (2016): Toxicological evaluation of Moringa oleifera Lam seeds and leaves in Wistar rats. Pharmacogn. comm. 6(2) 93-104

Amaglo NK, Bennett RN, Lo Curto RB, Rosa EAS, Lo Turco V, Giuffri A, Lo Curto A, Crea F, Timpo GM (2010): Profiling selected phytochemicals and nutrients in different tissues of the multipurpose tree Moringa oleifera L. grown in Ghana. Food Chem. 122:1047–1054.

Arora M, Kalia AN (2013): Isolation and characterization of Stigmasterol and β- sitosterol-D-glycoside from ethanolic extract of the stems of Salvadora persica Linn. Int. J. of Pharmacy and Pharm Sci. Acad. Sci. 5 (1): 245-249.

Bennett RN, Mellon FA, Foidl N, Pratt JH, Dupont MS, Perkins L, Kroon PA (2003): Profiling glucosinolates and phenolics in vegetative and reproductive tissues of the multipurpose trees Moringa oleifera L. (horseradish tree) and Moringa stenopetala L. J. of Agric and Food Chem. 51(12):3546-3553.

Bhatnagar SS, Santapau H, Desai JDH, Yellore S, Rao TNS (1961): “Biological activity of Indian medicinal plant. Part1”. Antibacterial, antitubercular and antifungal action” Indian J. of Med. Res. 49:799-805.

Bhishagratna KK (1991):. An English Translation of the SushrutaSamhita: Based on Original Sanskrit Text, 1991 vol. 30, part 3 of Chowkhamba Sanskrit Studies, Chowkhamba Sanskrit Series Office, Varanasi, India.

Consolacion YR, Jocelyn LC, Chien-Chang S (2014): Triterpenes and Sterol from Artocarpus ovatus. J. of App. Pharm. Sci. 4(10):007-011.

Duester KC (2001): Avocado fruit in a rich source of beta-sitosterol. J. Am. Dietet. Assoc. 101; 404-405.

Ðurendic-Brenesel M, Popovic T, Pilija V, Arsic A, Milic M, Kojic D, Jojic N, Milic N (2013): Hypolipidemic and antioxidant effects of buckwheat leaf and flower mixture in hyperlipidemic rats. Bosn. J. Basic Med. Sci.13 (2):100-108.

Eliot LA, Jamali F (1999): Pharmacokinetics and pharmacodynamics of Nifedipine in untreated and atorvastatin-treated hyperlipidemic rats. J. Pharmacol. Exp. Ther. 291(1):188-193.

Faizi S, Siddiqui BS, Saleem R, Siddiqui S, Aftab K, Gilani AUH (1994): Isolation and structure elucidation of new nitrile and mustard oil glycosides from Moringa oleifera and their effect on blood pressure. Journal of Natural Products 57(9): 1256-1261.

Faizi S, Siddiqui BS, Saleem R, Siddiqui S, Aftab K, Shaheen F, Gilani AH (1998): Hypotensive Constituents from the Pods of Moringa oleifera, Planta Medica 64: 225-228

Giri RK, Kanungo SK, Tripathi NK (2012): Hypolipidemic activity of Spinacia oleracea L. in atherogenic diet induced hyperlipidemic rats. J. Biomed. Pharm. Res. 1(1): 39- 43.

Hasani-Ranjbar S, Jouyandeh Z, Abdollahi M.(2013): “A systematic review of anti-obesity medicinal plants—an update,” J. of Diabetes and Metab. Disorders, 12(1): 28.

Howell WH (1997): Plasma lipid and lipoprotein responses to dietary fat and cholesterol: A meta-analysis. Am. J. of Clin. Nutr. 65:1747-1764.

Idemudia JE, Ugwuja O, Afonja E, Idogun NU (2013): C-reactive proteins and cardiovascular risk indices in hypertensive Nigerians. Internet J. Cardiovasc. Res. 6(2).

Karadi RV, Gadge NB, Alagawadi KR, Savadi V (2006): Effect of Moringa oleifera root wood on ethylene glycol induced urolithiasis in rats. J Ethnopharmacol.105: 306-311.

Kaur G, Meena C (2013): Evaluation of anti-hyperlipidemic potential of combinatorial extract of curcumin, piperine and quercetin in Triton-induced hyperlipidemia in rats. Sci. Int. 1(3): 57-63.

Khan NM, Hossain MS (2015): Scopoletin and β- sitosterol glucoside from roots of Ipomoea digitata. J. of Pharmacog. and Phytochem. 4(2):05-07.

Khatun M, Billah M, Abdul-Quader M (2012): Sterols and sterol glycoside from Phyllanthus Species. Dhaka University J. of Sci. 60(1): 5-10.

Kumar L, Chakraborthy G, Singh V, Mazumder A (2012): Hibiscus rosa-sinensis: A review on divine herb J. Adv. Pharm. Healthcare Res. 2(4): 9-18.

Manson JE, Colditz GA, Stampfer MJ (1990): A prospective study of obesity and risk for coronary heart disease in women. N. Engl. J. Med. 322: 882–889.

Mayes PA, Botham KM (2003): Lipid transport and storage. In: Murray RK, Granner DK, Mayes PA, Rodwell VW. (Ed). Harper’s Illustrated Biochemistry 26th ed. 2003 California: Lange Medical Books/McGraw-Hill.

Moghadasian MH, Frohlich JJ (1999): Effects of dietary phytosterols on cholesterol metabolism and atherosclerosis: Clinical and experimental evidence. Am. J. Med. 107: 588-594.

Nantachit K (2006): Antibacterial activity of the capsule of Moringa oleifera CMU J Nat Sci. 5: 365-368.

Naznin AM, Rashid MD, Shah A (2008): Comparison of Moringa oleifera leaves extract with atenolol on serum triglyceride, serum cholesterol, blood glucose, heart weight, body weight in adrenaline induced Rats. Saudi J. of Biol. Sci. 15(2): 253-258.

Nwagha UI and Igweh, JC (2005): “Atherogenic index of plasma: a significant indicator for the onset of Atherosclerosis during menopause in hypertensive females of Southeast Nigeria,” Journal of College of Medicine, 10(2): 67–71.

Oakenfull D, Sidhu GS (1990): Could Saponins be a useful treatment for hypocholesterolemia? Euro. J. Clin. Nutr. 44:79-88.

Odetola AA, Akinloye O, Egunjobi C, Adekunle WA, Ayoola AO (2006): Possible antidiabetic and antihyperlipidaemic effect of fermented Parkia biglobosa (JACQ) extract in alloxan-induced diabetic rats. Clin. Exp. Pharmacol. Physiol. 33(9): 808-12.

Ogunjinmi OE, Oladipo AT (2012): Preliminary Test of Phytochemical Screening of Crude Extracts of Moringa oleifera seed. IOSR J. of Appl Chem. (IOSR-JAC) 3(2):11-13.

Oluwatosin AA, Olajumoke A, Jonah A, Michael AF (2008): Lipid-lowering effects of methanolic extracts of Vernonia amygdalina leaves in rats fed on high cholesterol diet. J. Am. Med. Assoc. 251: 351-64.

Pankaj GJ, Savita DP, Nitin G.H, Manoj VG, Sanjay J.S (2010): Hypolipidemic activity of Moringa oleifera Lam., Moringaceae on high fat diet induced hyperlipidemia in albino rats. R.C. Patel Institute of Pharmaceutical Education and Research, Near Karwand Naka, Shirpur-425 405, Dist- Dhule, Maharashtra, India.

Pratik KC, Vinodini NA, Ranjith S, Rakshatha R, Anwar A (2013): Effect of Moringa oleifera leaf extract on cadmium induced renal toxicity in adult Wistar Albino rats. Int. J. of Adv. Res.1 (5): 162-165.

Rahilly C (2001): Relation between high-density lipoprotein cholesterol and survival to age 85 years in men, Am. J. of Cardiol. 54: 1324-1328.

Rana JS, Nieuwdorp M, Jukema JW, Kastelein J.J (2007): Cardiovascular metabolic syndrome – an interplay of, obesity, inflammation, diabetes and coronary heart disease. Diabetes Obes. Metab. 9:218–232.

Raghuveer R, Sreeja K, Sindhuri T, Kumar SA (2011): Anti-hyperlipidemic effect of Tagetes erecta in cholesterol fed hyperlipidemic rats. Der Pharmacia Lettre. 3(5): 266-270.

Rathi BS, Bodhankar SL, Baheti AM (2006): Evaluation of aqoeus leaves extract of Moringa oleifera Linn for wound healing in albino rats. Indian J. of Expt. Biol. 44: 898-901.

Ryter SW, Kim HP, Hoetzel A, Park JW, Nakahira K, Wang X, Choi AM (2007): Mechanisms of cell death in oxidative stress. Antioxid. Redox Signal 9: 49–89.

Segal P, Roimim PS, Eder HA (1972): Effect of Clofibrate on lipoprotein metabolism in hyperlipidemic rats. J. Clin. Invest. 51:1632-1638.

Suanarunsawat T., Ayutthaya WDN, Songsak T, Thirawarapan S, Poungshompoo S (2011): Lipid-lowering and anti-oxidative activities of aqueous extracts of Ocimum sanctum L. leaves in rats fed with a high-cholesterol diet. Oxidative Med. Cellular Longevity. Article ID 962025:3.

Udem SC, Ezeonuegbu UC, Obidike RI (2011): Experimental studies on the hypolipidemic and haematological properties of aqueous leaf extract of Cleistopholiss patens Benth & Diets. (Annonacae) in hypercholesterolemic rats. Ann. Med. Health Sci. Res. 1:115-21

Veng-Pedersen P, Cheng H, Jusco JJ (1991): Regarding dose-independent pharmacokinetic parameters in non-linear pharmacokinetics. J. of Pharma. Sci. 80 (6): 608-612.

Wolff GL (1987): Body weight and cancer. Am. J. Clin. Nutr. 45: 168–180.

Opublikowane

2020-01-31

Numer

Dział

Original Articles

Jak cytować

Lipid Altering Potential of Moringa oleifera Lam Seed Extract and Isolated Constituents in Wistar Rats. (2020). African Journal of Biomedical Research, 23(1), 77-85. https://www.ojshostng.com/index.php/ajbr/article/view/870

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