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Original Article

Aldose reductase and protein tyrosine phosphatase 1B inhibitory active compounds from Syzygium cumini seeds

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Pages 1176-1182 | Received 12 Feb 2014, Accepted 19 Aug 2014, Published online: 08 Apr 2015

References

  • Aher AN, Pal SC, Yadav SK, et al. (2010). Isolation and characterization of phytoconstituents from Casuarina equisetifolia (Casuarinaceae). Asian J Chem 22:3429–34
  • Aqil F, Gupta A, Munagala R, et al. (2012). Antioxidant and antiproliferative activities of anthocyanin/ellagitannin-enriched extracts from Syzygium cumini L. (Jamun, the Indian Blackberry). Nutr Cancer 64:428–38
  • Arun R, Prakash MVD, Abraham SK, Premkumar K. (2011). Role of Syzygium cumini seed extract in the chemoprevention of in vivo genomic damage and oxidative stress. J Ethnopharmacol 134:329–33
  • Ayyanar M, Babu PS, Ignacimuthu S. (2013). Syzygium cumini (L.) Skeels, a novel therapeutic agent for diabetes: Folk medicinal and pharmacological evidences. Complement Ther Med 2:232–43
  • Ayyanar M, Babu PS. (2012). Syzygium cumini (L.) Skeels: A review of its phytochemical constituents and traditional uses. Asian Pac J Trop Biomed 2:240–6
  • Baliga MS, Fernandes S, Thilakchand KR, et al. (2013). Scientific validation of the antidiabetic effects of Syzygium jambolanum DC (black plum), a traditional medicinal plant of India. J Altern Complement Med 19:191–7
  • Banerjee J, Narendhirakannan RT. (2011). Phytochemical analyses, antibacterial, in vitro antioxidant and cytotoxic activities of ethanolic extract of Syzygium cumini (L.) seed extract. Int J Pharm Sci Res 2:1799–806
  • Barakat HH, Hussein SAM, Marzouk MS, et al. (1997). Polyphenolic metabolites of Epilobium hirsutum. Phytochemistry 46:935–41
  • Bhuyan ZA, Rokeya B, Masum N, et al. (2010). Antidiabetic effect of Syzygium cumini L. seed on Type 2 diabetic rats. Dhaka Univ J Biol Sci 19:157–64
  • Bona DKS, Bonfanti G, Bitencourt PE, et al. (2014). Syzygium cumini is more effective in preventing the increase of erythrocytic ADA activity than phenolic compounds under hyperglycemic conditions in vitro. J Physiol Biochem 70:321–30
  • Brito FA, Lima LA, Ramos MFS, et al. (2007). Pharmacological study of anti-allergic activity of Syzygium cumini (L.) Skeels. Braz J Med Biol Res 40:105–15
  • Burke TR Jr, Ye B, Yan X, et al. (1996). Small molecule interactions with protein-tyrosine phosphatase PTP1B and their use in inhibitor design. Biochemistry 35:15989–96
  • Chaudhary B, Mukhopadhyay K. (2012). Syzygium cumini (L.) Skeels: A potential source of nutraceuticals. Int J Pharm Bio Sci 2:46–53
  • Cui CB, Zhao QC, Cai B, et al. (2002). Two new and four known polyphenolics obtained as new cell-cycle inhibitors from Rubus aleaefolius Poir. J Asian Nat Prod Res 4:243–52
  • Gohar AA, Lahloub MF, Niwa M. (2003). Antibacterial polyphenol from Erodium glaucophyllum. Z Naturforsch 58:670–4
  • Gowri SS, Vasantha K. (2010). Phytochemical screening and antibacterial activity of Syzygium cumini (L.) (Myrtaceae) leaves extracts. Int J Pharm Tech Res 2:1569–73
  • Hayman S, Kinoshita JH. (1965). Isolation and properties of lens aldose reductase. J Biol Chem 240:877–82
  • Helmstadter A. (2007). Antidiabetic drugs used in Europe prior to the discovery of insulin. Pharmazie 62:717–20
  • Jadhav VM, Kamble SS, Kadam VJ. (2009). Herbal medicine: Syzygium cumini: A review. J Pharm Res 2:1212–19
  • Khan N, Pathan JK, Harsoliya MS, et al. (2011). Evaluation of analgesic activity of Syzygium cumini (L.) Skeels leaves extract per se & its interactions with diclofenac sodium in thermal and chemical induced pain models. J Pharm Res 4:4129–31
  • Kumar A, Jayachandran T, Aravindhan P, et al. (2009). Neutral components in the leaves and seeds of Syzygium cumini. Afr J Pharm Pharacol 3:560–1
  • Lee HS. (2002). Inhibitory activity of Cinnamomum cassia bark-derived component against rat lens aldose reductase. J Pharm Pharm Sci 5:226–30
  • Muruganandan S, Srinivasan K, Chandra S, et al. (2001). Anti-inflammatory activity of Syzygium cumini bark. Fitoterapia 72:369–75
  • Oliveira AC, Endringer DC, Amorim LA, et al. (2005). Effect of the extracts and fractions of Baccharis trimera and Syzygium cumini on glycaemia of diabetic and non-diabetic mice. J Ethnopharmacol 102:465–9
  • Omar R, Li L, Yuan T, Seeram NP. (2012). α-Glucosidase inhibitory hydrolyzable tannins from Eugenia jambolana seeds. J Nat Prod 75:1505–9
  • Ponnusamy S, Ravindran R, Zinjarde S, et al. (2011). Evaluation of traditional Indian antidiabetic medicinal plants for human pancreatic amylase inhibitory effect in vitro. Evid Based Complement Alternat Med. 2011:515647
  • Rekha N, Balaji R, Deecaraman M. (2010). Antihyperglycemic and antihyperlipidemic effects of extracts of the pulp of Syzygium cumini and bark of Cinnamon zeylanicum in streptozotocin-induced diabetic rats. J Appl Biosci 28:1718–30
  • Rodrigues MT, Alves TL, Soares GL, Ritter MR. (2012). Plants used as antidiabetics in popular medicine in Rio Grande do Sul, southern Brazil. J Ethnopharmacol 139:155–63
  • Sagrawat H, Mann A, Kharya MD. (2006). Pharmacological potential of Eugenia jambolana: A review. Pharmaco-genesis Mag 2:96–105
  • Saravanan G, Pari L. (2008). Hypoglycaemic and antihyperglycaemic effect of Syzygium cumini bark in streptozotocin-induced diabetic rats. J Pharmacol Toxicol 3:1–10
  • Sharma B, Viswanath G, Salunke R, Roy P. (2008). Effects of flavonoid-rich extract from seeds of Eugenia jambolana (L.) on carbohydrate and lipid metabolism in diabetic mice. Food Chem 110:697–705
  • Sharma SB, Nasir A, Prabhu KM, Murthy PS. (2006). Antihyperglycemic effect of the fruit-pulp of Eugenia jambolana in experimental diabetes mellitus. J Ethnopharmacol 104:367–73
  • Simoes-Pires CA, Vargas S, Marston A, et al. (2009). Ellagic acid derivatives from Syzygium cumini stem bark: Investigation of their antiplasmodial activity. Nat Prod Commun 4:1371–6
  • Srivastava S, Chandra D. (2013). Pharmacological potentials of Syzygium cumini: A review. J Sci Food Agric 93:2084–93
  • Tanaka JCA, Vidotti GJ, Silva CCD. (2003). A new tormentic acid derivative from Luehea divaricata Mart. (Tiliaceae). J Braz Chem Soc 14:475–8
  • Weichselbaum TE. (1946). An accurate and rapid method for the determination of proteins in small amounts of blood serum and plasma. AJCP 10:40–9
  • Yamada P, Nemoto M, Shigemori H, et al. (2011). Isolation of 5-(hydroxymethyl)furfural from Lycium chinense and its inhibitory effect on the chemical mediator release by basophilic cells. Planta Med 77:434–40

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