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Insulin-releasing and insulin-like activity of the traditional anti-diabetic plant Coriandrum sativum (coriander)

Published online by Cambridge University Press:  09 March 2007

Alison M. Gray*
Affiliation:
School of Biomedical Sciences University of Ulster, Coleraine, BT52 1SA, UK
Peter R. Flatt
Affiliation:
School of Biomedical Sciences University of Ulster, Coleraine, BT52 1SA, UK
*
*Corresponding author: Dr Alison Gray, present address: Young Hearts Project, Level 3 McKinney House, Musgrave Park Hospital, Belfast BT9 7JB, UK, fax +44 (0) 1232 382008, email [email protected]
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Abstract

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Coriandrum sativum (coriander) has been documented as a traditional treatment of diabetes. In the present study, coriander incorporated into the diet (62·5 g/kg) and drinking water (2·5 g/l, prepared by 15 min decoction) reduced hyperglycaemia of streptozotocin-diabetic mice. An aqueous extract of coriander (1 mg/ml) increased 2-deoxyglucose transport (1·6-fold), glucose oxidation (1·4-fold) and incorporation of glucose into glycogen (1·7-fold) of isolated murine abdominal muscle comparable with 10−8 m-insulin. In acute 20 min tests, 0·25–10 mg/ml aqueous extract of coriander evoked a stepwise 1·3–5·7-fold stimulation of insulin secretion from a clonal B-cell line. This effect was abolished by 0·5 mm-diazoxide and prior exposure to extract did not alter subsequent stimulation of insulin secretion by 10 mm-l-alanine, thereby negating an effect due to detrimental cell damage. The effect of extract was potentiated by 16·7 mm-glucose and 10 mm-l-alanine but not by 1 mm-3-isobutyl-1-methylxanthine. Insulin secretion by hyperpolarized B-cells (16·7 mm-glucose, 25 mm-KCl) was further enhanced by the presence of extract. Activity of the extract was found to be heat stable, acetone soluble and unaltered by overnight exposure to acid (0·1 m-HCl) or dialysis to remove components with molecular mass < 2000 Da. Activity was reduced by overnight exposure to alkali (0·1 m-NaOH). Sequential extraction with solvents revealed insulin-releasing activity in hexane and water fractions indicating a possible cumulative effect of more than one extract constituent. These results demonstrate the presence of antihyperglycaemic, insulin-releasing and insulin-like activity in Coriandrum sativum.

Type
Research Article
Copyright
Copyright © The Nutrition Society 1999

References

Bailey, CJ & Day, C (1989) Traditional plant medicines as treatments for diabetes. Diabetes Care 12, 553564.CrossRefGoogle ScholarPubMed
Bailey, CJ & Flatt, PR (editors) (1990) New Antidiabetic Drugs, pp. 1295. London: Smith-Gordon.Google Scholar
Bailey, CJ & Puah, JA (1986) Effect of metformin on glucose metabolism in mouse soleus muscle. Diabète et Metabolisme 12, 212218.Google ScholarPubMed
Dunne, MJ, Harding, EA, Jaggar, JH, Ayton, BJ & Squires, PE (1994) Endogenous and chemical activators of ATP-regulated potassium channels in insulin-secreting cells: possible mechanisms and physiological significance. In Frontiers of Insulin Secretion and Pancreatic B-Cell Research, pp. 153159 [Flatt, PR and Lenzen, S, editors]. London: Smith-Gordon.Google Scholar
Eliasson, L, Renström, E, Ämmälä, C, Berggren, P-O, Bertorello, AM, Bokvist, K, Chibalin, A, Deeney, JT, Flatt, PR, Gabel, J, Gromada, J, Larsson, O, Lindström, P, Rhodes, CJ & Rorsman, P (1996) PKC-Dependent stimulation of exocytosis by sulfonylureas in pancreatic B-cells. Science 271, 813815.Google Scholar
Farnsworth, NR & Segelman, AB (1971) Hypoglycaemic plants. Tile and Till 57, 5255.Google Scholar
Flatt, PR & Bailey, CJ (1981) Abnormal plasma glucose and insulin responses in heterozygous lean (ob/+) mice. Diabetologia 20, 573577.CrossRefGoogle ScholarPubMed
Flatt, PR, Shibier, O, Szecowka, J & Berggren, P-O (1994) New perspectives on the actions of sulphonylureas and hyperglycaemic sulphonamides on the pancreatic B-cell. Diabète et Metabolisme 20, 157162.Google Scholar
Gray, AM & Flatt, PR (1997 a) Nature's own pharmacy: the diabetes perspective. Proceedings of the Nutrition Society 56, 507517.CrossRefGoogle ScholarPubMed
Gray, AM & Flatt, PR (1997 b) Pancreatic and extra-pancreatic effects of the traditional anti-diabetic plant, Medicago sativa (lucerne). British Journal of Nutrition 78, 325334.Google Scholar
Gray, AM & Flatt, PR (1998 a) Actions of the traditional anti-diabetic plant, Agrimony eupatoria (agrimony): effects on hyperglycaemia, cellular glucose metabolism and insulin secretion. British Journal of Nutrition 80, 109114.CrossRefGoogle ScholarPubMed
Gray, AM & Flatt, PR (1998 b) Insulin-releasing and insulin-like activity of Agaricus campestris (mushroom). Journal of Endocrinology 157, 259266.CrossRefGoogle ScholarPubMed
Hunt, SM, Chrzanowska, C, Barnett, CR, Brand, HN & Fawell, JK (1987) A comparison of in vitro cytotoxicity assays and their application to water samples. Alternatives to Laboratory Animals 15, 2029.CrossRefGoogle Scholar
Lewis, WH & Elvin-Lewis, MPF (1977) Medical Botany: Plants Affecting Man's Health. New York, NY: Wiley.Google Scholar
Lust, J (1986) The Herb Book. London: Bantam Books.Google Scholar
McClenaghan, NH, Barnet, CR, Ah-Sing, E, Abdelwahab, YHA, O'Harte, FPM, Yoon, T-W, Swanston-Flatt, SK & Flatt, PR (1996) Characterization of a novel glucose-responsive insulin-secreting cell line, BRIN-BD11, produced by electrofusion. Diabetes 45, 11321140.Google Scholar
McClenaghan, NH & Flatt, PR (1998) Engineering cultured insulin-secreting pancreatic B-cell lines Journal of Molecular Medicine (In the Press).CrossRefGoogle Scholar
McClenaghan, NH, Flatt, PR & Bailey, CJ (1998) Insulin-releasing action of the novel antidiabetic agent BTS 67 582. British Journal of Pharmacology 123, 400404.CrossRefGoogle ScholarPubMed
Prager, R, Schernthaser, G & Graf, H (1986) Effect of metformin on peripheral insulin sensitivity in non-insulin dependent diabetes mellitus. Diabète et Metabolisme 12, 346350.Google Scholar
Rorsman, P (1997) The pancreatic B-cell as a fuel sensor: an electrophysiologist's view point. Diabetologia 40, 487495.CrossRefGoogle Scholar
Sharaf, AA, Hussein, AM & Mansour, MY (1963) Studies on the antidiabetic effects of some plants. Planta Medica 11, 159168.Google Scholar
Sharp, GWG (1979) The adenylate cyclase–cyclic AMP system in islets of Langerhans and its role in the control of insulin release. Diabetologia 16, 287297.CrossRefGoogle ScholarPubMed
Stevens, JF (1971) Determination of glucose by automatic analyser. Clinica Chimica Acta 32, 199201.CrossRefGoogle ScholarPubMed
Swanston-Flatt, SK, Day, C, Bailey, CJ & Flatt, PR (1990) Traditional plant treatments for diabetes: studies in normal and streptozotocin diabetic mice. Diabetologia 33, 462464.CrossRefGoogle ScholarPubMed
Swanston-Flatt, SK, Flatt, PR, Day, C & Bailey, CJ (1991) Traditional dietary adjuncts for the treatment of diabetes mellitus. Proceedings of the Nutrition Society 50, 641651.Google Scholar
World Health Organization (1980) World Health Organization Expert Committee on Diabetes Mellitus, Second Report. Technical Report Series no. 646, p. 66. Geneva: WHO.Google Scholar