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Development of a food composition database for the estimation of dietary intakes of glucosinolates, the biologically active constituents of cruciferous vegetables

Published online by Cambridge University Press:  09 March 2007

S. A. McNaughton*
Affiliation:
Nutrition Program, School of Population Health, University of Queensland, Herston, Queensland, 4029, Australia
G. C. Marks
Affiliation:
Nutrition Program, School of Population Health, University of Queensland, Herston, Queensland, 4029, Australia
*
*Corresponding author: Ms S. A. McNaughton, present address MRC Human Nutrition Research, Elsie Widdowson Laboratory, Fulbourn Road, Cambridge CB1 9NL, UK, fax +44 1223 437515, email [email protected]
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Abstract

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Evidence indicates that cruciferous vegetables are protective against a range of cancers with glucosinolates and their breakdown products considered the biologically active constituents. To date, epidemiological studies have not investigated the intakes of these constituents due to a lack of food composition databases. The aim of the present study was to develop a database for the glucosinolate content of cruciferous vegetables that can be used to quantify dietary exposure for use in epidemiological studies of diet–disease relationships. Published food composition data sources for the glucosinolate content of cruciferous vegetables were identified and assessed for data quality using established criteria. Adequate data for the total glucosinolate content were available from eighteen published studies providing 140 estimates for forty-two items. The highest glucosinolate values were for cress (389 mg/100 g) while the lowest values were for Pe-tsai chinese cabbage (20 mg/100 g). There is considerable variation in the values reported for the same vegetable by different studies, with a median difference between the minimum and maximum values of 5·8-fold. Limited analysis of cooked cruciferous vegetables has been conducted; however, the available data show that average losses during cooking are approximately 36 %. This is the first attempt to collate the available literature on the glucosinolate content of cruciferous vegetables. These data will allow quantification of intakes of the glucosinolates, which can be used in epidemiological studies to investigate the role of cruciferous vegetables in cancer aetiology and prevention.

Type
Research Article
Copyright
Copyright © The Nutrition Society 2003

References

Armstrong, BK, White, E & Saracci, R (1992) Principles of Exposure Measurement in Epidemiology. New York, NY: Oxford University Press.CrossRefGoogle Scholar
CAB International (2000) CAB Abstracts. 1984–2000. Wallingford, Oxon: CAB International.Google Scholar
Carlson, DG, Daxenbichler, ME & VanEtten, CH (1985) Glucosinolates in radish cultivars. J Am Soc Hort Sci 110, 634638.CrossRefGoogle Scholar
Carlson, DG, Daxenbichler, ME, VanEtten, CH, Kwolek, WF & Williams, PH (1987) Glucosinolates in crucifer vegetables: broccoli, Brussels sprouts, cauliflower, collards, kale, mustard greens, and kohlrabi. J Am Soc Hort Sci 112, 173178.CrossRefGoogle Scholar
Carlson, DG, Daxenbichler, ME, VanEtten, CH, Tookey, HL & Williams, PH (1981) Glucosinolates in crucifer vegetables: turnips and rutabagas. J Agric Food Chem 29, 12351239.CrossRefGoogle ScholarPubMed
Ciska, E & Kozlowska, H (1998) Glucosinolates of cruciferous vegetables. Pol J Food Nutr Sci 7, 522.Google Scholar
Ciska, E, Piskula, M, Martyniak Przybyszewska, B, Waszczuk, K & Kozlowska, H (1994) Glucosinolates in various cabbage cultivars grown in Poland. Pol J Food Nutr Sci 3, 119126.Google Scholar
Conran, C, Conran, T & Hopkinson, S (1997) The Conran Cookbook. London: Conran Octopus.Google Scholar
Crews, H, Alink, G, Andserson, R, et al. (2001) A critical assessment of some biomarker approaches linked with dietary intake. Br J Nutr 86, S5S35.CrossRefGoogle ScholarPubMed
Daxenbichler, ME, VanEtten, CH & Williams, PH (1979) Glucosinolates and derived products in cruciferous vegetables. Analysis of 14 varieties of Chinese cabbage. J Agric Food Chem 27, 3437.CrossRefGoogle ScholarPubMed
De Groot, AP, Willems, MI & De, Vos RH (1991) Effects of high levels of brussels sprouts in the diet of rats. Food Chem Toxicol 29, 829837.CrossRefGoogle ScholarPubMed
Dekker, M, Verkerk, R & Jongen, WMF (2000) Predictive modelling of health aspects in the food production chain: a case study on glucosinolates in cabbage. Trends Food Sci Technol 11, 174181.CrossRefGoogle Scholar
De Vos, RH & Blijleven, WGH (1988) The effect of processing conditions on glucosinolates in cruciferous vegetables. Z Lebensm Unters Forsch 187, 525529.CrossRefGoogle ScholarPubMed
Fenwick, GR, Heaney, RK & Mullin, WJ (1983) Glucosinolates and their breakdown products in food and food plants. Crit Rev Food Sci Nutr 18, 123201.CrossRefGoogle ScholarPubMed
Getahun, SM & Chung, FL (1999) Conversion of glucosinolates to isothiocyanates in humans after ingestion of cooked watercress. Cancer Epidemiol Biomarkers Prev 8, 447451.Google ScholarPubMed
Goodrich, RM, Parker, RS, Lisk, DJ & Stoewsand, GS (1988) Glucosinolate, carotene and cadmium content of Brassica oleracea grown on municipal sewage sludge. Food Chem 27, 141150.CrossRefGoogle Scholar
Griffiths, DW, Birch, ANE & Hillman, JR (1998) Antinutritional compounds in the Brassicaceae: analysis, biosynthesis, chemistry and dietary effects. J Hort Sci Biotechnol 73, 118.CrossRefGoogle Scholar
Hansen, M, Laustsen, AM, Olsen, CE, Poll, L & Sorensen, H (1997) Chemical and sensory quality of broccoli (Brassica oleracea L. var italica). J Food Qual 20, 441459.CrossRefGoogle Scholar
Heaney, RK & Fenwick, GR (1980) Glucosinolates in Brassica vegetables. Analysis of 22 varieties of Brussels sprouts (Brassica oleracea var. gemmifera). J Sci Food Agric 31, 785793.CrossRefGoogle Scholar
Heaney, RK, Fenwick, GR & Sørensen, H (1985) Brassica vegetables – a major source of glucosinolates in the human diet. In Advances in the Production and Utilization of Cruciferous Crops. Proceedings of a Seminar in the CEC Programme of Research on Plant Protein Improvement, pp. 4049. [Sørensen, H, editor]. Dordrecht, The Netherlands: Martinus Nijhoff Publishers.Google Scholar
Hill, CB, Williams, PH, Carlson, DG & Tookey, HL (1987) Variation in glucosinolates in Oriental Brassica vegetables. J Am Soc Hort Sci 112, 309313.CrossRefGoogle Scholar
Hrncirik, K & Velisek, J (1997) Glucosinolate content of common Brassicaceae family vegetables. Potrav Vedy 15, 161172.Google Scholar
Hrncirik, K, Velisek, J & Davidek, J (1998) Comparison of HPLC and GLC methodologies for determination of glucosinolates using reference material. Z Lebensm Unters Forsch 206, 103107.Google Scholar
Jiao, D, Yu, MC, Habnkin, JH, et al. (1998) Total isothiocyanate contents in cooked vegetables frequently consumed in Singapore. J Agric Food Chem 46, 10551058.CrossRefGoogle Scholar
Jongen, WMF (1996) Glucosinolates in Brassica: occurrence and significance as cancer-modulating agents. Proc Nutr Soc 55, 433446.Google Scholar
Kassahun, BW, Velisek, J, Davidek, J & Hajslova, J (1995) The change of cabbage (Brassica oleracea L. var. capitata) glucosinolate content during storage. Potrav Vedy 13, 1324.Google Scholar
Kushad, MM, Brown, AF, Kurilich, AC, et al. (1999) Variation of glucosinolates in vegetable crops of Brassica oleracea. J Agric Food Chem 47, 15411548.CrossRefGoogle ScholarPubMed
Lewis, J & Fenwick, GR (1987) Glucosinolate content of Brassica vegetables: analysis of twenty-four cultivars of calabrese (green sprouting broccoli, Brassica oleracea L. var. botrytis subvar. cymosa Lam.). Food Chem 25, 259268.CrossRefGoogle Scholar
Lewis, J & Fenwick, GR (1988) Glucosinolate content of Brassica vegetables – Chinese cabbages Pe-tsai (Brassica pekinensis) and Pak-choi (Brassica chinensis). J Sci Food Agric 45, 379386.CrossRefGoogle Scholar
McDanell, R, McLean, AE, Hanley, AB, Heaney, RK & Fenwick, GR (1988) Chemical and biological properties of indole glucosinolates (glucobrassicins): a review. Food Chem Toxicol 26, 5970.CrossRefGoogle ScholarPubMed
McGregor, DI, Mullin, WJ & Fenwick, GR (1983) Analytical methodology for determining glucosinolate composition and content. J Assoc Off Anal Chem 66, 825849.Google Scholar
McMillan, M, Spinks, EA & Fenwick, GR (1986) Preliminary observations on the effect of dietary brussels sprouts on thyroid function. Human Toxicol 5, 1519.CrossRefGoogle ScholarPubMed
Mangels, AR, Holden, JM, Beecher, GR, Forman, MR & Lanza, E (1993) Carotenoid content of fruits and vegetables: an evaluation of analytic data. J Am Diet Assoc 93, 284296.CrossRefGoogle ScholarPubMed
National Food Authority (1995) NUTTAB95: Nutrient Data Table for Use in Australia. Canberra, Australia: Australian Government Publishing Service.Google Scholar
Nestle, M (1998) Broccoli sprouts in cancer prevention. Nutr Rev 56, 127130.CrossRefGoogle ScholarPubMed
Nugon-Baudon, L & Rabot, S (1994) Glucosinolates and glucosinolate derivatives: implications for protection against chemical carcinogenesis. Nutr Res Rev 7, 205231.Google Scholar
Peterson, J & Dwyer, J (2000) An informatics approach to flavonoid database development. J Food Comp Anal 13, 441454.Google Scholar
Pillow, PC, Duphorne, CM, Chang, S, et al. (1999) Development of a database for assessing dietary phytoestrogen intake. Nutr Cancer 33, 319.CrossRefGoogle ScholarPubMed
Rand, WM, Windham, CT, Wyse, BW & Young, VR (editors) (1987) Food Composition Data: A User's Perspective. Tokyo, Japan: United Nations University Press.Google Scholar
Reinli, K & Block, G (1996) Phytoestrogen content of foods – a compendium of literature values. Nutr Cancer 26, 123148.CrossRefGoogle Scholar
Rodrigues, AS & Rosa, EAS (1999) Effect of post-harvest treatments on the level of glucosinolates in broccoli. J Sci Food Agric 79, 10281032.3.0.CO;2-I>CrossRefGoogle Scholar
Rogers, J (1995) What Food is that? & How Healthy is it? Sydney, Australia: Lansdowne Publishing.Google Scholar
Rosa, EAS & Heaney, RK (1993) The effect of cooking and processing on the glucosinolate content: studies on four varieties of Portuguese cabbage and hybrid white cabbage. J Sci Food Agric 62, 259265.CrossRefGoogle Scholar
Shapiro, TA, Fahey, JW, Wade, KL, Stephenson, KK & Talalay, P (1998) Human metabolism and excretion of cancer chemoprotective glucosinolates and isothiocyanates of cruciferous vegetables. Cancer Epidemiol Biomarkers Prev 7, 10911100.Google ScholarPubMed
Shattuck, VI, Kakuda, Y, Shelp, BJ & Kakuda, N (1991) Chemical composition of turnip roots stored or intermittently grown at low temperature. J Am Soc Hort Sci 116, 818822.CrossRefGoogle Scholar
Shattuck, VI & Wang, W (1994) Growth stress induces glucosinolate changes in pakchoy (Brassica campestris ssp. chinensis). Can J Plant Sci 74, 595601.CrossRefGoogle Scholar
Sones, K, Heaney, RK & Fenwick, GR (1984 a) An estimate of the mean daily intake of glucosinolates from cruciferous vegetables in the UK. J Sci Food Agric 35, 712719.CrossRefGoogle Scholar
Sones, K, Heaney, RK & Fenwick, GR (1984 b) The glucosinolate content of UK vegetables – cabbage (Brassica oleracea), swede (B. Napus) and turnip (B. capestris). Food Addit Contam 1, 289296.CrossRefGoogle Scholar
Sones, K, Heaney, RK & Fenwick, GR (1984 c) Glucosinolates in Brassica vegetables Analysis of twenty-seven cauliflower cultivars (Brassica oleracea L. var. botrytis subvar. cauliflora DC). J Sci Food Agric 35, 762766.CrossRefGoogle Scholar
Steinmetz, KA & Potter, JD (1991) Vegetables, fruit and cancer. II. Mechanisms. Cancer Causes Control 2, 427442.CrossRefGoogle ScholarPubMed
Talalay, P & Fahey, JW (2001) Phytochemicals from cruciferous plants protect against cancer by modulating carcinogen metabolism. J Nutr 131, 3027S3033S.CrossRefGoogle ScholarPubMed
Tiedink, HGM, Davies, JAR, Van Broekhoven, LW, Van Der Kamp, HJ & Jongen, WMF (1988) Formation of mutagenic N-nitroso compounds in vegetable extracts upon nitrite treatment: a comparison with the glucosinolate content. Food Chem Toxicol 26, 947954.Google Scholar
United States Department of Agriculture (1998) USDA-NCC Carotenoid Database for U.S. Foods, http://www.nal.usda.gov/ fnic/foodcomp/Data/car98/car98.htmlGoogle Scholar
United States Department of Agriculture and Iowa State University (2000) Database on the Isoflavone Content of Foods, Release 1.1. Nutrient Data Laboratory Homepage. http://www. nal.usda.gov/fnic/foodcomp/Data/isoflav/isoflav.htmlGoogle Scholar
United States National Library of Medicine (2000) Medline. 1966–2000. Bethesda, MD: United States National Library of Medicine.Google Scholar
Van Doorn, HE, Van Der, Kruk GC & Van Holst, GJ (1999) Large scale determination of glucosinolates in Brussels sprouts samples after degradation of endogenous glucose. J Agric Food Chem 47, 10291034.CrossRefGoogle ScholarPubMed
VanEtten, CH, Daxenbickler, ME, Tookey, HL, Kwolek, WF, Williams, PH & Yoder, OC (1980) Glucosinolates: Potential toxicants in cabbage cultivars. J Am Soc Hort Sci 105, 710714.CrossRefGoogle Scholar
Van Poppel, G, Verhoeven, DT, Verhagan, H & Goldbohm, RA (1999) Brassica vegetables and cancer prevention: Epidemiology and mechanisms. Adv Exp Med and Biol 472, 159168.Google Scholar
Verhoeven, DT, Goldbohm, RA, van Poppel, G, Verhagen, H & van den, Brandt PA (1996) Epidemiological studies on brassica vegetables and cancer risk. Cancer Epidemiol Biomarkers Prev 5, 733748.Google ScholarPubMed
Verhoeven, DTH, Verhagan, H, Goldbohm, RA, Van der, Brandt PA & Van, Poppel G (1997) A review of mechanisms underlying anticarcinogenicity by brassica vegetables. Chem Biol Interact 103, 79129.CrossRefGoogle ScholarPubMed
Verkerk, R, Dekker, M & Jongen, WMF (2001) Post-harvest increase of indolyl glucosinolates in response to chopping and storage of Brassica vegetables. J Sci Food Agric 81, 953958.Google Scholar
Verkerk, R, Van der, Gaag MS, Dekker, M & Jongen, WM (1997) Effects of processing conditions on glucosinolates in cruciferous vegetables. Cancer Lett 114, 193194.CrossRefGoogle ScholarPubMed
World Cancer Research Fund (1997) Food, Nutrition and the Prevention of Cancer: A Global Perspective. Washington, DC: American Institute for Cancer Research.Google Scholar
Yen, GC & Wei, QK (1993) Myrosinase activity and total glucosinolate content of cruciferous vegetables, and some properties of cabbage myrosinase in Taiwan. J Sci Food Agric 61, 471475.Google Scholar