|
|
|
|
Manuscript received 12 December 1997. Initial reviews completed 1 March 1998. Revision accepted 6 July 1998.
Jean Mayer USDA Human Nutrition Research Center on Aging at Tufts University, Boston, MA 02111
The intestinal absorption of folate occurs at the monoglutamyl level, and an important measure of food folate bioavailability is how much folate from the food reaches the intestinal sites in forms that can readily be absorbed. In the absence of protecting agents, e.g., vitamin C and reduced thiols, many labile folates may be lost during cooking and during residence in the acid-peptic milieu of the stomach. On the other hand, the presence of polyglutamyl folate necessitates the action of intestinal hydrolases, which could be affected by food constituents. In this study, we developed an in vitro assay for the determination of an index of food folate availability. The index of folate availability in this study was defined as that proportion of folate that has been identified as monoglutamyl derivatives after tests for stability and susceptibility to an enzymatic hydrolysis. The index of folate availability varied widely among foods. The highest index was for egg yolk (72.2%), followed by cow`s livers (55.7%), orange juice (21.3%), cabbage (6.0%), lima beans (4.5%) and lettuce (2.9%). Yeast folate had the lowest index (0.3%). The availability indices generated by this study correlate with the indices of the bioavailability of the corresponding food folate observed in earlier studies, R2 = 0.529 (P = 0.068). Additional information is required on the bioavailability of other food products to test the usefulness of this in vitro approach for assessing food folate availability.
Key words: food folate, folate distribution, intestinal pteroylpolyglutamate hydrolase, folate bioavailability.
The Journal of Nutrition Vol. 128 No. 11 November 1998,
pp. 1956-1960
Copyright ©1998 by the American Society for Nutritional Sciences
This article has been cited by other articles:
![]() |
J. C. Figueiredo, A. J. Levine, M. V. Grau, E. L. Barry, P. M. Ueland, D. J. Ahnen, T. Byers, R. S. Bresalier, R. W. Summers, J. Bond, et al. Colorectal Adenomas in a Randomized Folate Trial: The Role of Baseline Dietary and Circulating Folate Levels Cancer Epidemiol. Biomarkers Prev., October 1, 2008; 17(10): 2625 - 2631. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. Inoue, Y. Nakai, S. Ueda, S. Kamigaso, K.-y. Ohta, M. Hatakeyama, Y. Hayashi, M. Otagiri, and H. Yuasa Functional characterization of PCFT/HCP1 as the molecular entity of the carrier-mediated intestinal folate transport system in the rat model Am J Physiol Gastrointest Liver Physiol, March 1, 2008; 294(3): G660 - G668. [Abstract] [Full Text] [PDF] |
||||
![]() |
Y. Nakai, K. Inoue, N. Abe, M. Hatakeyama, K.-y. Ohta, M. Otagiri, Y. Hayashi, and H. Yuasa Functional Characterization of Human Proton-Coupled Folate Transporter/Heme Carrier Protein 1 Heterologously Expressed in Mammalian Cells as a Folate Transporter J. Pharmacol. Exp. Ther., August 1, 2007; 322(2): 469 - 476. [Abstract] [Full Text] [PDF] |
||||
![]() |
X. Xu, M. D. Gammon, H. Zhang, J. G. Wetmur, M. Rao, S. L. Teitelbaum, J. A. Britton, A. I. Neugut, R. M. Santella, and J. Chen Polymorphisms of one-carbon-metabolizing genes and risk of breast cancer in a population-based study Carcinogenesis, July 1, 2007; 28(7): 1504 - 1509. [Abstract] [Full Text] [PDF] |
||||
![]() |
X. Xu, M. D Gammon, J. G Wetmur, M. Rao, M. M Gaudet, S. L Teitelbaum, J. A Britton, A. I Neugut, R. M Santella, and J. Chen A functional 19-base pair deletion polymorphism of dihydrofolate reductase (DHFR) and risk of breast cancer in multivitamin users Am. J. Clinical Nutrition, April 1, 2007; 85(4): 1098 - 1102. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Melse-Boonstra, P. Verhoef, C. E West, J. A van Rhijn, R. B van Breemen, J. J. Lasaroms, S. D Garbis, M. B Katan, and F. J Kok A dual-isotope-labeling method of studying the bioavailability of hexaglutamyl folic acid relative to that of monoglutamyl folic acid in humans by using multiple orally administered low doses. Am. J. Clinical Nutrition, November 1, 2006; 84(5): 1128 - 1133. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. J McKillop, H. McNulty, J. M Scott, J. M McPartlin, J. Strain, I. Bradbury, J. Girvan, L. Hoey, R. McCreedy, J. Alexander, et al. The rate of intestinal absorption of natural food folates is not related to the extent of folate conjugation Am. J. Clinical Nutrition, July 1, 2006; 84(1): 167 - 173. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. A. Orjuela, L. Titievsky, X. Liu, M. Ramirez-Ortiz, V. Ponce-Castaneda, E. Lecona, E. Molina, K. Beaverson, D. H. Abramson, and N. E. Mueller Fruit and Vegetable Intake during Pregnancy and Risk for Development of Sporadic Retinoblastoma Cancer Epidemiol. Biomarkers Prev., June 1, 2005; 14(6): 1433 - 1440. [Abstract] [Full Text] [PDF] |
||||
![]() |
W. G Johnson, T. O Scholl, J. R Spychala, S. Buyske, E. S Stenroos, and X. Chen Common dihydrofolate reductase 19-base pair deletion allele: a novel risk factor for preterm delivery Am. J. Clinical Nutrition, March 1, 2005; 81(3): 664 - 668. [Abstract] [Full Text] [PDF] |
||||
![]() |
W. Sybesma, E. van den Born, M. Starrenburg, I. Mierau, M. Kleerebezem, W. M. de Vos, and J. Hugenholtz Controlled Modulation of Folate Polyglutamyl Tail Length by Metabolic Engineering of Lactococcus lactis Appl. Envir. Microbiol., December 1, 2003; 69(12): 7101 - 7107. [Abstract] [Full Text] [PDF] |
||||
![]() |
W. Sybesma, M. Starrenburg, M. Kleerebezem, I. Mierau, W. M. de Vos, and J. Hugenholtz Increased Production of Folate by Metabolic Engineering of Lactococcus lactis Appl. Envir. Microbiol., June 1, 2003; 69(6): 3069 - 3076. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. A. Caudill, L. B. Bailey, and J. F. Gregory III. Consumption of the Folate Breakdown Product para-Aminobenzoylglutamate Contributes Minimally to Urinary Folate Catabolite Excretion in Humans: Investigation Using [13C5]para-Aminobenzoylglutamate J. Nutr., September 1, 2002; 132(9): 2613 - 2616. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. F. Gregory III Case Study: Folate Bioavailability J. Nutr., April 1, 2001; 131(4): 1376S - 1382. [Abstract] [Full Text] |
||||