Artículo

Estamos trabajando para incorporar este artículo al repositorio
Consulte el artículo en la página del editor
Consulte la política de Acceso Abierto del editor

Abstract:

The ability of egg white (EW) nanoparticles to bind folic acid (FA) and protect it through the gastrointestinal tract and the resulting properties of the mixtures as functional ingredient was investigated. Two kinds of EW nanoparticles (USN and TSN) were mixed with FA to generate nanocarriers (USF and TSF). The particle size distribution of USN remained unaltered after the binding of FA, while a little increase in particle size was observed for TSN. Zeta (ζ) potential and fluorescence intensity did not show any significant change after FA addition for both nanoparticles. The percentage of bound folic acid (% BFA) was 78.0 ± 9.1 and 79.7 ± 9.0, for USF and TSF, respectively. A slight formation of aggregates in the samples was observed after freeze-drying and redispersion of the nanocarriers, which was also confirmed by confocal laser scanning microscopy. Nanocarriers particle size did not change after adjusting the pH from 3 to 4, but strongly increased after adjusting it to 5, 6 or 7. The % BFA at pH 4 was similar to that at pH 3, but greatly decreased at pH 7. The bioavailability of FA for Lactobacillus rhamnosus was enhanced when the vitamin was incorporated in the form of digested nanocomplexes USF or TSF. The interaction of EW nanoparticles with FA has proven to be beneficial for the transport and release of FA after in vitro digestion. © 2015 Elsevier Ltd.

Registro:

Documento: Artículo
Título:Egg albumin-folic acid nanocomplexes: Performance as a functional ingredient and biological activity
Autor:Arzeni, C.; Pérez, O.E.; LeBlanc, J.G.; Pilosof, A.M.R.
Filiación:Departamento de Industrias, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Buenos Aires, Argentina
Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Buenos Aires, Argentina
Centro de Referencia para Lactobacilos (CERELA-CONICET), Tucumán, Argentina
Palabras clave:Biological activity; Egg white; Folic acid; Nanocomplexes; Nanoparticles
Año:2015
Volumen:18
Página de inicio:379
Página de fin:386
DOI: http://dx.doi.org/10.1016/j.jff.2015.07.018
Título revista:Journal of Functional Foods
Título revista abreviado:J. Funct. Foods
ISSN:17564646
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_17564646_v18_n_p379_Arzeni

Referencias:

  • Akhtar, M.J., Khan, M.A., Ahmad, I., Photodegradation of folic acid in aqueous solution (1999) Journal of Pharmaceutical and Biomedical Analysis, 19 (3-4), pp. 269-275
  • Akhtar, M.J., Khan, M.A., Ahmad, I., Identification of photoproducts of folic acid and its degradation pathways in aqueous solution (2003) Journal of Pharmaceutical and Biomedical Analysis, 31 (3), pp. 579-588
  • (1980) Official methods of analysis of the Association of Official Analytical Chemists, , Washington DC, USA
  • Arzeni, C., Martínez, K., Zema, P., Arias, A., Pérez, O.E., Pilosof, A.M.R., Comparative study of high intensity ultrasound effects on food proteins functionality (2012) Journal of Food Engineering, 108 (3), pp. 463-472
  • Arzeni, C., Pérez, O.E., Pilosof, A.M.R., Power ultrasound assisted design of egg albumin nanoparticles (2015) Food Biophysics, , press
  • Bourassa, P., Hasni, I., Tajmir-Riahi, H.A., Folic acid complexes with human and bovine serum albumins (2011) Food Chemistry, 129 (3), pp. 1148-1155
  • Chen, L., Remondetto, G.E., Subirade, M., Food protein-based materials as nutraceutical delivery systems (2006) Trends in Food Science & Technology, 17 (5), pp. 272-283
  • Colman, N., Hettiarachchy, N., Herbert, V., Detection of a milk factor that facilitates folate uptake by intestinal cells (1981) Science, 211 (4489), pp. 1427-1429
  • de Jong, R.J., Verwei, M., West, C.E., van Vliet, T., Siebelink, E., van den Berg, H., Castenmiller, J.J.M., Bioavailability of folic acid from fortified pasteurised and UHT-treated milk in humans (2005) European Journal of Clinical Nutrition, 59 (8), pp. 906-913
  • Food standards: Amendment of standards of identity for enriched grain products to require addition of folic acid (1996) Federal Register, 21, pp. 8781-8797. , final rule CFR parts 136, 137, and 139)
  • Ford, J.E., Some observations on the possible nutritional significance of vitamin B12- and folate-binding proteins in milk (1974) British Journal of Nutrition, 31 (2), pp. 243-257
  • Ford, J.E., Knaggs, G.S., Salter, D.N., Scott, K.J., Folate nutrition in the kid (1972) The British Journal of Nutrition, 27 (3), pp. 571-583
  • Iyer, R., Tomar, S.K., Folate: A functional food constituent (2009) Journal of Food Science, 74 (9), pp. R114-R122
  • Jha, N.S., Kishore, N., Thermodynamic studies on the interaction of folic acid with bovine serum albumin (2011) The Journal of Chemical Thermodynamics, 43 (5), pp. 814-821
  • Lakowicz, J.R., Introduction to fluorescence (2006) Principles of fluorescence spectroscopy, p. 15. , Springer US, New York, USA, J.R. Lakowicz (Ed.)
  • Levine, R.L., Federici, M.M., Quantitation of aromatic residues in proteins: Model compounds for second-derivative spectroscopy (1982) Biochemistry, 21 (11), pp. 2600-2606
  • Liang, L., Subirade, M., Study of the acid and thermal stability of β-lactoglobulin-ligand complexes using fluorescence quenching (2002) Food Chemistry, 132 (4), pp. 2023-2029
  • Liang, L., Subirade, M., β-lactoglobulin/folic acid complexes: Formation, characterization, and biological implication (2010) The Journal of Physical Chemistry B, 114 (19), pp. 6707-6712
  • Liang, L., Zhang, J., Zhou, P., Subirade, M., Protective effect of ligand-binding proteins against folic acid loss due to photodecomposition (2013) Food Chemistry, 141 (2), pp. 754-761
  • Martínez, K.D., Carrera Sánchez, C., Rodríguez Patino, J.M., Pilosof, A.M.R., Interfacial and foaming properties of soy protein and their hydrolysates (2009) Food Hydrocolloids, 23 (8), pp. 2149-2157
  • Mason, J.B., Selhub, J., Folate-binding protein and the absorption of folic acid in the small intestine of the suckling rat (1988) The American Journal of Clinical Nutrition, 48 (3), pp. 620-625
  • Moreno, F.J., Mellon, F.A., Wickham, M.S.J., Bottrill, A.R., Mills, E.N.C., Stability of the major allergen Brazil nut 2S albumin (Ber e 1) to physiologically relevant in vitro gastrointestinal digestion (2005) FEBS Journal, 272 (2), pp. 341-352
  • Nedovic, V., Kalusevic, A., Manojlovic, V., Levic, S., Bugarski, B., An overview of encapsulation technologies for food applications (2011) Procedia Food Science, 1, pp. 1806-1815
  • Paine-Wilson, B., Chen, T.S., Thermal destruction of folacin: Effect of pH and buffer ions (1979) Journal of Food Science, 44 (3), pp. 717-722
  • Pérez, O.E., David-Birman, T., Kesselman, E., Levi-Tal, S., Lesmes, U., Milk protein-vitamin interactions: Formation of beta-lactoglobulin/folic acid nano-complexes and their impact on in vitro gastro-duodenal proteolysis (2014) Food Hydrocolloids, 38, pp. 40-47
  • Said, H.M., Horne, D.W., Wagner, C., Effect of human milk folate binding protein on folate intestinal transport (1986) Archives of Biochemistry and Biophysics, 251 (1), pp. 114-120
  • Salter, D.N., Mowlem, A., Neonatal role of milk folate-binding protein: Studies on the course of digestion of goat's milk folate binder in the 6-d-old kid (1983) The British Journal of Nutrition, 50 (3), pp. 589-596
  • Spies, J.R., Determination of tryptophan in proteins (1967) Analytical Chemistry, 39 (12), pp. 1412-1416
  • Stevanovic, M., Radulovic, A., Jordovic, B., Uskokovic, D., Poly(DL-lactide-co-glycolide) nanospheres for the sustained release of folic acid (2008) Journal of Biomedical Nanotechnology, 4 (3), pp. 349-358
  • Swiatlo, N., O'Connor, D.L., Andrews, J., Picciano, M.F., Relative folate bioavailability from diets containing human, bovine and goat milk (1990) The Journal of Nutrition, 120 (2), pp. 172-177
  • Tani, M., Iwai, K., Some nutritional effects of folate-binding protein in bovine milk on the bioavailability of folate to rats (1984) The Journal of Nutrition, 114 (4), pp. 778-785
  • Tannenbaum, S.R., Archer, V.R., Young, M.C., Vitamins and minerals (1985) Food chemistry, , Marcel Dekker, New York, O.R. Fennema (Ed.)
  • Teng, Z., Luo, Y., Wang, T., Zhang, B., Wang, Q., Development and application of nanoparticles synthesized with folic acid conjugated soy protein (2013) Journal of Agricultural and Food Chemistry, 61, pp. 2556-2564
  • Verwei, M., Arkbage, K., Mocking, H., Havenaar, R., Groten, J., The binding of folic acid and 5-methyltetrahydrofolate to folate-binding proteins during gastric passage differs in a dynamic in vitro gastrointestinal model (2004) Journal of Nutrition, 134 (1), pp. 31-37
  • Defining and setting programme goal (2006) Guidelines on food fortifications with micronutrients, p. 145. , WHO Press, Switzerland, L. Allen, B. de Benoist, O. Dary, R. Hurrell (Eds.)
  • Wu, Z., Li, X., Hou, C., Qian, Y., Solubility of folic acid in water at pH values between 0 and 7 at temperatures (298.15, 303.15, and 313.15) K (2010) Journal of Chemical & Engineering Data, 55 (9), pp. 3958-3961
  • Ye, L., Eitenmiller, R.R., Landen, W.O., Folate and folic acid (2007) Vitamin analysis for the health and food sciences, pp. 443-505. , CRC Press, Boca Raton, FL, USA, R.R. Eitenmiller, L. Ye, W.O. LandenJr (Eds.)
  • Zhang, Y., Li, J., Lang, M., Tang, X., Li, L., Shen, X., Folate-functionalized nanoparticles for controlled 5-Fluorouracil delivery (2011) Journal of Colloid and Interface Science, 354 (1), pp. 202-209
  • Zhao, D., Zhao, X., Zu, Y., Li, J., Zhang, Y., Jiang, R., Zhang, Z., Preparation, characterization, and in vitro targeted delivery of folate-decorated paclitaxel-loaded bovine serum albumin nanoparticles (2010) International Journal of Nanomedicine, 5, pp. 669-677

Citas:

---------- APA ----------
Arzeni, C., Pérez, O.E., LeBlanc, J.G. & Pilosof, A.M.R. (2015) . Egg albumin-folic acid nanocomplexes: Performance as a functional ingredient and biological activity. Journal of Functional Foods, 18, 379-386.
http://dx.doi.org/10.1016/j.jff.2015.07.018
---------- CHICAGO ----------
Arzeni, C., Pérez, O.E., LeBlanc, J.G., Pilosof, A.M.R. "Egg albumin-folic acid nanocomplexes: Performance as a functional ingredient and biological activity" . Journal of Functional Foods 18 (2015) : 379-386.
http://dx.doi.org/10.1016/j.jff.2015.07.018
---------- MLA ----------
Arzeni, C., Pérez, O.E., LeBlanc, J.G., Pilosof, A.M.R. "Egg albumin-folic acid nanocomplexes: Performance as a functional ingredient and biological activity" . Journal of Functional Foods, vol. 18, 2015, pp. 379-386.
http://dx.doi.org/10.1016/j.jff.2015.07.018
---------- VANCOUVER ----------
Arzeni, C., Pérez, O.E., LeBlanc, J.G., Pilosof, A.M.R. Egg albumin-folic acid nanocomplexes: Performance as a functional ingredient and biological activity. J. Funct. Foods. 2015;18:379-386.
http://dx.doi.org/10.1016/j.jff.2015.07.018