Phytic acid interactions in food systems
- 1 December 1980
- journal article
- review article
- Published by Taylor & Francis in C R C Critical Reviews in Food Science and Nutrition
- Vol. 13 (4), 297-335
- https://doi.org/10.1080/10408398009527293
Abstract
Phytic acid is present in many plant systems, constituting about 1 to 5% by weight of many cereals and legumes. Concern about its presence in food arises from evidence that it decreases the bioavailability of many essential minerals by interacting with multivalent cations and/or proteins to form complexes that may be insoluble or otherwise unavailable under physiologic conditions. The precise structure of phytic acid and its salts is still a matter of controversy and lack of a good method of analysis is also a problem. It forms fairly stable chelates with almost all multivalent cations which are insoluble about pH 6 to 7, although pH, type, and concentration of cation have a tremendous influence on their solubility characteristics. In addition, at low pH and low cation concentration, phytate-protein complexes are formed due to direct electrostatic interaction, while at pH > 6 to 7, a ternary phytic acid-mineral-protein complex is formed which dissociates at high Na+ concentrations. These complexes appear to be responsible for the decreased bioavailability of the complexed minerals and are also more resistant to proteolytic digestion at low pH. Development of methods for producing low-phytate food products must take into account the nature and extent of the interactions between phytic acid and other food components. Simple mechanical treatment, such as milling, is useful for those seeds in which phytic acid tends to be localized in specific regions. Enzyme treatment, either directly with phytase or indirectly through the action of microorganisms, such as yeast during breadmaking, is quite effective, provided pH and other environmental conditions are favorable. It is also possible to produce low-phytate products by taking advantage of some specific interactions. For example, adjustment of pH and/or ionic strength so as to dissociate phytate-protein complexes and then using centrifugation or ultrafiltration (UF) has been shown to be useful. Phytic acid can also influence certain functional properties such as pH-solubility profiles of the proteins and the cookability of the seeds.Keywords
This publication has 127 references indexed in Scilit:
- INHIBITION DE LA PROTÉOLYSE PEPSIQUE IN VITRO PAR LE BLÉ. RÔLE DE L'ACIDE PHYTIQUE DES ISSUESAnnales de Biologie Animale Biochimie Biophysique, 1976
- EFFECT OF WHEAT PHYTASE ON DIETARY PHYTIC ACIDJournal of Food Science, 1975
- PHYTIC ACID IN SOY AND ITS HYDROLYSIS DURING BREADMAKINGJournal of Food Science, 1974
- Factors which influence the amount and availability of trace elements in human food plantsPlant Foods for Human Nutrition, 1973
- The structure of myo-inositol hexaphosphate dodecasodium salt octatriacontahydrate: A single crystal X-ray analysisBiochemical and Biophysical Research Communications, 1971
- Indirect method for determination of phytic acid in plant extracts containing reducing substancesBiochimica et Biophysica Acta, 1962
- Dietary Phytate as a Possible Cause of Magnesium DeficiencyNature, 1960
- Phytin Elimination in Soybean Protein IsolationJournal of the American Chemical Society, 1957
- Determining Phytin Phosphorus. Stoithiometric Relation of Iron and Phosphorus in Ferric PhytateIndustrial & Engineering Chemistry Analytical Edition, 1944
- PHYTIC ACID AND IRON ABSORPTIONThe Lancet, 1943