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Updated: Jul 10, 2026

The Caco-2 Cell Bioassay for Measurement of Food Iron Bioavailability
Published on: April 28, 2022
Antioxidant mechanism of milk mineral-high-affinity iron binding
1Nutrition and Food Sciences, Utah State Univ., Logan, UT 84322-8700, USA. sln2k@cc.usu.edu
Abstract:
Milk mineral (MM), a by-product of whey processing, is an effective antioxidant in meat systems, but the antioxidant mechanism has not been established. MM has been postulated to chelate iron and prevent iron-catalysis of lipid oxidation. The objective of this research was to examine this putative mechanism. MM was compared to sodium tripolyphosphate (STPP), calcium phosphate monobasic (CPM), and calcium pyrophosphate (CPP) to determine iron-binding capacity, sample solubility, and eluate soluble phosphorus after treating samples with a ferrous chloride standard. Scanning electron microscopy with energy-dispersive X-ray analysis was used to localize minerals on iron-treated MM particle surfaces. Histochemical staining for calcium was performed on raw and cooked ground beef samples with added MM. MM bound more iron per gram (P < 0.05) than the other compounds, and was much less soluble (P < 0.05) than either STPP or CPM. Mineral localization showed an even distribution of calcium, phosphorus, oxygen, and iron across the MM particle surface, directly demonstrating iron binding to MM particles. Unlike other common chelating agents, such as STPP and citrate, histochemical staining demonstrated that MM remained insoluble in ground beef, even after cooking. The ability of MM to bind iron and remain insoluble may enhance its antioxidant effect by removing iron ions from solution. However, MM particles must be small and well distributed in order to adequately bind iron throughout the food system.
Insights
Milk mineral (MM), a whey by-product, effectively binds iron in meat systems, enhancing its antioxidant properties. This insoluble compound prevents iron-catalyzed oxidation, improving meat quality.
Area of Science:
- Food Science
- Meat Science
- Food Chemistry
Background:
- Milk mineral (MM), a whey processing by-product, shows antioxidant potential in meat.
- Its mechanism, particularly iron chelation, remains unestablished.
- Understanding MM's antioxidant role is crucial for meat preservation.
Purpose of the Study:
- To investigate the iron-binding capacity of MM.
- To elucidate the mechanism of MM's antioxidant activity in meat systems.
- To compare MM's iron-binding and solubility with other chelating agents.
Main Methods:
- Assessed iron-binding capacity and solubility of MM, STPP, CPM, and CPP.
- Utilized scanning electron microscopy with energy-dispersive X-ray analysis for mineral localization.
- Employed histochemical staining for calcium in raw and cooked ground beef with MM.
Main Results:
- MM demonstrated significantly higher iron binding per gram compared to STPP, CPM, and CPP.
- MM exhibited significantly lower solubility than STPP and CPM.
- SEM-EDX confirmed iron binding on MM particle surfaces, and histochemical staining showed MM's insolubility post-cooking.
Conclusions:
- MM effectively binds iron and remains insoluble in meat, even after cooking.
- This insoluble iron binding is a likely mechanism for MM's antioxidant effect in meat.
- Optimal antioxidant efficacy of MM depends on small, well-distributed particles for comprehensive iron binding.
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