Antioxidant mechanism of milk mineral-high-affinity iron binding

K Allen1, D Cornforth

  • 1Nutrition and Food Sciences, Utah State Univ., Logan, UT 84322-8700, USA. sln2k@cc.usu.edu

Journal of Food Science
|November 13, 2007
PubMed

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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