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Food fortification with iron nanoparticles (NPs) could help prevent iron deficiency anemia, but the absorption pathway and biodistribution of iron-NPs and their bioavailability in humans is unclear. Dietary non-heme iron is physiologically absorbed via the divalent metal transporter-1 (DMT1) pathway. Using radio- iron isotope labelling in mice with a partial knockdown of intestine-specific DMT1, we assessed oral absorption and tissue biodistribution of nanostructured ferric phosphate (FePO4-NP; specific surface area [SSA] 98 m2g-1) compared to to ferrous sulfate (FeSO4), the reference compound. We show that absorption of iron from FePO4-NP appears to be largely DMT1 dependent and that its biodistribution after absorption is similar to that from FeSO4, without abnormal deposition of iron in the reticuloendothelial system. Furthermore, we demonstrate high bioavailability from iron NPs in iron deficient anemic women in a randomized, cross-over study using stable-isotope labelling: absorption and subsequent erythrocyte iron utilization from two 57Fe-labeled FePO4-NP with SSAs of 98 m2g-1 and 188 m2g-1 was 2.8-fold and 5.4-fold higher than from bulk FePO4 with an SSA of 25 m2g-1 (P 

Original publication

DOI

10.1038/s41598-022-06701-x

Type

Journal article

Journal

Sci Rep

Publication Date

18/02/2022

Volume

12

Keywords

Adsorption, Adult, Anemia, Iron-Deficiency, Animals, Biological Availability, Cation Transport Proteins, Dietary Supplements, Female, Ferric Compounds, Ferrous Compounds, Food, Fortified, Humans, Iron, Iron Radioisotopes, Metal Nanoparticles, Mice, Nanostructures, Young Adult