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Iron Physiology and Its Impact on Atopic Diseases: An EAACI Taskforce Report

  • Franziska Roth-Walter
  • , Ioana Agache
  • , Beatriz Cabanillas
  • , Roberto Berni Canani
  • , Pasquale Comberiati
  • , Holger Garn
  • , Cristina Gomez-Casado
  • , Karin Hufnagl
  • , Ekaterina Khaleva
  • , Gregorio P Milani
  • , Daniel Munblit
  • , Nikolaos Douladiris
  • , Liam O'Mahony
  • , Frank Redegeld
  • , Carmen Riggioni
  • , Peter K Smith
  • , Betty van Esch
  • , Emilia Vassilopoulou
  • , Carina Venter
  • , Diego G Peroni
  • University of Veterinary Medicine Budapest
  • Transylvania University
  • Department of Allergy and Clinical Immunology
  • Federico II University Hospital
  • University of Pisa
  • Philipps University Marburg
  • Scientific Advisory Unit
  • University of Southampton
  • Department of Clinical Sciences and Community Health
  • King's College London
  • Agricultural University of Athens
  • Utrecht University
  • The Hospital for Sick Children and the SickKids Food Allergy and Anaphylaxis Program
  • Griffith University Queensland
  • University of Colorado School of Medicine/Children's Hospital Colorado

Research output: Contribution to journalArticlepeer-review

Abstract

Iron is essential for oxygen transport, energy metabolism, and immune regulation. Yet iron deficiency is the most common micronutrient disorder across all age groups, affecting nearly one quarter of the global population. Iron deficiency triggers nutritional immunity, a host defense mechanism that withholds and redistributes iron, contributing to increased morbidity and mortality. This review outlines normal iron physiology, distribution and absorption pathways and on the consequences of deficiency across body compartments, with particular attention to type 2-driven diseases. Beyond anemia, insufficient iron availability disrupts immune homeostasis by promoting type 2 inflammation, elevating IgE, and activating mast cells and eosinophils. Regulatory macrophages, the central hub of iron cycling, adopt an inflammatory, iron-sequestering state that reinforces malabsorption and redistribution. Epidemiology studies show higher iron-deficiency risk in allergic individuals; low maternal iron or early-life iron predisposes to eczema, wheeze, and asthma, while food-allergen elimination (notably cow's milk) further worsens anemia risk. Clinical evidence indicates that restoring iron status through diet, supplementation, or fortification lowers IgE levels, improves lung function, and alleviates symptoms of rhinitis, urticaria, and asthma. Iron may therefore represent a modifiable determinant of allergic disease development and severity. Integrating iron assessment and nutritional care into allergy management may reduce disease burden and slow the progression of allergic march.

Original languageEnglish
Pages (from-to)2675-2712
Number of pages38
JournalAllergy
Volume81
Issue number8
Early online date6 Apr 2026
DOIs
Publication statusPublished - Aug 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • HIF1 alpha
  • HIF2 alpha
  • allergy
  • anemia of chronic inflammation
  • atopic diseases
  • atopy
  • hepcidin
  • inflammation
  • iron-deficiency
  • type 2

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