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Updated: Jul 7, 2026

Quantitating Iron Transport Across the Mouse Placenta In Vivo Using Nonradioactive Iron Isotopes
Published on: May 10, 2022
Iron metabolism and infection
1Department of Biological Sciences, University of Hull, United Kingdom. c.ratledge@hull.ac.uk
Abstract:
The review highlights the intrinsic problems in the acquisition of ferric iron (FeIII) by pathogenic microorganisms, and bacteria in particular, during their infection of animals. Acquisition of iron from host sources, such as ferritin, transferrin, and heme compounds, is discussed. Acquisition can be by direct contact, via a surface receptor protein of the bacterium, with one of the iron-containing compounds, but more frequently iron is acquired by the production of a siderophore. Over 500 different siderophores are now known; they work by having a superior binding power to that of the host iron-containing materials. They literally strip the iron out of these molecules. They are low-molecular-weight (< 1,000 Da) compounds that are produced in response to iron deprivation, which is a primary host defense mechanism against infections. The iron-siderophore complex is small enough to be taken up into the bacterial cells, usually via an active transport process; the iron is removed from the siderophore, normally by a reductive process, and is then incorporated into the various apoproteins of the bacterial cell or is stored within the bacteria in the form of bacterioferritin. To combat the effectiveness of the siderophores, animals may synthesize specific proteins to bind and nullify their action. The role of one such protein, siderocalin (= lipocalin 2), is discussed. However, these countermeasures have, in turn, been thwarted by at least one bacterium, Salmonella, glycosylating its siderophore (enterobactin/enterochelin) so that binding of the modified siderophore (now termed salmochelin) with lipocalin can no longer occur.
Insights
Pathogenic bacteria acquire iron using potent siderophores that chelate host iron. Some bacteria, like Salmonella, evade host defenses by modifying siderophores, highlighting a critical aspect of microbial iron acquisition strategies.
Area of Science:
- Microbiology
- Biochemistry
- Immunology
Background:
- Pathogenic microorganisms require iron for survival and virulence.
- Host organisms tightly regulate iron availability as a defense mechanism against infection.
- Bacteria have evolved sophisticated strategies to acquire iron from host sources.
Purpose of the Study:
- To review the mechanisms of ferric iron (FeIII) acquisition by pathogenic bacteria.
- To discuss bacterial strategies involving siderophores and host countermeasures.
- To highlight bacterial adaptations to overcome host iron-binding proteins.
Main Methods:
- Review of scientific literature on microbial iron acquisition.
- Discussion of iron-containing host molecules (ferritin, transferrin, heme).
- Analysis of siderophore structure, function, and bacterial uptake mechanisms.
Main Results:
- Bacteria acquire iron via direct contact or siderophore production.
- Over 500 siderophores are known, possessing high iron-binding affinity.
- Bacteria internalize iron-siderophore complexes through active transport.
- Host protein siderocalin (lipocalin 2) neutralizes siderophores.
- Salmonella modifies enterobactin to salmochelin, evading siderocalin binding.
Conclusions:
- Siderophores are crucial for bacterial iron acquisition, enabling pathogens to overcome host iron restriction.
- Bacterial modification of siderophores, such as salmochelin production, represents an evolutionary adaptation to circumvent host immune defenses.
- Understanding these intricate iron acquisition pathways is vital for developing novel antimicrobial strategies.
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