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Updated: Feb 21, 2026

Author Spotlight: Quantifying Siderophores and Pyochelin for Infection Control
Published on: March 15, 2024
Stenotrophomonas maltophilia produces an EntC-dependent catecholate siderophore that is distinct from enterobactin
Megan Y Nas1, Nicholas P Cianciotto1
1Department of Microbiology and Immunology, Northwestern University Medical School, Chicago, IL 60611, USA.
Abstract:
Stenotrophomonas maltophilia, a Gram-negative, multi-drug-resistant bacterium, is increasingly recognized as a key opportunistic pathogen. Thus, we embarked upon an investigation of S. maltophilia iron acquisition. To begin, we determined that the genome of strain K279a is predicted to encode a complete siderophore system, including a biosynthesis pathway, an outer-membrane receptor for ferrisiderophore, and other import and export machinery. Compatible with these data, K279a and other clinical isolates of S. maltophilia secreted a siderophore-like activity when grown at 25-37 °C in low-iron media, as demonstrated by a chrome azurol S assay, which detects iron chelation, and Arnow and Rioux assays, which detect catecholate structures. Importantly, these supernatants rescued the growth of iron-starved S. maltophilia, documenting the presence of a biologically active siderophore. A mutation in one of the predicted biosynthesis genes (entC) abolished production of the siderophore and impaired bacterial growth in low-iron conditions. Inactivation of the putative receptor gene (fepA) prevented the utilization of siderophore-containing supernatants for growth in low-iron conditions. Although the biosynthesis and import loci showed some similarity to those of enterobactin, a well-known catecholate made by enteric bacteria, the siderophore of K279a was unable to rescue the growth of an enterobactin-utilizing indicator strain, and conversely iron-starved S. maltophilia could not use purified enterobactin. Furthermore, the S. maltophilia siderophore displayed patterns of solubility in organic compounds and mobility upon thin-layer chromatography that were distinct from those of enterobactin and its derivative, salmochelin. Together, these data demonstrate that S. maltophilia secretes a novel catecholate siderophore.
Insights
Stenotrophomonas maltophilia secretes a novel siderophore for iron acquisition. This discovery impacts understanding of this opportunistic pathogen's growth and survival mechanisms.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Stenotrophomonas maltophilia is a multi-drug-resistant, opportunistic pathogen.
- Iron acquisition is crucial for bacterial survival and virulence.
- Understanding S. maltophilia's iron uptake mechanisms is essential for combating infections.
Purpose of the Study:
- To investigate the iron acquisition system of Stenotrophomonas maltophilia strain K279a.
- To identify and characterize the siderophore produced by S. maltophilia.
- To determine the role of specific genes in siderophore biosynthesis and transport.
Main Methods:
- Genomic analysis to predict iron acquisition genes.
- Chrome azurol S, Arnow, and Rioux assays to detect siderophore activity.
- Growth assays using iron-limited media and siderophore-containing supernatants.
- Genetic manipulation (gene mutation and inactivation) to study gene function.
- Biochemical characterization and comparison with known siderophores (enterobactin, salmochelin).
Main Results:
- S. maltophilia K279a genome encodes a complete siderophore system.
- Clinical isolates produced a siderophore-like activity in low-iron conditions.
- Mutating a biosynthesis gene (entC) abolished siderophore production and impaired growth.
- Inactivating a receptor gene (fepA) prevented siderophore utilization.
- The identified siderophore is distinct from enterobactin and salmochelin, indicating novelty.
Conclusions:
- Stenotrophomonas maltophilia produces and utilizes a novel catecholate siderophore for iron uptake.
- The characterized siderophore system is essential for bacterial growth in iron-limited environments.
- This finding provides new insights into the virulence factors of S. maltophilia.
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