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February 9, 2026Microorganisms0 citationsOpen Access

Revealing Microbial Siderophores: From Genes to Applications

JCJionglin CaiYFYuting FangXLXia Liu

Key Points

  • The aim is to investigate microbial siderophore biosynthesis and its applications across various fields.
  • Review of genetic and biochemical studies on siderophores
  • Analysis of biosynthetic pathways including NRPS and NIS
  • Exploration of transport systems in bacteria and fungi
  • Examination of iron-responsive regulators and their gene clusters
  • Siderophores play crucial roles in microbial competition and interactions
  • Identified two main biosynthetic pathways involving NRPS and NIS
  • Highlighted diverse transport systems across Gram-negative, Gram-positive bacteria and fungi
  • Discussed applications in medicine, agriculture, environmental remediation, and biosensing.

Abstract

Iron is an essential micronutrient for nearly all microorganisms, yet its bioavailability is severely limited in most environments. To overcome this restriction, microorganisms produce siderophores, high-affinity iron-chelating molecules that play pivotal roles in microbial iron homeostasis, interspecies competition, and host–pathogen interactions. Despite extensive research, current understanding of siderophore biosynthetic and regulatory diversity remains largely limited to specific models, with comprehensive cross-taxonomic frameworks only beginning to emerge. This review systematically integrates recent advances in the genetic and biochemical foundations of microbial siderophore production, focusing on the two major biosynthetic pathways: nonribosomal peptide synthetase (NRPS)-dependent and NRPS-independent synthetase (NIS). We further elaborate on the diverse transport systems in Gram-negative and Gram-positive bacteria, as well as fungi, alongside the iron-responsive regulators (e.g., Fur) and gene clusters that coordinate iron uptake and utilization. Beyond physiological mechanisms, we discuss how these insights inform emerging applications of siderophores across multiple fields: in medicine, enabling “Trojan horse” antimicrobial strategies; in agriculture, enhancing plant iron uptake and serving as biocontrol agents; in environmental remediation, facilitating heavy-metal detoxification; and in biosensing, acting as selective probes for metals and pathogens. By bridging fundamental mechanisms with practical applications, this review aims to provide an integrative perspective for future exploration of microbial iron homeostasis and its biotechnological potential.

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Cite This Study

Cai et al. (2026) studied this question.

synapsesocial.com/papers/698979b9f0ec2af6756e7a71https://doi.org/10.3390/microorganisms14020393
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Petrobactin, a Photoreactive Siderophore Produced by the Oil-Degrading Marine Bacterium Marinobacter hydrocarbonoclasticus2001 · 225 citations
  2. 2Siderophores: Structure and Function of Microbial Iron Transport Compounds1995 · 1,648 citations
  3. 3Design and synthesis of fluorescence-based siderophore sensor molecules for FeIII ion determination2010 · 18 citations
  4. 4Ferric Uptake Regulator Fur Coordinates Siderophore Production and Defense against Iron Toxicity and Oxidative Stress and Contributes to Virulence in Chromobacterium violaceum2020 · 57 citations
  5. 5Purification of siderophores of Alcaligenes faecalis on Amberlite XAD2005 · 52 citations