Bioengineering Laboratory, ISEP-School of Engineering, Polytechnic Institute of Porto, rua Dr António Bernardino de Almeida, 431, 4249-015, Porto, Portugal.
CEB-Centre of Biological Engineering, University of Minho, 4710-057, Braga, Portugal.
Appl Microbiol Biotechnol. 2022 Jun;106(11):3985-4004. doi: 10.1007/s00253-022-11995-y. Epub 2022 Jun 8.
Iron (Fe) is an essential element in several fundamental cellular processes. Although present in high amounts in the Earth's crust, Fe can be a scarce element due to its low bioavailability. To mitigate Fe limitation, microorganism (bacteria and fungi) and grass plant biosynthesis and secret secondary metabolites, called siderophores, with capacity to chelate Fe(III) with high affinity and selectivity. This review focuses on the current state of knowledge concerning the production of siderophores by bacteria. The main siderophore types and corresponding siderophore-producing bacteria are summarized. A concise outline of siderophore biosynthesis, secretion and regulation is given. Important aspects to be taken into account in the selection of a siderophore-producing bacterium, such as biological safety, complexing properties of the siderophores and amount of siderophores produced are summarized and discussed. An overview containing recent scientific advances on culture medium formulation and cultural conditions that influence the production of siderophores by bacteria is critically presented. The recovery, purification and processing of siderophores are outlined. Potential applications of siderophores in different sectors including agriculture, environment, biosensors and the medical field are sketched. Finally, future trends regarding the production and use of siderophores are discussed. KEY POINTS : • An overview of siderophore production by bacteria is critically presented • Scientific advances on factors that influence siderophores production are discussed • Potential applications of siderophores, in different fields, are outlined.
铁(Fe)是几个基本细胞过程中的必需元素。尽管地壳中含有大量的铁,但由于其生物利用度低,铁可能是一种稀缺元素。为了缓解铁限制,微生物(细菌和真菌)和草本植物会合成和分泌次生代谢物,称为铁载体,它们能够与 Fe(III) 以高亲和力和选择性螯合。本综述重点介绍了目前关于细菌产生铁载体的知识现状。总结了主要的铁载体类型和相应的产铁载体细菌。简要概述了铁载体的生物合成、分泌和调控。总结并讨论了在选择产铁载体细菌时需要考虑的重要方面,如生物安全性、铁载体的络合特性和产生的铁载体数量。批判性地介绍了影响细菌产生铁载体的培养基配方和培养条件的最新科学进展概述。概述了铁载体的回收、纯化和加工。简述了铁载体在农业、环境、生物传感器和医疗领域等不同领域的潜在应用。最后,讨论了关于铁载体生产和应用的未来趋势。要点:•批判性地介绍了细菌产生铁载体的概述•讨论了影响铁载体生产的因素的科学进展•概述了铁载体在不同领域的潜在应用。