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1.
A culture medium for Paracoccidioides brasiliensis with high plating efficiency, and the effect of siderophores // J. Med. and Vet. Mycol., 1988. Vol. 26 , N6.-С.351-358

2.
A potential role for the major iron-regulated protein expressed by pathogenic Neisseria species // Rev. Infec. Diseases, 1988. Vol. 10, Suppl. 2[].-С.306-310

3.
A siderophore peptide synthetase gene from plant-growth-promoting Pseudomonas putida WCS358 // Syst. and Appl. Microbiol., 2001. Vol. 24, N 3.-С.321-330

4.
Adams John B. Rock weathering in deserts: mobilization and concentration of ferric iron by microorganisms // Geomicrobiol. J., 1992. Vol. 10, N 2.-С.99-114

5.
Albrecht-Gary Bacterial siderophores: Iron exchange mechanism with ethylenediaminetetraacetic acid // New J. Chem., 1995. Vol. 19, N 1.-С.105-113

6.
Alr0397 is an outer membrane transporter for the siderophore schizokinen in Anabaena sp. strain PCC 7120 // J. Bacteriol., 2008. Vol. 190, N 22.-С.7500-7507

7.
Alr0397 is an outer membrane transporter for the siderophore schizokinen in Anabaena sp. strain PCC 7120 // J. Bacteriol., 2008. Vol. 190, N 22.-С.7500-7507

8.
Amonabactin, a novel tryptophan- or phenylalanine-containing phenolate siderophore in Aeromonas hydrophila // J. Bacteriol., 1989. Vol. 71, N 4.-С.1811-1816

9.
An extracytoplasmic function sigma factor-mediated cell surface signaling system in Pseudomonas syringae pv. tomato DC3000 regulates gene expression in response to heterologous siderophores // J. Bacteriol., 2011. Vol. 193, N 20.-С.5775-5783

10.
Analysis of the draft genome of Pseudomonas fluorescens ATCC17400 indicates a capacity to take up iron from a wide range of sources, including different exogenous pyoverdines // Biometals, 2014. Vol. 27, N 4.-С.633-644

11.
Anderson Mark T. The Bordetella Bfe system: Growth and transcriptional response to siderophores, catechols, and neuroendocrine catecholamines // J. Bacteriol., 2006. Vol. 188, N 16.-С.5731-5740

12.
Anderson Mark T. The Bordetella Bfe system: Growth and transcriptional response to siderophores, catechols, and neuroendocrine catecholamines // J. Bacteriol., 2006. Vol. 188, N 16.-С.5731-5740

13.
Armstrong Sandra K. Molecular analysis of the Escherichia coli ferric enterobactin receptor FepA // J. Biol. Chem., 1990. Vol. 265, N 24.-С.14536-14543

14.
Aronson Dallas B. Frankia produces a hydroxamate siderophore under iron limitation // J. Plant Nutr., 1992. Vol. 15, N 10.-С.2193-2201

15.
Aronson Dallas B. Growth and siderophore formation in six iron-limited strains of Frankia // Soil Biol. and Biochem., 1994. Vol. 26, N 5.-С.561-567

16.
Assessment of biological and colony hybridization assays for detection of the aerobactin system in Escherichia coli from urinary tract infections // Med. Microbiol. and Immunol., 1989. Vol. 178, N 3.-С.143-148

17.
Awaya Jonathan D. Identification, isolation, and analysis of a gene cluster involved in iron acquisition by Pseudomonas mendocina ymp // Biometals, 2008. Vol. 21, N 3.-С.353-366

18.
Baakza Effect of amino acids on growth and siderophore production of fungi // Proc. Nat. Acad. Sci., India. B, 2004. Vol. 74, N 3-4.-С.277-282

19.
Baakza Effect of pH and incubation time on growth and siderophore production by certain fungi // Nat. Acad. Sci. Lett., 2003. Vol. 26, N 9-10.-С.276-285

20.
Bachhawat Anand K. Temperature inhibition of siderophore production in Azospirillum brasilense // J. Bacteriol, 1989. Vol. 171, N 7.-С.4092-4094

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