14 Siderophore in Plant Nutritional Management …
327
and electrochemical behavior of ferric enterobactin and model complexes. J Am Chem Soc
101:6097–6104
Hernlem BJ, Vane LM, Sayles GD (1999) The application of siderophores for metal recovery
and waste remediation: examination of correlations for prediction of metal affinities. Water Res
33:951–960
Hu X, Boyer GL (1996) Siderophore-mediated aluminium uptake by Bacillus megaterium ATCC
19213. Appl Environ Microbiol 62:4044–4048
Kannahi M, Senbagam N (2014) Studies on siderophore production by microbial isolates obtained
from rhizosphere soil and its antibacterial activity. J Chem Pharm Res 6:1142–1145
Kloepper JW, Leong J, Teintze M, Schiroth MN (1980) Enhanced plant growth by siderophores
produced by plant growth promoting rhizobacteria. Nature 286:885–886
Krewulak KD, Vogel HJ (2008) Structural biology of bacterial iron uptake. Biochim Biophys Acta
1778:1781–1804
Kusari S, Hertweck C, Spiteller M (2012) Chemical ecology of endophytic fungi: origins of
secondary metabolites. Chem Biol 19(7):792–798
Leo VV, Passari AK, Joshi JB, Mishra VK, Uthandi S, Ramesh N, Gupta VK, Saikia R, Sonawane
VC, Singh BP (2016) A novel triculture system (CC3) for simultaneous enzyme production and
hydrolysis of common grasses through submerged fermentation. Front Microbiol 7
Loper JE, Henkels MD (1999) Utilization of heterologous siderophore enhances levels of iron
available to pseudomonas putida in the rhizosphere. Appl Environ Microbiol 65:5357–5363
Mahmoud ALE, Abd-Alla MH (2001) Siderophore production by some microorganisms and their
effect on Bradyrhizobium-Mung Bean symbiosis. Int J Agric Biol 03(2):157–162
Marschner H, Romheld V, Kissel M (1986) Different strategies in higher plants in mobilization and
uptake of iron. J Plant Nutr 9:695–713
Matzanke BF (1991) Structures, coordination chemistry and functions of microbial iron chelates.
In: Winkelmann G (ed) CRC handbook of microbial iron chelates. CRC Press, Boca Raton, FL,
USA, pp 15–64
Maurer B, Keller-Schierlein W (1968) Ferribactin, a siderochrome from Pseudomonas fluores-cens
Migula: 61. Mitteilung Ferribactin, einSiderochromaus Pseudomonas fluorescens Migula. Arch
Microbiol 60:326–339
May JJ, Wendrich TM, Marahiel MA (2001) The dhb Operon of Bacillussubtilis encodes the
biosynthetic template for the catecholicsiderophore 2, 3-dihydroxybenzoate-glycine-threonine
trimeric ester bacillibactin. J Biol Chem 276:7209–7217
Mc Loughlin T, Quinn J, Bettermann A, Bookland R (1992) Pseudomonas cepacia suppression of
sunflower. Pseudomonas cepacia. Wilt fungus and role of antifungal compounds in controlling
the disease. Appl Environ Microbiol 58(3):1760–1763
McGrath SP, Chaudri AM, Giller KE (1995) Long-term effects of metals in sewage sluge on soils,
microorganisms and plants. J Ind Microbiol 14(2):94–104
Meiwes J, Fiedler HP, Haag H, Zahner H, Konetschny-Rapp S, Jung G (1990) Isolation and characterization of staphyloferrin A, a compound with siderophore activity from Staphylococcus hyicus
DSM 20459. FEMS Microbiol Lett 67:201–206
Mori S, Nishizawa N (1987) Methionine as a dominant precursor of phytosiderophores in
graminaceae plants. Plant Cell Physiol 28:1081–1092
Mori S, Nishizawa S, Hayashi N, Chino H, Yoshimurs E, Ishihara J (1991) Why are young rice
plants highly susceptible to iron deficiency. Plant Soil 130:143–156
Neilands JB (1981) Microbial iron compounds. Annu Rev Biochem 50:715–731
Nomoto K, Mino Y, Ishida T, Yoshioka H, Ota N, Inoue M et al (1981) X-ray crystal structure of
the copper (II) complex of mugineic acid, a naturally occurring metal chelator of graminaceous
plants. J Chem Soc, Chem Commun 7:338–339
Pahari A, Dangar TK, Mishra BB (2016) Siderophore quantification of bacteria from Sundarban
and its effect on growth of Brinjal (Solanum melongena. L). The Bioscan 11(4):2147–2151
Pahari A, Mishra BB (2017) Characterization of Siderophore producing rhizobacteria and its effect
on growth performance of different vegetables. Int J Curr Microbiol App Sci 6(5):1398–1405
327
and electrochemical behavior of ferric enterobactin and model complexes. J Am Chem Soc
101:6097–6104
Hernlem BJ, Vane LM, Sayles GD (1999) The application of siderophores for metal recovery
and waste remediation: examination of correlations for prediction of metal affinities. Water Res
33:951–960
Hu X, Boyer GL (1996) Siderophore-mediated aluminium uptake by Bacillus megaterium ATCC
19213. Appl Environ Microbiol 62:4044–4048
Kannahi M, Senbagam N (2014) Studies on siderophore production by microbial isolates obtained
from rhizosphere soil and its antibacterial activity. J Chem Pharm Res 6:1142–1145
Kloepper JW, Leong J, Teintze M, Schiroth MN (1980) Enhanced plant growth by siderophores
produced by plant growth promoting rhizobacteria. Nature 286:885–886
Krewulak KD, Vogel HJ (2008) Structural biology of bacterial iron uptake. Biochim Biophys Acta
1778:1781–1804
Kusari S, Hertweck C, Spiteller M (2012) Chemical ecology of endophytic fungi: origins of
secondary metabolites. Chem Biol 19(7):792–798
Leo VV, Passari AK, Joshi JB, Mishra VK, Uthandi S, Ramesh N, Gupta VK, Saikia R, Sonawane
VC, Singh BP (2016) A novel triculture system (CC3) for simultaneous enzyme production and
hydrolysis of common grasses through submerged fermentation. Front Microbiol 7
Loper JE, Henkels MD (1999) Utilization of heterologous siderophore enhances levels of iron
available to pseudomonas putida in the rhizosphere. Appl Environ Microbiol 65:5357–5363
Mahmoud ALE, Abd-Alla MH (2001) Siderophore production by some microorganisms and their
effect on Bradyrhizobium-Mung Bean symbiosis. Int J Agric Biol 03(2):157–162
Marschner H, Romheld V, Kissel M (1986) Different strategies in higher plants in mobilization and
uptake of iron. J Plant Nutr 9:695–713
Matzanke BF (1991) Structures, coordination chemistry and functions of microbial iron chelates.
In: Winkelmann G (ed) CRC handbook of microbial iron chelates. CRC Press, Boca Raton, FL,
USA, pp 15–64
Maurer B, Keller-Schierlein W (1968) Ferribactin, a siderochrome from Pseudomonas fluores-cens
Migula: 61. Mitteilung Ferribactin, einSiderochromaus Pseudomonas fluorescens Migula. Arch
Microbiol 60:326–339
May JJ, Wendrich TM, Marahiel MA (2001) The dhb Operon of Bacillussubtilis encodes the
biosynthetic template for the catecholicsiderophore 2, 3-dihydroxybenzoate-glycine-threonine
trimeric ester bacillibactin. J Biol Chem 276:7209–7217
Mc Loughlin T, Quinn J, Bettermann A, Bookland R (1992) Pseudomonas cepacia suppression of
sunflower. Pseudomonas cepacia. Wilt fungus and role of antifungal compounds in controlling
the disease. Appl Environ Microbiol 58(3):1760–1763
McGrath SP, Chaudri AM, Giller KE (1995) Long-term effects of metals in sewage sluge on soils,
microorganisms and plants. J Ind Microbiol 14(2):94–104
Meiwes J, Fiedler HP, Haag H, Zahner H, Konetschny-Rapp S, Jung G (1990) Isolation and characterization of staphyloferrin A, a compound with siderophore activity from Staphylococcus hyicus
DSM 20459. FEMS Microbiol Lett 67:201–206
Mori S, Nishizawa N (1987) Methionine as a dominant precursor of phytosiderophores in
graminaceae plants. Plant Cell Physiol 28:1081–1092
Mori S, Nishizawa S, Hayashi N, Chino H, Yoshimurs E, Ishihara J (1991) Why are young rice
plants highly susceptible to iron deficiency. Plant Soil 130:143–156
Neilands JB (1981) Microbial iron compounds. Annu Rev Biochem 50:715–731
Nomoto K, Mino Y, Ishida T, Yoshioka H, Ota N, Inoue M et al (1981) X-ray crystal structure of
the copper (II) complex of mugineic acid, a naturally occurring metal chelator of graminaceous
plants. J Chem Soc, Chem Commun 7:338–339
Pahari A, Dangar TK, Mishra BB (2016) Siderophore quantification of bacteria from Sundarban
and its effect on growth of Brinjal (Solanum melongena. L). The Bioscan 11(4):2147–2151
Pahari A, Mishra BB (2017) Characterization of Siderophore producing rhizobacteria and its effect
on growth performance of different vegetables. Int J Curr Microbiol App Sci 6(5):1398–1405
