328
G. Garg et al.
Passari AK, Mishra VK, Singh G, Singh P, Kumar B, Gupta VK, Sarma RK, Saikia R, Donovan
AO, Singh BP (2017) Insights into the functionality of endophytic actinobacteria with a focus on
their biosynthetic potential and secondary metabolites production. Sci Rep 7:11809
Raymond KN, Muller G, Matzanke BF (1984) Complexation of iron by siderophores a review of
their solution and structural chemistry and biological function. In: FL Boschke (ed) Topics in
current chem, vol 123, structural chemistry. Springer-Verlag, Berlin, Heidelberg, Germany, pp
49–102
Renshaw JC, Robson GD, Trinci APJ, Wiebe MG, Livens FR, Collison D, Taylor RJ (2002) Fungal
siderophores: structures, functions and applications. Mycol Res 106:1123–1142
Romheld V, Marschner H (1990) Genotypical differences among graminaceous species in release
of phytosiderophores and uptake of iron phtytosiderophores. Plant Soil 123:147–153
Rungin S, Indananda C, Suttiviriya P, Kruasuwan W, Jaemsaeng R, Thamchaipenet A (2012) Plant
growth enhancing effects by a siderophore-producing endophytic streptomycete isolated from a
Thai jasmine rice plant (Oryza sativa L. cv. KDML105). Antonie Van Leeuwenhoek 102(3):463–
472
Saharan BS, Nehra V (2011) Plant growth promoting rhizobacteria: a critical review. Life Sci Med
Res 21:1–30
Sayyed RZ, Badgujar MD, Sonawane HM, Mhaske MM, Chincholkar SB (2005) Production of
microbial iron chelators (siderophores) by fluorescent pseudomonads. Indian J Biotechnol 4:484–
490
Schippers B, Bakker AW, Bakker PAH (1987) Interactions of deleterious and beneficial rhizosphere
microorganisms and the effect of cropping practices. Ann Rev Phytopathol 25:339–358
Schwarzenbach G, Schwarzenbach K (1963) Hydroxamate complexes. I. The stabilities of the
iron (III) complexes of simple hydroxamic acids and desferriferrioxamine. B HelvChim Acta
46:1390–1400
Sajeed Ali S, Vidhale NN (2013) Bacterial siderophore and their Application: a review. Int J Curr
Microbiol App Sci 2(12):303–312
Seuk C, Paulita T, Baker R (1988) Attributes associate with increased biocontrol activity of
fluorescent pseudomonads. J Plant Pathol 4(3):218–225
Singh JS, Pandey VC, Singh DP (2011) Efficient soil microorganisms: a new dimension for
sustainable agriculture and environmental development. Agric Ecosyst Environ 140:339–353
Singh D, Geat N, Rajawat MVS (2020) Performance of low and high Fe accumulator wheat genotypes grown on soils with low or high available Fe and endophyte inoculation. Acta Physiol Plant
42:24
Sørensen J, Sessitsch A (2015) Plant-associated bacteria lifestyle and molecular interactions. In: JD
van Elsas et al. (Eds.), Modern soil microbiology, 2nd ed, CRC Press, 2006 (2015), pp 211–236
Sprent JI, de Faria SM (1998) Mechanisms of infection of plants by nitrogen fixing organisms.
Plant Soil 110:157–165
Molina G, Pimentel MR, Bertucci TCP, Pastore GM (2012) Application of fungal endophytes in
biotechnological processes. Chem Eng Trans 27:289–294
Tagliavini M, Rombola AD (2001) Iron deficiency and chlorosis in orchard and vineyard ecosystems.
Eur J Agron 15:71–92
Takagi S, Nomoto K, Takemoto T (1984) Physiological aspect of mugineic acid, a possible
phytosiderophore of graminaceous plants. J Plant Nutr 7:469–477
Takemoto T, Nomoto K, Fushiya S, Ouchi R, Kusano G, Hikino H et al (1978) Structure of mugineic
acid, a new amino acid possessing an iron chelating activity from roots washings of water cultured
Hordeum vulgare. L Proc Jpn Acad Ser B 54:469–473
Tilak KVBR, Ranganayaki NL, Pal KK, De R, Saxena AK, Nautiyal CS, Mittal S, Tripathi AK, Johri
BN (2005) Diversity of plant growth and soil health supporting bacteria. Curr Sci 89:136–149
Ueno D, Rombola AD, Iwashita T, Nomoto K, Ma JF (2007) Identification of two novel
phytosiderophores secreted by perennial grasses. 174(2174) (2): 304–310
G. Garg et al.
Passari AK, Mishra VK, Singh G, Singh P, Kumar B, Gupta VK, Sarma RK, Saikia R, Donovan
AO, Singh BP (2017) Insights into the functionality of endophytic actinobacteria with a focus on
their biosynthetic potential and secondary metabolites production. Sci Rep 7:11809
Raymond KN, Muller G, Matzanke BF (1984) Complexation of iron by siderophores a review of
their solution and structural chemistry and biological function. In: FL Boschke (ed) Topics in
current chem, vol 123, structural chemistry. Springer-Verlag, Berlin, Heidelberg, Germany, pp
49–102
Renshaw JC, Robson GD, Trinci APJ, Wiebe MG, Livens FR, Collison D, Taylor RJ (2002) Fungal
siderophores: structures, functions and applications. Mycol Res 106:1123–1142
Romheld V, Marschner H (1990) Genotypical differences among graminaceous species in release
of phytosiderophores and uptake of iron phtytosiderophores. Plant Soil 123:147–153
Rungin S, Indananda C, Suttiviriya P, Kruasuwan W, Jaemsaeng R, Thamchaipenet A (2012) Plant
growth enhancing effects by a siderophore-producing endophytic streptomycete isolated from a
Thai jasmine rice plant (Oryza sativa L. cv. KDML105). Antonie Van Leeuwenhoek 102(3):463–
472
Saharan BS, Nehra V (2011) Plant growth promoting rhizobacteria: a critical review. Life Sci Med
Res 21:1–30
Sayyed RZ, Badgujar MD, Sonawane HM, Mhaske MM, Chincholkar SB (2005) Production of
microbial iron chelators (siderophores) by fluorescent pseudomonads. Indian J Biotechnol 4:484–
490
Schippers B, Bakker AW, Bakker PAH (1987) Interactions of deleterious and beneficial rhizosphere
microorganisms and the effect of cropping practices. Ann Rev Phytopathol 25:339–358
Schwarzenbach G, Schwarzenbach K (1963) Hydroxamate complexes. I. The stabilities of the
iron (III) complexes of simple hydroxamic acids and desferriferrioxamine. B HelvChim Acta
46:1390–1400
Sajeed Ali S, Vidhale NN (2013) Bacterial siderophore and their Application: a review. Int J Curr
Microbiol App Sci 2(12):303–312
Seuk C, Paulita T, Baker R (1988) Attributes associate with increased biocontrol activity of
fluorescent pseudomonads. J Plant Pathol 4(3):218–225
Singh JS, Pandey VC, Singh DP (2011) Efficient soil microorganisms: a new dimension for
sustainable agriculture and environmental development. Agric Ecosyst Environ 140:339–353
Singh D, Geat N, Rajawat MVS (2020) Performance of low and high Fe accumulator wheat genotypes grown on soils with low or high available Fe and endophyte inoculation. Acta Physiol Plant
42:24
Sørensen J, Sessitsch A (2015) Plant-associated bacteria lifestyle and molecular interactions. In: JD
van Elsas et al. (Eds.), Modern soil microbiology, 2nd ed, CRC Press, 2006 (2015), pp 211–236
Sprent JI, de Faria SM (1998) Mechanisms of infection of plants by nitrogen fixing organisms.
Plant Soil 110:157–165
Molina G, Pimentel MR, Bertucci TCP, Pastore GM (2012) Application of fungal endophytes in
biotechnological processes. Chem Eng Trans 27:289–294
Tagliavini M, Rombola AD (2001) Iron deficiency and chlorosis in orchard and vineyard ecosystems.
Eur J Agron 15:71–92
Takagi S, Nomoto K, Takemoto T (1984) Physiological aspect of mugineic acid, a possible
phytosiderophore of graminaceous plants. J Plant Nutr 7:469–477
Takemoto T, Nomoto K, Fushiya S, Ouchi R, Kusano G, Hikino H et al (1978) Structure of mugineic
acid, a new amino acid possessing an iron chelating activity from roots washings of water cultured
Hordeum vulgare. L Proc Jpn Acad Ser B 54:469–473
Tilak KVBR, Ranganayaki NL, Pal KK, De R, Saxena AK, Nautiyal CS, Mittal S, Tripathi AK, Johri
BN (2005) Diversity of plant growth and soil health supporting bacteria. Curr Sci 89:136–149
Ueno D, Rombola AD, Iwashita T, Nomoto K, Ma JF (2007) Identification of two novel
phytosiderophores secreted by perennial grasses. 174(2174) (2): 304–310
