3 Microbial Endophytes: Sustainable Approach …
67
Lery LMS, Hemerly AS, Nogueira EM, von Krüger WMA, Bisch PM (2011) Quantitative
proteomic analysis of the interaction between the endophytic plant-growth-promoting bacterium
Glucanoacetobacter diazotrophicus and sugarcane. Mol Plant Microbe Interact 24:562–676
Li JH, Wang ET, Chen WF, Chen WX (2008) Genetic diversity and potential for promotion of plant
growth detected in nodule endophytic bacteria of soybean grown in Heilongjiang province of
China. Soil Biol Biochem 40:238–246
Li L, Li SM, Sun JH, Zhou LL, Bao XG, Zhang HG, Zhang FS (2007) Diversity enhances agricultural
productivity via rhizosphere phosphorus facilitation on phosphorus-deficient soils. Proc Natn
Acad Sci USA 104:11192–11196
Lindow SE, Brandel MT (2003) Microbiology of the phyllosphere. Appl Environ Microbiol
69:1875–1883. https://doi.org/10.1128/AEM.69.4.1875-1883.2003
Lindsay WLP, Vlek LG, Chien SH (1989) Phosphate minerals. In: Dixon JB, Weed SB (eds)
Minerals in soil environment, 2nd edn. Soil Science Society of America, Madison, USA, pp
1089–1130
Lodewyckx C, Vangronsveld J, Porteous F, Moore ER, Taghavi S, Mezgeay M, der Lelie DV (2002)
Endophytic bacteria and their potential applications. Crit Rev Plant Sci 21:583–606
Long HH, Schmidt DD, Baldwin IT (2008) Native bacterial endophytes promote host growth in a
species-specific manner; phytohormone manipulations do not result in common growth responses.
PLoS ONE 3:e2702
Lopez-Bucio J, Cruz-Ramirez A, Herrera-Estrella L (2003) The role of nutrient availability in
regulating root architecture. Curr Opin Plant Biol 6:280–287
Lugtenberg B, Kamilova F (2009) Plant-growth-promoting rhizobacteria. Ann Rev Microbiol
63:541–556
Lugtenberg BJ, Caradus JR, Johnson LJ (2016) Fungal endophytes for sustainable crop production.
FEMS Microbiol Ecol 92(12):fiw194. https://doi.org/10.1093/femsec/fiw194
Lundberg DS, Lebeis SL, Paredes SH, Yourstone S, Gehring J, Malfatti S, Tremblay J, Engelbrektson
A, Kunin V, del Rio TG, Edgar RC, Eickhorst T, Ley RE, Hugenholtz P, Tringe SG, Dangl JL
(2012) Defining the core Arabidopsis thaliana root microbiome. Nature 488:86–90
Luo S, Chen L, J-l C, Xiao X, Xu T, Wan Y, Rao C, Liu C, Liu Y, Lai C, Zeng G (2011) Analysis
and characterization of cultivable heavy metal-resistant bacterial endophytes isolated from Cd
hyper accumulator Solanum nigrum L. and their potential use for phytoremediation. Chemosphere
85:1130–1138
Luo S, Xu T, Chen L, Chen J, Rao C, Xiao X, Wan Y, Zeng G, Long F, Liu C, Liu Y (2012) Endophyteassisted promotion of biomass production and metal-uptake of energy crop sweet sorghum by
plant-growth-promoting endophyte Bacillus sp. Appl Microbiol Biotechnol 93:1745–1753
Lynch JM (1983) Soil Biotechnology. Blackwell Scientific Publications, Oxford, UK
Ma Y, Oliveira RS, Nai F, Rajkumar M, Luo Y, Rocha I, Freitas H (2015) The hyper accumulator Sedum plumbizincicola harbors metal-resistant endophytic bacteria that improve its
phytoextraction capacity in multi-metal contaminated soil. J Environ Manage 156:62–69
Ma Y, Prasad M, Rajkumar M, Freitas H (2011) Plant growth promoting rhizobacteria and
endophytes accelerate phytoremediation of metalliferous soils. Biotechnol Adv 29:248–258
Ma Y, Rajkumar M, Zhang C, Freitas H (2016) Beneficial role of bacterial endophytes in heavy
metal phytoremediation. J Environ Manage 174:14–25
Maheshwari DK, Dheeman S, Annapurna K (2017) Endophytes as contender of plant productivity
and protection: an introduction. In: Maheshwari D, Annapurna K (eds) Endophytes: crop productivity and protection. Sustainable development and biodiversity, Vol 16. Springer, Cham. pp 1–9.
https://doi.org/10.1007/978-3-319-66544-3_1
Malik DK, Sindhu SS (2011) Production of indole acetic acid by Pseudomonas sp.: effect of
coinoculation with Mesorhizobium sp. Cicer on nodulation and plant growth of chickpea (Cicer
arietinum). Physiol Mol Biol Plants 17:25–32
Mandyam K, Fox C, Jumpponen A (2012) Septate endophyte colonization and host responses of
grasses and forbs native to a tallgrass prairie. Mycorrhiza 22:109–119
67
Lery LMS, Hemerly AS, Nogueira EM, von Krüger WMA, Bisch PM (2011) Quantitative
proteomic analysis of the interaction between the endophytic plant-growth-promoting bacterium
Glucanoacetobacter diazotrophicus and sugarcane. Mol Plant Microbe Interact 24:562–676
Li JH, Wang ET, Chen WF, Chen WX (2008) Genetic diversity and potential for promotion of plant
growth detected in nodule endophytic bacteria of soybean grown in Heilongjiang province of
China. Soil Biol Biochem 40:238–246
Li L, Li SM, Sun JH, Zhou LL, Bao XG, Zhang HG, Zhang FS (2007) Diversity enhances agricultural
productivity via rhizosphere phosphorus facilitation on phosphorus-deficient soils. Proc Natn
Acad Sci USA 104:11192–11196
Lindow SE, Brandel MT (2003) Microbiology of the phyllosphere. Appl Environ Microbiol
69:1875–1883. https://doi.org/10.1128/AEM.69.4.1875-1883.2003
Lindsay WLP, Vlek LG, Chien SH (1989) Phosphate minerals. In: Dixon JB, Weed SB (eds)
Minerals in soil environment, 2nd edn. Soil Science Society of America, Madison, USA, pp
1089–1130
Lodewyckx C, Vangronsveld J, Porteous F, Moore ER, Taghavi S, Mezgeay M, der Lelie DV (2002)
Endophytic bacteria and their potential applications. Crit Rev Plant Sci 21:583–606
Long HH, Schmidt DD, Baldwin IT (2008) Native bacterial endophytes promote host growth in a
species-specific manner; phytohormone manipulations do not result in common growth responses.
PLoS ONE 3:e2702
Lopez-Bucio J, Cruz-Ramirez A, Herrera-Estrella L (2003) The role of nutrient availability in
regulating root architecture. Curr Opin Plant Biol 6:280–287
Lugtenberg B, Kamilova F (2009) Plant-growth-promoting rhizobacteria. Ann Rev Microbiol
63:541–556
Lugtenberg BJ, Caradus JR, Johnson LJ (2016) Fungal endophytes for sustainable crop production.
FEMS Microbiol Ecol 92(12):fiw194. https://doi.org/10.1093/femsec/fiw194
Lundberg DS, Lebeis SL, Paredes SH, Yourstone S, Gehring J, Malfatti S, Tremblay J, Engelbrektson
A, Kunin V, del Rio TG, Edgar RC, Eickhorst T, Ley RE, Hugenholtz P, Tringe SG, Dangl JL
(2012) Defining the core Arabidopsis thaliana root microbiome. Nature 488:86–90
Luo S, Chen L, J-l C, Xiao X, Xu T, Wan Y, Rao C, Liu C, Liu Y, Lai C, Zeng G (2011) Analysis
and characterization of cultivable heavy metal-resistant bacterial endophytes isolated from Cd
hyper accumulator Solanum nigrum L. and their potential use for phytoremediation. Chemosphere
85:1130–1138
Luo S, Xu T, Chen L, Chen J, Rao C, Xiao X, Wan Y, Zeng G, Long F, Liu C, Liu Y (2012) Endophyteassisted promotion of biomass production and metal-uptake of energy crop sweet sorghum by
plant-growth-promoting endophyte Bacillus sp. Appl Microbiol Biotechnol 93:1745–1753
Lynch JM (1983) Soil Biotechnology. Blackwell Scientific Publications, Oxford, UK
Ma Y, Oliveira RS, Nai F, Rajkumar M, Luo Y, Rocha I, Freitas H (2015) The hyper accumulator Sedum plumbizincicola harbors metal-resistant endophytic bacteria that improve its
phytoextraction capacity in multi-metal contaminated soil. J Environ Manage 156:62–69
Ma Y, Prasad M, Rajkumar M, Freitas H (2011) Plant growth promoting rhizobacteria and
endophytes accelerate phytoremediation of metalliferous soils. Biotechnol Adv 29:248–258
Ma Y, Rajkumar M, Zhang C, Freitas H (2016) Beneficial role of bacterial endophytes in heavy
metal phytoremediation. J Environ Manage 174:14–25
Maheshwari DK, Dheeman S, Annapurna K (2017) Endophytes as contender of plant productivity
and protection: an introduction. In: Maheshwari D, Annapurna K (eds) Endophytes: crop productivity and protection. Sustainable development and biodiversity, Vol 16. Springer, Cham. pp 1–9.
https://doi.org/10.1007/978-3-319-66544-3_1
Malik DK, Sindhu SS (2011) Production of indole acetic acid by Pseudomonas sp.: effect of
coinoculation with Mesorhizobium sp. Cicer on nodulation and plant growth of chickpea (Cicer
arietinum). Physiol Mol Biol Plants 17:25–32
Mandyam K, Fox C, Jumpponen A (2012) Septate endophyte colonization and host responses of
grasses and forbs native to a tallgrass prairie. Mycorrhiza 22:109–119
