References
Adriano-Anayal M, Salvador-Figueroa M, Ocampo JA, García-Romera I (2005) Plant cell wall
degrading hydrolytic enzymes of Gluconacetobacter diazotrophicus. Symbiosis 40:151–156
Ainelo H, Lahesaare A, Teppo A, Kivisaar M, Teras R (2017) The promoter region of lapA and its
transcriptional regulation by Fis in Pseudomonas putida. PLoS One 12:e0185482
Alavi P, Muller H, Cardinale M, Zachow C, Sanchez MB, Martinez JL, Berg G (2013) The DSF
quorum sensing system controls the positive influence of Stenotrophomonas maltophilia on
plants. PLoS One 8:e67103
Ali S, Duan J, Charles TC, Glick BR (2014) A bioinformatics approach to the determination of
genes involved in endophytic behavior in Burkholderia spp. J Theor Biol 343:193–198
Alqueres S, Meneses C, Rouws L, Rothballer M, Baldani I, Schmid M, Hartmann A (2013) The
bacterial superoxide dismutase and glutathione reductase are crucial for endophytic colonization
of rice roots by Gluconacetobacter diazotrophicus PAL5. Mol Plant-Microbe Interact
26:937–945
Arangarasan V, Palaniappan SP, Chelliah S (1998) Inoculation effects of diazotrops and
phosphobacteria on rice. Ind Jour Microbiol 38:111–112
Arsene F, Katupitiya S, Kennedy IR, Elmerich C (1994) Use of lacZ fusions to study the expression
of nif genes of Azospirillum brasilense in association with plants. Mol Plant-Microbe Interact
7:748–757
Badri DV, Weir TL, van der Lelie D, Vivanco JM (2009) Rhizosphere chemical dialogues: plantmicrobe interactions. Curr Opin Biotechnol 20:642–650
Baetz U, Martinoia E (2014) Root exudates: the hidden part of plant defense. Trends Plant Sci
19:90–98
Baladani IJ, Baldani LV (2005) History on the biological nitrogen fixation research in graminaceous
plants: special emphasis on the Brazilian experience. An Acad Bras Cienc 77:549–579
Balandreau J (2002) The spermosphere model to select for plant growth promoting rhizobacteria.
In: Kennedy IR, Choudhury ATMA (eds) Biofertilisers in action. Rural Industries Research and
Development Corporation, Canberra, pp 55–63
Baldani VLD, Baldani JI, Dobereiner J (1983) Effects of Azospirillum inoculation on root infection
and nitrogen incorporation in wheat. Can J Microbiol 29:924–929
Baldani VLD, Alvarez MA, Baldani JI, Döbereiner J (1986) Establishment of inoculated
Azospirillum spp. in the rhizosphere and roots of field grown wheat and sorghum. Plant Soil
90:35–46
Baldani VLD, Baldani JI, Döbereiner J (1987) Inoculation of field-grown wheat (Triticum
aestivum) with Azospirillum spp. in Brazil. Biol Fert Soils 4:37–40
Baldani JI, Caruso L, Baldani VLD, Goi SR, Dӧbereiner J (1997) Recent advances in BNF with
non-legume plants. Soil Biol Biochem 29:911–922
Baldani VLD, Baldani JI, Döbereiner J (2000) Inoculation of rice plants with the endophytic
diazotrophs Herbaspirillum seropedicae and Burkholderia spp. Biol Fert Soil 30:485–491
Balsanelli E, Serrato RV, de Baura VA, Sassaki G, Yates MG, Rigo LU, Pedrosa FO, de Souza EM,
Monteiro RA (2010) Herbaspirillum seropedicae rfbB and rfbC genes are required for maize
colonization. Environ Microbiol 12:2233–2244
Balsanelli E, Tadra-Sfeir MZ, Faoro H, Pankievicz VC, de Baura VA, Pedrosa FO, de Souza EM,
Dixon R, Monteiro RA (2016) Molecular adaptations of Herbaspirillum seropedicae during
colonization of the maize rhizosphere. Environ Microbiol 18:2343–2356
Banu H, Prasad KP (2017) Role of plasmids in microbiology. J Aquac Res Dev 8:466. https://doi.
org/10.4172/2155-9546.1000466
Barak JD, Gorski L, Naraghi-Arani P, Charkowski AO (2005) Salmonella enterica virulence genes
are required for bacterial attachment to plant tissue. Appl Environ Microbiol 71:5685–5691
Bastián F, Cohen A, Piccoli P, Luna V, Baraldi R, Bittini R (1998) Production of indole-3-acetic
acid and gibberellins A1 and A3 by Acetobacter diazotrophicus and Herbaspirillum
seropedicae in chemically defined culture media. Plant Growth Regul 24:7–11
414
S.-C. Chun
Adriano-Anayal M, Salvador-Figueroa M, Ocampo JA, García-Romera I (2005) Plant cell wall
degrading hydrolytic enzymes of Gluconacetobacter diazotrophicus. Symbiosis 40:151–156
Ainelo H, Lahesaare A, Teppo A, Kivisaar M, Teras R (2017) The promoter region of lapA and its
transcriptional regulation by Fis in Pseudomonas putida. PLoS One 12:e0185482
Alavi P, Muller H, Cardinale M, Zachow C, Sanchez MB, Martinez JL, Berg G (2013) The DSF
quorum sensing system controls the positive influence of Stenotrophomonas maltophilia on
plants. PLoS One 8:e67103
Ali S, Duan J, Charles TC, Glick BR (2014) A bioinformatics approach to the determination of
genes involved in endophytic behavior in Burkholderia spp. J Theor Biol 343:193–198
Alqueres S, Meneses C, Rouws L, Rothballer M, Baldani I, Schmid M, Hartmann A (2013) The
bacterial superoxide dismutase and glutathione reductase are crucial for endophytic colonization
of rice roots by Gluconacetobacter diazotrophicus PAL5. Mol Plant-Microbe Interact
26:937–945
Arangarasan V, Palaniappan SP, Chelliah S (1998) Inoculation effects of diazotrops and
phosphobacteria on rice. Ind Jour Microbiol 38:111–112
Arsene F, Katupitiya S, Kennedy IR, Elmerich C (1994) Use of lacZ fusions to study the expression
of nif genes of Azospirillum brasilense in association with plants. Mol Plant-Microbe Interact
7:748–757
Badri DV, Weir TL, van der Lelie D, Vivanco JM (2009) Rhizosphere chemical dialogues: plantmicrobe interactions. Curr Opin Biotechnol 20:642–650
Baetz U, Martinoia E (2014) Root exudates: the hidden part of plant defense. Trends Plant Sci
19:90–98
Baladani IJ, Baldani LV (2005) History on the biological nitrogen fixation research in graminaceous
plants: special emphasis on the Brazilian experience. An Acad Bras Cienc 77:549–579
Balandreau J (2002) The spermosphere model to select for plant growth promoting rhizobacteria.
In: Kennedy IR, Choudhury ATMA (eds) Biofertilisers in action. Rural Industries Research and
Development Corporation, Canberra, pp 55–63
Baldani VLD, Baldani JI, Dobereiner J (1983) Effects of Azospirillum inoculation on root infection
and nitrogen incorporation in wheat. Can J Microbiol 29:924–929
Baldani VLD, Alvarez MA, Baldani JI, Döbereiner J (1986) Establishment of inoculated
Azospirillum spp. in the rhizosphere and roots of field grown wheat and sorghum. Plant Soil
90:35–46
Baldani VLD, Baldani JI, Döbereiner J (1987) Inoculation of field-grown wheat (Triticum
aestivum) with Azospirillum spp. in Brazil. Biol Fert Soils 4:37–40
Baldani JI, Caruso L, Baldani VLD, Goi SR, Dӧbereiner J (1997) Recent advances in BNF with
non-legume plants. Soil Biol Biochem 29:911–922
Baldani VLD, Baldani JI, Döbereiner J (2000) Inoculation of rice plants with the endophytic
diazotrophs Herbaspirillum seropedicae and Burkholderia spp. Biol Fert Soil 30:485–491
Balsanelli E, Serrato RV, de Baura VA, Sassaki G, Yates MG, Rigo LU, Pedrosa FO, de Souza EM,
Monteiro RA (2010) Herbaspirillum seropedicae rfbB and rfbC genes are required for maize
colonization. Environ Microbiol 12:2233–2244
Balsanelli E, Tadra-Sfeir MZ, Faoro H, Pankievicz VC, de Baura VA, Pedrosa FO, de Souza EM,
Dixon R, Monteiro RA (2016) Molecular adaptations of Herbaspirillum seropedicae during
colonization of the maize rhizosphere. Environ Microbiol 18:2343–2356
Banu H, Prasad KP (2017) Role of plasmids in microbiology. J Aquac Res Dev 8:466. https://doi.
org/10.4172/2155-9546.1000466
Barak JD, Gorski L, Naraghi-Arani P, Charkowski AO (2005) Salmonella enterica virulence genes
are required for bacterial attachment to plant tissue. Appl Environ Microbiol 71:5685–5691
Bastián F, Cohen A, Piccoli P, Luna V, Baraldi R, Bittini R (1998) Production of indole-3-acetic
acid and gibberellins A1 and A3 by Acetobacter diazotrophicus and Herbaspirillum
seropedicae in chemically defined culture media. Plant Growth Regul 24:7–11
414
S.-C. Chun
