Bento FM, de Oliveira Camargo FA, Okeke B, Frankenberger-Júnior WT (2003) Bioremediation of
soil contaminated by diesel oil. Braz J Microbiol 34(1):65–68
Bhandari A, Xu F (2001) Impact of peroxidase addition on the sorption–desorption behavior of
phenolic contaminants in surface soils. Environ Sci Technol 35(3163):2001
Boldt TS, Sorensen J, Karlson U et al (2004) Combined use of different Gfp reporters for
monitoring single-cell activities of a genetically modified PCB degrader in the rhizosphere of
alfalfa. FEMS Microbiol Ecol 48(2):139–148
Brazil GM, Kenefick L, Callanan M et al (1995) Construction of a rhizosphere pseudomonas with
potential to degrade polychlorinated biphenyls and detection of bph gene expression in the
rhizosphere. Appl Environ Microbiol 61(5):1946–1952
Burghal AA, Al-Mudaffar NA, Mahdi KH (2015) Ex situ bioremediation of soil contaminated with
crude oil by use of actinomycetes consortia for process bioaugmentation. Eur J Exp Biol 5
(5):24–30
Chatterjee C, Lefcovitch A (2014) Gulf of Mexico oil disaster: some legal issues. Amicus Curiae
84:17–24. http://sas-space.sas.ac.uk/2902/1/Amicus84_Chatterjee.pdf
Chen YM, Lin TF, Huang C et al (2007) Degradation of phenol and TCE using suspended and
chitosan-bead immobilized Pseudomonas putida. J Hazard Mater 148(3):660–670
Christensen BB, Sternberg C, Andersen JB, Eberl L, Møller S, Givskov M, Molin S (1998)
Establishment of new genetic traits in a microbial biofilm community. Appl Environ Microbiol
64:2247
Cosgrove L, McGeechan PL, Handley PS, Robson GD (2010) Effect of biostimulation and
bioaugmentation on degradation of polyurethane buried in soil. Appl Environ Microbiol 76
(3):810–819. https://doi.org/10.1128/AEM.00534-09
Dams RI, Paton G, Killham K (2007) Bioaugmentation of pentachlorophenol in soil and hydroponic system. Int Biodeterior Biodegrad 60:171–177
Das K, Mukherjee AK (2007) Crude petroleum-oil biodegradation efficiency of Bacillus subtilis
and Pseudomonas aeruginosa strains isolated from a petroleum-oil contaminated soil from
North-East India. Bioresour Technol 98:1339–1345
Dejonghe W, Goris J, El Fantroussi S, Höfte M, De Vs P, Verstraete W, Top EM (2000) Effect of
dissemination of 2,4-dichlorophenoxyacetic acid (2,4-D) degradation plasmids on 2,4-D degradation and on bacterial community structure in two different soil horizons. Appl Environ
Microbiol 66:3297
DiGiovanni GD, Neilson JW, Pepper IL, Sinclair NA (1996) Gene transfer of Alcaligenes
eutrophus JMP134 plasmid pJP4 to indigenous soil recipients. Appl Environ Microbiology
62:2521
dos Santos EO, da Rosa CFC, dos Passos CT, Sanzo AVL, Burkert JFM, Kalil SJ et al (2008)
Pre-screening of filamentous fungi isolated from a contaminated site in Southern Brazil for
bioaugmentation purposes. Afr J Biotechnol 7(9):1311–1317
Ferraro A, Massini G, Mazzurco-Miritana V, Panico A, Pontoni L, Race M, Rosa S, Signorini A,
Fabbricino M, Pirozzi F (2019) Bioaugmentation process for PAHs contaminated soil remediation through microbial inocula from anaerobic treatment of lignocellulosic substrate. In: 16th
international conference on environmental science and technology, Rhodes, Greece, 4–7 Sept
2019
Festa S, Macchi M, Cortes F, Morelli IS, Coppotelli BM (2016) Monitoring the impact of
bioaugmentation with a PAH-degrading strain on different soil microbiomes using
pyrosequencing. FEMS Microbiol Ecol 92:fiw125. https://doi.org/10.1093/femsec/fiw125
Filonov AE, Akhmetov LI, Puntus IF, Esikova TZ, Gafarov AB, Izmalkova TYU et al (2005) The
construction and monitoring of genetically tagged, plasmid-containing, naphthalene degrading
strains in soil. Microbiology 74:453–458
Gallizia I, McClean S, Banat IM (2003) Bacterial biodegradation of phenol and 2,4-dichlorophenol.
J Chem Technol Biotechnol 78:959–963. https://doi.org/10.1002/jctb.890
Garbisu C, Alkorta I (2003) Basic concepts on heavy metal soil bioremediation. Eur J Miner
Process Environ Prot 3:58–66. http://www.ejmpep.com/garbisu_and_alkorta.pdf
15 Bioaugmentation: A Powerful Biotechnological Techniques for Sustainable. . .
393
soil contaminated by diesel oil. Braz J Microbiol 34(1):65–68
Bhandari A, Xu F (2001) Impact of peroxidase addition on the sorption–desorption behavior of
phenolic contaminants in surface soils. Environ Sci Technol 35(3163):2001
Boldt TS, Sorensen J, Karlson U et al (2004) Combined use of different Gfp reporters for
monitoring single-cell activities of a genetically modified PCB degrader in the rhizosphere of
alfalfa. FEMS Microbiol Ecol 48(2):139–148
Brazil GM, Kenefick L, Callanan M et al (1995) Construction of a rhizosphere pseudomonas with
potential to degrade polychlorinated biphenyls and detection of bph gene expression in the
rhizosphere. Appl Environ Microbiol 61(5):1946–1952
Burghal AA, Al-Mudaffar NA, Mahdi KH (2015) Ex situ bioremediation of soil contaminated with
crude oil by use of actinomycetes consortia for process bioaugmentation. Eur J Exp Biol 5
(5):24–30
Chatterjee C, Lefcovitch A (2014) Gulf of Mexico oil disaster: some legal issues. Amicus Curiae
84:17–24. http://sas-space.sas.ac.uk/2902/1/Amicus84_Chatterjee.pdf
Chen YM, Lin TF, Huang C et al (2007) Degradation of phenol and TCE using suspended and
chitosan-bead immobilized Pseudomonas putida. J Hazard Mater 148(3):660–670
Christensen BB, Sternberg C, Andersen JB, Eberl L, Møller S, Givskov M, Molin S (1998)
Establishment of new genetic traits in a microbial biofilm community. Appl Environ Microbiol
64:2247
Cosgrove L, McGeechan PL, Handley PS, Robson GD (2010) Effect of biostimulation and
bioaugmentation on degradation of polyurethane buried in soil. Appl Environ Microbiol 76
(3):810–819. https://doi.org/10.1128/AEM.00534-09
Dams RI, Paton G, Killham K (2007) Bioaugmentation of pentachlorophenol in soil and hydroponic system. Int Biodeterior Biodegrad 60:171–177
Das K, Mukherjee AK (2007) Crude petroleum-oil biodegradation efficiency of Bacillus subtilis
and Pseudomonas aeruginosa strains isolated from a petroleum-oil contaminated soil from
North-East India. Bioresour Technol 98:1339–1345
Dejonghe W, Goris J, El Fantroussi S, Höfte M, De Vs P, Verstraete W, Top EM (2000) Effect of
dissemination of 2,4-dichlorophenoxyacetic acid (2,4-D) degradation plasmids on 2,4-D degradation and on bacterial community structure in two different soil horizons. Appl Environ
Microbiol 66:3297
DiGiovanni GD, Neilson JW, Pepper IL, Sinclair NA (1996) Gene transfer of Alcaligenes
eutrophus JMP134 plasmid pJP4 to indigenous soil recipients. Appl Environ Microbiology
62:2521
dos Santos EO, da Rosa CFC, dos Passos CT, Sanzo AVL, Burkert JFM, Kalil SJ et al (2008)
Pre-screening of filamentous fungi isolated from a contaminated site in Southern Brazil for
bioaugmentation purposes. Afr J Biotechnol 7(9):1311–1317
Ferraro A, Massini G, Mazzurco-Miritana V, Panico A, Pontoni L, Race M, Rosa S, Signorini A,
Fabbricino M, Pirozzi F (2019) Bioaugmentation process for PAHs contaminated soil remediation through microbial inocula from anaerobic treatment of lignocellulosic substrate. In: 16th
international conference on environmental science and technology, Rhodes, Greece, 4–7 Sept
2019
Festa S, Macchi M, Cortes F, Morelli IS, Coppotelli BM (2016) Monitoring the impact of
bioaugmentation with a PAH-degrading strain on different soil microbiomes using
pyrosequencing. FEMS Microbiol Ecol 92:fiw125. https://doi.org/10.1093/femsec/fiw125
Filonov AE, Akhmetov LI, Puntus IF, Esikova TZ, Gafarov AB, Izmalkova TYU et al (2005) The
construction and monitoring of genetically tagged, plasmid-containing, naphthalene degrading
strains in soil. Microbiology 74:453–458
Gallizia I, McClean S, Banat IM (2003) Bacterial biodegradation of phenol and 2,4-dichlorophenol.
J Chem Technol Biotechnol 78:959–963. https://doi.org/10.1002/jctb.890
Garbisu C, Alkorta I (2003) Basic concepts on heavy metal soil bioremediation. Eur J Miner
Process Environ Prot 3:58–66. http://www.ejmpep.com/garbisu_and_alkorta.pdf
15 Bioaugmentation: A Powerful Biotechnological Techniques for Sustainable. . .
393
