Garbisu C, Garaiyurrebaso O, Epelde L, Grohmann E, Itziar (2017) Plasmid-mediated
bioaugmentation for the bioremediation of contaminated soils. Front Microbiol 8:1966.
https://doi.org/10.3389/fmicb.2017.01966
Garcia-Junco M, Gomez-Lahoz C, Niqui-Arroyo JL, Ortega-Calvo JJ (2003) Biosurfactant- and
biodegradation-enhanced partitioning of polycyclic aromatichydrocarbons from nonaqueousphase liquids. Environ Sci Technol 37:2988
Garon D, Sage L, Wouessidjewe D, Seigle-Murandi F (2004) Enhanced degradation of fluorine in
soil slurry by Absidiacylindrospora and maltosyl-cyclodextrin. Chemosphere 56:159–166
Gentry TJ, Newby DT, Josephson KL, Pepper IL (2001) Soil microbial population dynamics
following bioaugmentation with a 3-chlorobenzoate- degrading bacterial culture. Biodegradation 349:349–357
Ghaly AE, Yusran A, Dave D (2013) Effects of biostimulation and bioaugmentation on the
degradation of pyrene in soil. J Bioremed Biodegr S7:005. https://doi.org/10.4172/2155-6199.
S7-005
Goswami M, Chakraborty P, Mukherjee K et al (2018) Bioaugmentation and biostimulation: a
potential strategy for environmental remediation. J Microbiol Exp 6(5):223–231. https://doi.org/
10.15406/jmen.2018.06.00219
Greń I, Wojcieszyńska D, Guzik U, Perkosz M, Hupert-Kocurek K (2010) Enhanced biotransformation of mononitrophenols by Stenotrophomonas maltophilia KB2 in the presence of aromatic
compounds of plant origin. World J Microbiol Biotechnol 26:289–295. https://doi.org/10.1007/
s11274-009-0172-6
Halden RU, Tepp S, Halden BG, Dwyer DF (1999) Degradation of 3-phenoxybenzoic acid in soil
by PseudomonaspseudoalcaligenesPOB310 (pPOB) and two modified Pseudomonas strains.
Appl Environ Microbiol 65:3354–3359
Hamdi H, Benzarti S, Manusadžianas L, Aoyama I, Jedidi N (2007) Bioaugmentation and
biostimulation effects on PAH dissipation and soil ecotoxicity under controlled conditions.
Soil Biol Biochem 39:1926–1935. https://doi.org/10.1016/j.soilbio.2007.02.008
Herrera Y, Okoh AI, Alvarez L, Robledo N, Trejo-Hernández MR (2008) Biodegradation of
2,4-dichlorophenol by a Bacillus consortium. World J Microbiol Biotechnol 24:55–60.
https://doi.org/10.1007/s11274-007-9437-0
Herrick JB, Stuart-Keil KG, Ghiorse WC, Madsen EL (1997) Natural horizontal transfer of a
naphthalene dioxygenase gene between bacteria native toa coal tar-contaminated field site. Appl
Environ Microbiol 63:2330
Hong KJ, Tokunaga S, Kajiuchi T (2002) Evaluation of remediation process with plant-derived
biosurfactant for recovery of heavy metals from contaminated soils. Chemosphere 49:379
Hong Q, Zhang Z, Hong Y, Li S (2007) A microcosm study on bioremediation of fenitrothioncontaminated soil using Burkholderia sp. FDS-1. Int Biodeterior Biodegrad 59:55–61
Jacques RJS, Okeke BC, Bento FM, Teixeira AS, Peralba MCR, Comargo FAO (2008) Microbial
consortium bioaugmentation of a polycyclic aromatic hydrocarbons contaminated soil.
Bioresour Technol 99:2637–2643
Jernberg C, Jansson JK (2002) Impact of 4-chlorophenol contamination and/orinoculationwiththe4chloro-phenol-degrading strain, Arthrobacterchlorophenolicus A6L, on soil bacterial community structure. FEMS Microbiol Ecol 42:387–397
Kaczorek E, Sałek K, Guzik U, Jesionowski T, Cybulski Z (2013) Biodegradation of alkyl
derivatives of aromatic hydrocarbons and cell surface properties of a strain of Pseudomonas
stutzeri. Chemosphere 90:471–478. https://doi.org/10.1016/j.chemosphere.2012.07.065
Kaszycki P, Petryszak P, Pawlik M, Kołoczek H (2011) Ex situ bioremediation of soil polluted with
oily waste: the use of specialized microbial consortia for process bioaugmentation. Ecol Chem
Eng 18:1
Kauppi S, Sinkkonen AT, Romantschuk M (2011) Enhancing bioremediation of diesel-fuel-contaminated soil in a boreal climate: comparison of biostimulation and bioaugmentation. Int
Biodeterior Biodegrad 65(2):359–368. https://doi.org/10.1016/j.ibiod.2010.10.011
394
C. O. Adetunji and O. A. Anani
bioaugmentation for the bioremediation of contaminated soils. Front Microbiol 8:1966.
https://doi.org/10.3389/fmicb.2017.01966
Garcia-Junco M, Gomez-Lahoz C, Niqui-Arroyo JL, Ortega-Calvo JJ (2003) Biosurfactant- and
biodegradation-enhanced partitioning of polycyclic aromatichydrocarbons from nonaqueousphase liquids. Environ Sci Technol 37:2988
Garon D, Sage L, Wouessidjewe D, Seigle-Murandi F (2004) Enhanced degradation of fluorine in
soil slurry by Absidiacylindrospora and maltosyl-cyclodextrin. Chemosphere 56:159–166
Gentry TJ, Newby DT, Josephson KL, Pepper IL (2001) Soil microbial population dynamics
following bioaugmentation with a 3-chlorobenzoate- degrading bacterial culture. Biodegradation 349:349–357
Ghaly AE, Yusran A, Dave D (2013) Effects of biostimulation and bioaugmentation on the
degradation of pyrene in soil. J Bioremed Biodegr S7:005. https://doi.org/10.4172/2155-6199.
S7-005
Goswami M, Chakraborty P, Mukherjee K et al (2018) Bioaugmentation and biostimulation: a
potential strategy for environmental remediation. J Microbiol Exp 6(5):223–231. https://doi.org/
10.15406/jmen.2018.06.00219
Greń I, Wojcieszyńska D, Guzik U, Perkosz M, Hupert-Kocurek K (2010) Enhanced biotransformation of mononitrophenols by Stenotrophomonas maltophilia KB2 in the presence of aromatic
compounds of plant origin. World J Microbiol Biotechnol 26:289–295. https://doi.org/10.1007/
s11274-009-0172-6
Halden RU, Tepp S, Halden BG, Dwyer DF (1999) Degradation of 3-phenoxybenzoic acid in soil
by PseudomonaspseudoalcaligenesPOB310 (pPOB) and two modified Pseudomonas strains.
Appl Environ Microbiol 65:3354–3359
Hamdi H, Benzarti S, Manusadžianas L, Aoyama I, Jedidi N (2007) Bioaugmentation and
biostimulation effects on PAH dissipation and soil ecotoxicity under controlled conditions.
Soil Biol Biochem 39:1926–1935. https://doi.org/10.1016/j.soilbio.2007.02.008
Herrera Y, Okoh AI, Alvarez L, Robledo N, Trejo-Hernández MR (2008) Biodegradation of
2,4-dichlorophenol by a Bacillus consortium. World J Microbiol Biotechnol 24:55–60.
https://doi.org/10.1007/s11274-007-9437-0
Herrick JB, Stuart-Keil KG, Ghiorse WC, Madsen EL (1997) Natural horizontal transfer of a
naphthalene dioxygenase gene between bacteria native toa coal tar-contaminated field site. Appl
Environ Microbiol 63:2330
Hong KJ, Tokunaga S, Kajiuchi T (2002) Evaluation of remediation process with plant-derived
biosurfactant for recovery of heavy metals from contaminated soils. Chemosphere 49:379
Hong Q, Zhang Z, Hong Y, Li S (2007) A microcosm study on bioremediation of fenitrothioncontaminated soil using Burkholderia sp. FDS-1. Int Biodeterior Biodegrad 59:55–61
Jacques RJS, Okeke BC, Bento FM, Teixeira AS, Peralba MCR, Comargo FAO (2008) Microbial
consortium bioaugmentation of a polycyclic aromatic hydrocarbons contaminated soil.
Bioresour Technol 99:2637–2643
Jernberg C, Jansson JK (2002) Impact of 4-chlorophenol contamination and/orinoculationwiththe4chloro-phenol-degrading strain, Arthrobacterchlorophenolicus A6L, on soil bacterial community structure. FEMS Microbiol Ecol 42:387–397
Kaczorek E, Sałek K, Guzik U, Jesionowski T, Cybulski Z (2013) Biodegradation of alkyl
derivatives of aromatic hydrocarbons and cell surface properties of a strain of Pseudomonas
stutzeri. Chemosphere 90:471–478. https://doi.org/10.1016/j.chemosphere.2012.07.065
Kaszycki P, Petryszak P, Pawlik M, Kołoczek H (2011) Ex situ bioremediation of soil polluted with
oily waste: the use of specialized microbial consortia for process bioaugmentation. Ecol Chem
Eng 18:1
Kauppi S, Sinkkonen AT, Romantschuk M (2011) Enhancing bioremediation of diesel-fuel-contaminated soil in a boreal climate: comparison of biostimulation and bioaugmentation. Int
Biodeterior Biodegrad 65(2):359–368. https://doi.org/10.1016/j.ibiod.2010.10.011
394
C. O. Adetunji and O. A. Anani
