Smułek W, Zdarta A, Guzik U, Dudzińska-Bajorek B, Kaczorek E (2015) Rahnella sp. strain EK12:
cell surface properties and diesel oil biodegradation after long-term contact with natural
surfactants and diesel oil. Microbiol Res 176:38–47. https://doi.org/10.1016/j.micres.2015.04.
008
Stallwood B, Shears J, Williams PA, Hughes KA (2005) Low temperature bioremediation of
oil-contaminated soil using biostimulation and bioaugmentation with a Pseudomonas sp. from
maritime Antarctica. J Appl Microbiol 99:794–802
Strong LC, McTavish H, Sadowsky MJ et al (2000) Field-scale remediation of atrazinecontaminated soil using recombinant Escherichia coli expressing atrazine chlorohydrolase.
Environ Microbiol 2(1):91–98
Suja F, Rahim F, Taha MR, Hambali N, Razali MR, Khalid A et al (2014) Effects of local microbial
bioaugmentation and biostimulation on the bioremediation of total petroleum hydrocarbons
(TPH) in crude oil contaminated soil based on laboratory and field observations. Int Biodeterior
Biodegrad 90:115–122. https://doi.org/10.1016/j.ibiod.2014.03.006
Taccari M, Milanovic V, Comitini F, Casucci C, Ciani M (2011) Effects of biostimulation and
bioaugmentation on diesel removal and bacterial community. Int Biodeterior Biodegrad 66
(1):39–46
Tausz J, Donath P (1930) Über die Oxydation des Wasserstoffs und der Kohlen was sers toffe
Mittels Bakterien. Hoppe-Seyler’s Zeitschrift fur physiologische Chemie 190:141–168. https://
doi.org/10.1515/bchm2.1930.190.3-6.141
Tomei MC, Daugulis AJ (2013) Ex situ bioremediation of contaminated soils: an overview of
conventional an innovative technologies. Crit Rev Environ Sci Technol 43:2107–2139. https://
doi.org/10.1080/10643389.2012.672056
Top EM, Van Daele P, De Saeyer N, Forney LJ (1998) Enhancement of 2,4-dichlorophenoxyacetic
acid (2,4-D) degradation in soil by dissemination of catabolic plasmids. Antonie Van Leeuwenhoek 73:87
Top EM, Maila MP, Clerinx M, Goris J, De Vos P, Verstraete W (1999) Methane oxidation as a
method to evaluate the removal of 2,4-dichlorophenoxyacetic acid (2,4-D) from soil by plasmid
mediated bioaugmentation. FEMS Microb Ecol 28:203
Top EM, Springael D, Boon N (2002) Catabolic mobile genetic elements and their potential use in
bioaugmentation of polluted soil and waters. FEMS Microb Ecol 42:199
Ueno A, Hasanuzzaman M, Yumoyo I, Okuyama H (2006) Verification of degradation of n-alkanes
in diesel oil by Pseudomonas aeruginosa strain WatG in soil microcosms. Curr Microbiol
52:82–85
Ueno A, Ito Y, Yumoto I, Okuyama H (2007) Isolation and characterization of bacteria from soil
contaminated with diesel oil and the possible use of these in autochthonous bioaugmentation.
World J Microbiol Biotechnol 23:1739–1745. https://doi.org/10.1007/s11274-007-9423-6
Wackett LP, Sadowsky MJ, Martinez B, Shapir N (2002) Biodegradation of atrazine and related
s-triazine compounds: from enzymes to field studies. Appl Microbiol Biotechnol 58:39
Wasilkowski D, Mrozik A, Piotrowska-Seget Z, Krzyżak J, Pogrzeba M, Płaza G (2014) Changes
in enzyme activities and microbial community structure in heavy metal contaminated soil under
in situ aided phytostabilization. Clean Soil Air Water 42:1618–1625. https://doi.org/10.1002/
clen.201300631
Wittich RM, Wolff P (2007) Growth of the genetically engineered strain Cupriavidus necator
RW112 with chlorobenzoates and technical chlorobiphenyls. Microbiology 153(1):186–195
Wojcieszyńska D, Greń I, Guzik U (2008) New pathway of dichlorophenols degradation by
Pseudomonas sp. strain US1 in aerobic conditions. Ecol Chem Eng A 15:703–710. https://
www.infona.pl/resource/bwmeta1.element.baztech-article-BPG4-0045-0011
Wojcieszyńska D, Hupert-Kocurek K, Guzik U (2013) Factors affecting activity of catechol2,3dioxygenase from 2-chlorophenol-degrading Stenotrophomonas maltophilia strain KB2.
Biocatal Biotransformation 31:141–147. https://doi.org/10.3109/10242422.2013.796456
15 Bioaugmentation: A Powerful Biotechnological Techniques for Sustainable. . .
397
cell surface properties and diesel oil biodegradation after long-term contact with natural
surfactants and diesel oil. Microbiol Res 176:38–47. https://doi.org/10.1016/j.micres.2015.04.
008
Stallwood B, Shears J, Williams PA, Hughes KA (2005) Low temperature bioremediation of
oil-contaminated soil using biostimulation and bioaugmentation with a Pseudomonas sp. from
maritime Antarctica. J Appl Microbiol 99:794–802
Strong LC, McTavish H, Sadowsky MJ et al (2000) Field-scale remediation of atrazinecontaminated soil using recombinant Escherichia coli expressing atrazine chlorohydrolase.
Environ Microbiol 2(1):91–98
Suja F, Rahim F, Taha MR, Hambali N, Razali MR, Khalid A et al (2014) Effects of local microbial
bioaugmentation and biostimulation on the bioremediation of total petroleum hydrocarbons
(TPH) in crude oil contaminated soil based on laboratory and field observations. Int Biodeterior
Biodegrad 90:115–122. https://doi.org/10.1016/j.ibiod.2014.03.006
Taccari M, Milanovic V, Comitini F, Casucci C, Ciani M (2011) Effects of biostimulation and
bioaugmentation on diesel removal and bacterial community. Int Biodeterior Biodegrad 66
(1):39–46
Tausz J, Donath P (1930) Über die Oxydation des Wasserstoffs und der Kohlen was sers toffe
Mittels Bakterien. Hoppe-Seyler’s Zeitschrift fur physiologische Chemie 190:141–168. https://
doi.org/10.1515/bchm2.1930.190.3-6.141
Tomei MC, Daugulis AJ (2013) Ex situ bioremediation of contaminated soils: an overview of
conventional an innovative technologies. Crit Rev Environ Sci Technol 43:2107–2139. https://
doi.org/10.1080/10643389.2012.672056
Top EM, Van Daele P, De Saeyer N, Forney LJ (1998) Enhancement of 2,4-dichlorophenoxyacetic
acid (2,4-D) degradation in soil by dissemination of catabolic plasmids. Antonie Van Leeuwenhoek 73:87
Top EM, Maila MP, Clerinx M, Goris J, De Vos P, Verstraete W (1999) Methane oxidation as a
method to evaluate the removal of 2,4-dichlorophenoxyacetic acid (2,4-D) from soil by plasmid
mediated bioaugmentation. FEMS Microb Ecol 28:203
Top EM, Springael D, Boon N (2002) Catabolic mobile genetic elements and their potential use in
bioaugmentation of polluted soil and waters. FEMS Microb Ecol 42:199
Ueno A, Hasanuzzaman M, Yumoyo I, Okuyama H (2006) Verification of degradation of n-alkanes
in diesel oil by Pseudomonas aeruginosa strain WatG in soil microcosms. Curr Microbiol
52:82–85
Ueno A, Ito Y, Yumoto I, Okuyama H (2007) Isolation and characterization of bacteria from soil
contaminated with diesel oil and the possible use of these in autochthonous bioaugmentation.
World J Microbiol Biotechnol 23:1739–1745. https://doi.org/10.1007/s11274-007-9423-6
Wackett LP, Sadowsky MJ, Martinez B, Shapir N (2002) Biodegradation of atrazine and related
s-triazine compounds: from enzymes to field studies. Appl Microbiol Biotechnol 58:39
Wasilkowski D, Mrozik A, Piotrowska-Seget Z, Krzyżak J, Pogrzeba M, Płaza G (2014) Changes
in enzyme activities and microbial community structure in heavy metal contaminated soil under
in situ aided phytostabilization. Clean Soil Air Water 42:1618–1625. https://doi.org/10.1002/
clen.201300631
Wittich RM, Wolff P (2007) Growth of the genetically engineered strain Cupriavidus necator
RW112 with chlorobenzoates and technical chlorobiphenyls. Microbiology 153(1):186–195
Wojcieszyńska D, Greń I, Guzik U (2008) New pathway of dichlorophenols degradation by
Pseudomonas sp. strain US1 in aerobic conditions. Ecol Chem Eng A 15:703–710. https://
www.infona.pl/resource/bwmeta1.element.baztech-article-BPG4-0045-0011
Wojcieszyńska D, Hupert-Kocurek K, Guzik U (2013) Factors affecting activity of catechol2,3dioxygenase from 2-chlorophenol-degrading Stenotrophomonas maltophilia strain KB2.
Biocatal Biotransformation 31:141–147. https://doi.org/10.3109/10242422.2013.796456
15 Bioaugmentation: A Powerful Biotechnological Techniques for Sustainable. . .
397
