Chirnside AE, Ritter WF, Radosevich M (2011) Biodegradation of aged residues of atrazine and
alachlor in a mix-load site soil by fungal enzymes. Appl Environ Soil Sci 2011:1–10. https://doi.
org/10.1155/2011/658569
Chougale VV, Deshmukh AM (2007) Biodegradation of carbofuran pesticide by saline soil
actinomycetes. Asian J Microbiol Biotechnol Environ Sci 9(4):1057–1061
Chuluun B, Iamchaturapatr J, Rhee JS (2009) Phytoremediation of organophosphorus and organochlorine pesticides by Acorus gramineus. Environ Eng Res 14(4):226–236. https://doi.org/10.
4491/eer.2009.14.4.226
Commandeur LC, Parsons JR (1994) Biodegradation of halogenated aromatic compounds. In:
Biochemistry of microbial degradation. Springer, Dordrecht, pp 423–458. https://doi.org/10.
1007/978-94-011-1687-9_13
Cook AM, Daughton CG, Alexander M (1978) Phosphorus-containing pesticide breakdown products: quantitative utilization as phosphorus sources by bacteria. Appl Environ Microbiol 36
(5):668–672
Correa-Galeote D, Bedmar EJ, Arone GJ (2018) Maize endophytic bacterial diversity as affected by
soil cultivation history. Front Microbiol 9:484. https://doi.org/10.3389/fmicb.2018.00484
Cserjsei AJ, Johnson EL (1972) Methylation of pentachlorophenol by Trichoderma virgatum. Can J
Microbiol 10:45–49. https://doi.org/10.1139/m72-007
Cycon M, Piotrowska-Seget Z (2007) Effect of selected pesticides on soil microflora involved in
organic matter and nitrogen transformations: pot experiment. Polish J Ecol 55(2):207–220
Cycoń M, Mrozik A, Piotrowska-Seget Z (2017) Bioaugmentation as a strategy for the remediation
of pesticide-polluted soil: a review. Chemosphere 172:52–71. https://doi.org/10.1016/j.
chemosphere.2016.12.129
Dadson OA, Ellison CA, Singleton ST, Chi L-H, McGarrigle BP, Lein PJ, Farahat FM, Farahat T,
Olson JR (2013) Metabolism of profenofos to 4-bromo-2-chlorophenol, a specific and sensitive
exposure biomarker. Toxicology 306:35–39. https://doi.org/10.1016/j.tox.2013.01.023
Dahiya A, Sharma R, Sindhu S, Sindhu SS (2019a) Resource partitioning in the rhizosphere by
inoculated Bacillus spp. towards growth stimulation of wheat and suppression of wild oat
(Avena fatua L.) weed. Physiol Mol Biol Plants 25(6):1483–1495
Dahiya A, Chahar K, Sindhu SS (2019b) The rhizosphere microbiome and biological control of
weeds: a review. Spanish J Agric Res 17(4):e10R01
Damaj M, Ahmad D (1996) Biodegradation of polychlorinated biphenyls by rhizobia: a novel
finding. Biochem Biophys Res commu 218(3):908–915. https://doi.org/10.1006/bbrc.1996.
0161
Das N, Chandran P (2011) Microbial degradation of petroleum hydrocarbon contaminants: an
overview. Biotechnol Res Int 2011:941810. https://doi.org/10.4061/2011/941810
Das, Singh, DK (2003) Utilization of monocrotophos as phosphorus source by Pseudomonas
aeruginosa F10B and Clavibacter michiganense subsp. insidiosum SBL 11. Can J Microbiol
49(2):101-109. https://doi.org/10.1139/w03-013
De Jong ED, Field JA, Spinnler HE, Wijnberg JB, de Bont JA (1994) Significant biogenesis of
chlorinated aromatics by fungi in natural environments. Appl Environ Microbiol 60(1):264–270
De Souza ML, Sadowsky MJ, Wackett LP (1996) Atrazine chlorohydrolase from Pseudomonas
sp. strain ADP: gene sequence, enzyme purification and protein characterization. J Bacteriol
178:4894–4900. https://doi.org/10.1128/jb.178.16.4894-4900.1996
Debnath D, Mandal TK (2000) Study of quinalphos (an environmental oestrogenic insecticide)
formulation (Ekalux 25 EC)-induced damage of the testicular tissues and antioxidant defence
systems in Sprague-Dawley albino rats. J Appl Toxicol 20(3):197–204. https://doi.org/10.1002/
(SICI)1099-1263(200005/06)20:3<197::AID-JAT634>3.0.CO;2-7
Dechesne A, Badawi N, Aamand J, Smets BF (2014) Fine scale spatial variability of microbial
pesticide degradation in soil: scales, controlling factors and implications. Front Microbiol 5:667.
https://doi.org/10.3389/fmicb.2014.00667
66
A. Sehrawat et al.
alachlor in a mix-load site soil by fungal enzymes. Appl Environ Soil Sci 2011:1–10. https://doi.
org/10.1155/2011/658569
Chougale VV, Deshmukh AM (2007) Biodegradation of carbofuran pesticide by saline soil
actinomycetes. Asian J Microbiol Biotechnol Environ Sci 9(4):1057–1061
Chuluun B, Iamchaturapatr J, Rhee JS (2009) Phytoremediation of organophosphorus and organochlorine pesticides by Acorus gramineus. Environ Eng Res 14(4):226–236. https://doi.org/10.
4491/eer.2009.14.4.226
Commandeur LC, Parsons JR (1994) Biodegradation of halogenated aromatic compounds. In:
Biochemistry of microbial degradation. Springer, Dordrecht, pp 423–458. https://doi.org/10.
1007/978-94-011-1687-9_13
Cook AM, Daughton CG, Alexander M (1978) Phosphorus-containing pesticide breakdown products: quantitative utilization as phosphorus sources by bacteria. Appl Environ Microbiol 36
(5):668–672
Correa-Galeote D, Bedmar EJ, Arone GJ (2018) Maize endophytic bacterial diversity as affected by
soil cultivation history. Front Microbiol 9:484. https://doi.org/10.3389/fmicb.2018.00484
Cserjsei AJ, Johnson EL (1972) Methylation of pentachlorophenol by Trichoderma virgatum. Can J
Microbiol 10:45–49. https://doi.org/10.1139/m72-007
Cycon M, Piotrowska-Seget Z (2007) Effect of selected pesticides on soil microflora involved in
organic matter and nitrogen transformations: pot experiment. Polish J Ecol 55(2):207–220
Cycoń M, Mrozik A, Piotrowska-Seget Z (2017) Bioaugmentation as a strategy for the remediation
of pesticide-polluted soil: a review. Chemosphere 172:52–71. https://doi.org/10.1016/j.
chemosphere.2016.12.129
Dadson OA, Ellison CA, Singleton ST, Chi L-H, McGarrigle BP, Lein PJ, Farahat FM, Farahat T,
Olson JR (2013) Metabolism of profenofos to 4-bromo-2-chlorophenol, a specific and sensitive
exposure biomarker. Toxicology 306:35–39. https://doi.org/10.1016/j.tox.2013.01.023
Dahiya A, Sharma R, Sindhu S, Sindhu SS (2019a) Resource partitioning in the rhizosphere by
inoculated Bacillus spp. towards growth stimulation of wheat and suppression of wild oat
(Avena fatua L.) weed. Physiol Mol Biol Plants 25(6):1483–1495
Dahiya A, Chahar K, Sindhu SS (2019b) The rhizosphere microbiome and biological control of
weeds: a review. Spanish J Agric Res 17(4):e10R01
Damaj M, Ahmad D (1996) Biodegradation of polychlorinated biphenyls by rhizobia: a novel
finding. Biochem Biophys Res commu 218(3):908–915. https://doi.org/10.1006/bbrc.1996.
0161
Das N, Chandran P (2011) Microbial degradation of petroleum hydrocarbon contaminants: an
overview. Biotechnol Res Int 2011:941810. https://doi.org/10.4061/2011/941810
Das, Singh, DK (2003) Utilization of monocrotophos as phosphorus source by Pseudomonas
aeruginosa F10B and Clavibacter michiganense subsp. insidiosum SBL 11. Can J Microbiol
49(2):101-109. https://doi.org/10.1139/w03-013
De Jong ED, Field JA, Spinnler HE, Wijnberg JB, de Bont JA (1994) Significant biogenesis of
chlorinated aromatics by fungi in natural environments. Appl Environ Microbiol 60(1):264–270
De Souza ML, Sadowsky MJ, Wackett LP (1996) Atrazine chlorohydrolase from Pseudomonas
sp. strain ADP: gene sequence, enzyme purification and protein characterization. J Bacteriol
178:4894–4900. https://doi.org/10.1128/jb.178.16.4894-4900.1996
Debnath D, Mandal TK (2000) Study of quinalphos (an environmental oestrogenic insecticide)
formulation (Ekalux 25 EC)-induced damage of the testicular tissues and antioxidant defence
systems in Sprague-Dawley albino rats. J Appl Toxicol 20(3):197–204. https://doi.org/10.1002/
(SICI)1099-1263(200005/06)20:3<197::AID-JAT634>3.0.CO;2-7
Dechesne A, Badawi N, Aamand J, Smets BF (2014) Fine scale spatial variability of microbial
pesticide degradation in soil: scales, controlling factors and implications. Front Microbiol 5:667.
https://doi.org/10.3389/fmicb.2014.00667
66
A. Sehrawat et al.
