Guliy OI, Ignatov OV, Makarov OE, Ignatov VV (2003) Determination of organophosphorus
aromatic nitro insecticides and p-nitrophenol by microbial-cell respiratory activity. Biosens
Bioelectron 18:1005–1013
Gunjal AB, Patil NN, Shinde SS (2020) Ligninase in degradation of lignocellulosic wastes. In:
enzymes in degradation of the lignocellulosic wastes. Springer, Cham, pp 1–132
Harry-asobara JL, Kamei I (2019) Growth management of white-rot fungus Phlebia brevispora
improved degradation of high-molecular-weight polycyclic aromatic hydrocarbons. 3 Biotech
9:403
Hatakka A (2001) Biodegradation of lignin. In: Steinbüchel A, Hofrichter M (eds) Biopolymers.
Lignin, humic substances, and coal, vol 1. Weinheim, Wiley, pp 129–180
Hina J, Samina I, Samina A, Rebecca EP (2015) Optimization of profenofos degradation by a novel
bacterial consortium PBAC using response surface methodology. Int Biodeter Biodegr
100:89–97
Ijoma GN, Tekere M (2017) Potential microbial applications of co-cultures involving ligninolytic
fungi in the bioremediation of recalcitrant xenobiotic compounds. Int J Environ Sci Technol
14:1787–1806. https://doi.org/10.1007/s13762-017-1269-3
Juhasz AL, Naidu R (2000) Bioremediation of high molecular weight polycyclic aromatic hydrocarbons: a review of the microbial degradation of benzo[a]pyrene. Int Biodeterior Biodegrad
45:57–88
Kachlishvili E, Asatiani M, Kobakhidge A, Elisashvili V (2016) Trinitrotoluene and mandarin peel
selectively affect lignin-modifying enzyme production in white-rot basidiomycetes. Springer
Plus 5:252–260
Kadri T, Rouissi T, Brar SK, Cledon M, Sarma S, Verma M (2017) Biodegradation of polycyclic
aromatic hydrocarbons (PAHs) by fungal enzymes: a review. J Environ Sci 51:52–74
Kaur H, Kapoor S, Kaur G (2016) Application of ligninolytic potentials of a white-rot fungus
Ganoderma lucidum for degradation of lindane. Environ Monit Assess 188(10):588–588
Kelly SL, Kelly DE (2013) Microbial cytochromes P450: biodiversity and biotech-nology. Where
do cytochromes P450 come from, what do they do and what can they do for us? Philos Trans R
Soc Lond B Biol Sci 368:20120476
Koroleva OV, Zherdev AV, Kulikova NA (2015) The role of white-rot fungi in herbicide transformation. In: Price A, Kelton J, Sarunaite L (eds) Herbicides, physiology of action, and safety.
InTechOpen, London, pp 187–221
Kostadinova N, Krumova E, Boteva R, Abrashev R, Staleva J, Spassova B, Angelova M (2018)
Effect of copper ions on the ligninolytic enzyme complex and the antioxidant enzyme activity in
the white-rot fungus Trametes trogii 46. Plant Biosystems 152:1–6
Krumova E, Kostadinova N, Miteva-Staleva J, Stoyancheva G, Spassova B, Abrashev R, Angelova
M (2018) Potential of ligninolytic enzymatic complex produced by white-rot fungi from genus
Trametes isolated from Bulgarian forest soil. Eng Life Sci 18:692–701
Kues U (2015) Fungal enzymes for environmental management. Curr Opin Biotechnol
33:268–278. https://doi.org/10.1016/j.copbio.2015.03.006
Kumar A, Chandra R (2020) Ligninolytic enzymes and its mechanisms for degradation of lignocellulosic waste in environment. Heliyon 6(2):1–18
Kumar B, Verma P (2020) Enzyme mediated multi-product process: a concept of bio-based
refinery. Ind Crop Prod 154:1–26
Kunjadia PD, Sanghvi GV, Kunjadia AP, Mukhopadhyay PN, Dave GS (2016) Role of ligninolytic
enzymes of white rot fungi (Pleurotus spp.) grown with azo dyes. Springerplus 5(1):1487–1495
Lazim ZM, Hadibarata T (2016) Ligninolyticfungus Polyporus sp.S133 mediated metabolic degradation of pyrene. Braz J Microbiol 47:610–616
Lewis TA, Newcombe DA, Crawford RL (2004) Bioremediation of soils contaminated with
explosives. J Environ Manage 70:291–307. https://doi.org/10.1016/j.jenvman.2003.12.005
Li YF (1999) Global technical hexachlorocyclohexane usage and its contamination consequences in
the environment: from 1948 to 1997. Sci Total Environ 232:121–158
114
B. S. Shanthi Kumari et al.
aromatic nitro insecticides and p-nitrophenol by microbial-cell respiratory activity. Biosens
Bioelectron 18:1005–1013
Gunjal AB, Patil NN, Shinde SS (2020) Ligninase in degradation of lignocellulosic wastes. In:
enzymes in degradation of the lignocellulosic wastes. Springer, Cham, pp 1–132
Harry-asobara JL, Kamei I (2019) Growth management of white-rot fungus Phlebia brevispora
improved degradation of high-molecular-weight polycyclic aromatic hydrocarbons. 3 Biotech
9:403
Hatakka A (2001) Biodegradation of lignin. In: Steinbüchel A, Hofrichter M (eds) Biopolymers.
Lignin, humic substances, and coal, vol 1. Weinheim, Wiley, pp 129–180
Hina J, Samina I, Samina A, Rebecca EP (2015) Optimization of profenofos degradation by a novel
bacterial consortium PBAC using response surface methodology. Int Biodeter Biodegr
100:89–97
Ijoma GN, Tekere M (2017) Potential microbial applications of co-cultures involving ligninolytic
fungi in the bioremediation of recalcitrant xenobiotic compounds. Int J Environ Sci Technol
14:1787–1806. https://doi.org/10.1007/s13762-017-1269-3
Juhasz AL, Naidu R (2000) Bioremediation of high molecular weight polycyclic aromatic hydrocarbons: a review of the microbial degradation of benzo[a]pyrene. Int Biodeterior Biodegrad
45:57–88
Kachlishvili E, Asatiani M, Kobakhidge A, Elisashvili V (2016) Trinitrotoluene and mandarin peel
selectively affect lignin-modifying enzyme production in white-rot basidiomycetes. Springer
Plus 5:252–260
Kadri T, Rouissi T, Brar SK, Cledon M, Sarma S, Verma M (2017) Biodegradation of polycyclic
aromatic hydrocarbons (PAHs) by fungal enzymes: a review. J Environ Sci 51:52–74
Kaur H, Kapoor S, Kaur G (2016) Application of ligninolytic potentials of a white-rot fungus
Ganoderma lucidum for degradation of lindane. Environ Monit Assess 188(10):588–588
Kelly SL, Kelly DE (2013) Microbial cytochromes P450: biodiversity and biotech-nology. Where
do cytochromes P450 come from, what do they do and what can they do for us? Philos Trans R
Soc Lond B Biol Sci 368:20120476
Koroleva OV, Zherdev AV, Kulikova NA (2015) The role of white-rot fungi in herbicide transformation. In: Price A, Kelton J, Sarunaite L (eds) Herbicides, physiology of action, and safety.
InTechOpen, London, pp 187–221
Kostadinova N, Krumova E, Boteva R, Abrashev R, Staleva J, Spassova B, Angelova M (2018)
Effect of copper ions on the ligninolytic enzyme complex and the antioxidant enzyme activity in
the white-rot fungus Trametes trogii 46. Plant Biosystems 152:1–6
Krumova E, Kostadinova N, Miteva-Staleva J, Stoyancheva G, Spassova B, Abrashev R, Angelova
M (2018) Potential of ligninolytic enzymatic complex produced by white-rot fungi from genus
Trametes isolated from Bulgarian forest soil. Eng Life Sci 18:692–701
Kues U (2015) Fungal enzymes for environmental management. Curr Opin Biotechnol
33:268–278. https://doi.org/10.1016/j.copbio.2015.03.006
Kumar A, Chandra R (2020) Ligninolytic enzymes and its mechanisms for degradation of lignocellulosic waste in environment. Heliyon 6(2):1–18
Kumar B, Verma P (2020) Enzyme mediated multi-product process: a concept of bio-based
refinery. Ind Crop Prod 154:1–26
Kunjadia PD, Sanghvi GV, Kunjadia AP, Mukhopadhyay PN, Dave GS (2016) Role of ligninolytic
enzymes of white rot fungi (Pleurotus spp.) grown with azo dyes. Springerplus 5(1):1487–1495
Lazim ZM, Hadibarata T (2016) Ligninolyticfungus Polyporus sp.S133 mediated metabolic degradation of pyrene. Braz J Microbiol 47:610–616
Lewis TA, Newcombe DA, Crawford RL (2004) Bioremediation of soils contaminated with
explosives. J Environ Manage 70:291–307. https://doi.org/10.1016/j.jenvman.2003.12.005
Li YF (1999) Global technical hexachlorocyclohexane usage and its contamination consequences in
the environment: from 1948 to 1997. Sci Total Environ 232:121–158
114
B. S. Shanthi Kumari et al.
