References
-
Abd El-Sayed, E. S., El-Sakhawy, M. & El-Sakhawy, M. A. M. Non-wood fibers as raw material for pulp and paper industry. Nordic Pulp Paper Res. J. 35 (2), 215–230 (2020).
-
Dick, J. G. & Malvessi, E. Strategies for reuse and recycling of water and effluents in pulp and paper industries. Res. Soc. Dev. 11 (13), e568111335950 (2022).
-
Abedinzadeh, N., Shariat, M., Monavari, S. M. & Pendashteh, A. Evaluation of color and COD removal by Fenton from biologically (SBR) pre-treated pulp and paper wastewater. Process Saf. Environ. Prot. 116, 82–91 (2018).
-
Holik, H. Handbook of Paper and Board (John Wiley & Sons, 2006).
-
Han, N., Zhang, J., Hoang, M., Gray, S. & Xie, Z. A review of process and wastewater reuse in the recycled paper industry. Environ. Technol. Innov. 24, 101860 (2021).
-
AaH, M. R. Biological uptake of Pb (II and Zn (II) by inanimate biomass of Phanerochaete chrysosporium. J. Environ. Sci. Technol. 10 (4), 196–207 (2009).
-
Korcan, S. E., Ciğerci, İH. & Konuk, M. White-Rot Fungi in Bioremediation 371–390 (Springer, 2012).
-
Wang, J. et al. Identification of the cytochrome P450 involved in the degradation of neonicotinoid insecticide acetamiprid in Phanerochaete chrysosporium. J. Hazard. Mater. 371, 494–498 (2019).
-
Prasongsuk, S., Lotrakul, P., Imai, T. & Punnapayak, H. Decolourization of pulp mill wastewater using thermotolerant white rot fungi. Sci. Asia 35, 37–41 (2009).
-
Chandra, V. et al. Recombinant laccase: A promising tool for industrial effluent bioremediation. Reports 3 (2), 16–22 (2023).
-
Rodríguez-Couto, S. Industrial and environmental applications of white-rot fungi. Mycosphere 8 (3), 456–466 (2017).
-
Spina, F., Anastasi, A. E., Prigione, V. P., Tigini, V. & Varese, G. Biological treatment of industrial wastewaters: a fungal approach. Chem. Eng. Trans. 27, 175–180 (2012).
-
Costa, S. et al. Lignin biodegradation in pulp-and-paper mill wastewater by selected white rot fungi. Water 9 (12), 935 (2017).
-
Kiran, S. et al. Lignin degrading system of Phanerochaete chrysosporium and its exploitation for degradation of synthetic dyes wastewater. Pol. J. Environ. Stud. 28 (3), 1749–1757 (2019).
-
Reid, I. D. The influence of nutrient balance on lignin degradation by the white-rot fungus Phanerochaete chrysosporium. Can. J. Bot. 57 (19), 2050–2058 (1979).
-
Brião, V. & Tavares, C. Effluent generation by the dairy industry: preventive attitudes and opportunities. Braz. J. Chem. Eng. 24, 487–497 (2007).
-
Lateef, A., Chaudhry, M. N. & Ilyas, S. Biological treatment of dairy wastewater using activated sludge. Sci. Asia 39 (2), 179–185 (2013).
-
Eriksson, K. E., Grünewald, A. & Vallander, L. Studies of growth conditions in wood for three white-rot fungi and their cellulaseless mutants. Biotechnol. Bioeng. 22 (2), 363–376 (1980).
-
APHA A, WEF. Standard Methods for the Examination of Water and Wastewater. 23rd ed. (American Public Health Association, 2017).
-
Gugel, I. et al. Mycoremediation of synthetic azo dyes by white-rot fungi grown on diary waste: A step toward sustainable and circular bioeconomy. Fermentation 10 (2), 80 (2024).
-
Shams, D. F., Singhal, N. & Elefsiniotis, P. Effect of feed characteristics and operational conditions on treatment of dairy farm wastewater in a coupled anoxic-upflow and aerobic system. Biochem. Eng. J. 133, 186–195 (2018).
-
Allender, B., Covey, G. & Shore, D. Low-effluent recycled paper mills. Appita: Technol. Innovat. Manuf. Environ. 63 (3) (2010).
-
Mishra, M. & Thakur, I. S. Isolation and characterization of alkalotolerant bacteria and optimization of process parameters for decolorization and detoxification of pulp and paper mill effluent by Taguchi approach. Biodegradation 21, 967–978 (2010).
-
Haq, I., Kumar, S., Raj, A., Lohani, M. & Satyanarayana, G. Genotoxicity assessment of pulp and paper mill effluent before and after bacterial degradation using Allium cepa test. Chemosphere 169, 642–650 (2017).
-
Kumar, A. & Chandra, R. Biodegradation and toxicity reduction of pulp paper mill wastewater by isolated laccase producing Bacillus cereus AKRC03. Cleaner Eng. Technol. 4, 100193 (2021).
-
Enaime, G. et al. Phytotoxicity assessment of olive mill wastewater treated by different technologies: effect on seed germination of maize and tomato. Environ. Sci. Pollut. Res. 27, 8034–8045 (2020).
-
Sonkar, M., Kumar, M., Dutt, D. & Kumar, V. Treatment of pulp and paper mill effluent by a novel bacterium Bacillus sp. IITRDVM-5 through a sequential batch process. Biocataly. Agric. Biotechnol. 20, 101232 (2019).
-
Li, X. & Zhao, J. Biotreatment of wastewater from soda-pretreatment Process of corn stover using white-rot fungus Z-6. Paper Biomater. 5 (4), 8–17 (2020).
-
Díaz, A. I., Ibañez, M., Laca, A. & Díaz, M. Biodegradation of olive mill effluent by white-rot fungi. Appl. Sci. 11 (21), 9930 (2021).
-
Ergül, F. E., Sargın, S., Öngen, G. & Sukan, F. V. Dephenolisation of olive mill wastewater using adapted Trametes versicolor. Int. Biodeterior. Biodegrad. 63 (1), 1–6 (2009).
-
Pakshirajan, K. & Kheria, S. Continuous treatment of coloured industry wastewater using immobilized Phanerochaete chrysosporium in a rotating biological contactor reactor. J. Environ. Manag. 101, 118–123 (2012).
-
Liu, X., Yang, T., Wu, H. J. & Yuan, Z. W. Evolution of material metabolism in China’s pulp and paper industry. Huan Jing ke Xue= Huanjing Kexue 42 (8), 4061–4070 (2021).
-
Ntougias, S. et al. Biodegradation and detoxification of olive mill wastewater by selected strains of the mushroom genera Ganoderma and Pleurotus. Chemosphere 88 (5), 620–626 (2012).
-
Bulai, I. M., Spina, F., Varese, G. C. & Venturino, E. Wastewater bioremediation using white rot fungi: validation of a dynamical system with real data obtained in laboratory. Math. Methods Appl. Sci. 41 (11), 4195–4207 (2018).
-
Tyagi, S. et al. Bioremediation of pulp and paper mill effluent by dominant aboriginal microbes and their consortium. Int. J. Environ. Res. 8 (3), 561–568 (2014).
-
Bardi, A. et al. Recalcitrant Compounds Removal in Raw Leachate and Synthetic Effluents Using the White-Rot Fungus Bjerkandera Adusta (MDPI, 2017).
-
Sharma, K., Giri, R. & Sharma, R. Lead, cadmium and nickel removal efficiency of white-rot fungus Phlebia brevispora. Lett. Appl. Microbiol. 71 (6), 637–644 (2020).
-
Chandra, R., Abhishek, A. & Sankhwar, M. Bacterial decolorization and detoxification of black liquor from rayon grade pulp manufacturing paper industry and detection of their metabolic products. Biores. Technol. 102 (11), 6429–6436 (2011).
-
Raj, A., Kumar, S., Haq, I. & Singh, S. K. Bioremediation and toxicity reduction in pulp and paper mill effluent by newly isolated ligninolytic Paenibacillus sp.. Ecol. Eng. 71, 355–362 (2014).
-
Zhang, A., Wang, G., Gong, G. & Shen, J. Immobilization of white rot fungi to carbohydrate-rich corn cob as a basis for tertiary treatment of secondarily treated pulp and paper mill wastewater. Ind. Crops Prod. 109, 538–541 (2017).
-
Haq, I., Kumar, S., Kumari, V., Singh, S. K. & Raj, A. Evaluation of bioremediation potentiality of ligninolytic Serratia liquefaciens for detoxification of pulp and paper mill effluent. J. Hazard. Mater. 305, 190–199 (2016).
-
Vilaplana, M. et al. Biodegradation ofPolybrominated DiphenylEthers inLiquidMedia and sewage sludge by trametes versicolor. Int. J. Environ. Res. 9 (1), 273–280 (2015).
-
Kijpornyongpan, T., Schwartz, A., Yaguchi, A. & Salvachúa, D. Systems biology-guided understanding of white-rot fungi for biotechnological applications: a review. Iscience 25 (7), 104640 (2022).
