Hussain S, Maqbool Z, Ali S et al (2013) Biodecolorization of Reactive Black-5 by a metal and salt
tolerant bacterial strain Pseudomonas sp. RA20 isolated from Paharang drain effluents in
Pakistan. Ecotoxicol Environ Saf 98:331–338. https://doi.org/10.1016/j.ecoenv.2013.09.018
Jadhav UU, Dawkar VV, Ghodake GS, Govindwar SP (2008) Biodegradation of Direct Red 5B, a
textile dye by newly isolated Comamonas sp. UVS. J Hazard Mater 158(2–3):507–516. https://
doi.org/10.1016/j.jhazmat.2008.01.099
Jin Y, Luan Y, Ning Y, Wang L (2018) Effects and mechanisms of microbial remediation of heavy
metals in soil: a critical review. Appl Sci 8:1336. https://doi.org/10.3390/app8081336
Joho M, Inouhe M, Tohoyama H, Murayama T (1995) Nickel resistance mechanisms in yeasts and
other fungi. J Ind Microbiol 14:164–168
Joshi B, Kabariya K, Nakrani S, Khan A, Parabia FM, Doshi HV, Thakur MC (2013) Biodegradation of turquoise blue dye by Bacillus megaterium isolated from industrial effluent. Am J
Environ Protec 1(2):41–46
Joutey NT, Sayel H, Bahafid W, El Ghachtouli N (2015) Mechanisms of hexavalent chromium
resistance and removal by microorganisms. Rev Environ Contam Toxicol 233:45–69. https://
doi.org/10.1007/978-3-319-10479-9_2
Kamizono A, Nishizawa M, Teranishi Y, Murata K, Kimura A (1989) Identification of a gene
conferring resistance to zinc and cadmium ions in the yeast Saccharomyces cerevisiae. Mol Gen
Genet 219:161–167
Karim ME, Dhar K, Hossain MT (2018) Decolorization of textile reactive dyes by bacterial
monoculture and consortium screened from textile dyeing effluent. J Genet Eng Biotechnol
16(2):375–380
Khaled E, Hassan G, Khider M, Mandour R (2010) Safe biodegradation of textile azo dyes by
newly isolated lactic acid bacteria and detection of plasmids associated with degradation. J
Biored Biodegrd 1(3):1–6
Khalid A, Kausar F, Arshad M, Mahmood T, Ahmed I (2012) Accelerated decolorization of
reactive azo dyes under saline conditions by bacteria isolated from Arabian seawater sediment.
Appl Microbiol Biotechnol 96(6):1599–1606. https://doi.org/10.1007/s00253-012-3877-7
Khan AG, Bari A, Chaudhry TM, Qazilbash AA (1997) Phytoremediation- strategy to decontaminate heavy metal polluted soils and to conserve the biodiversity of Pakistan soils. In: Mufti SA,
Woods CA, Hasan SA (eds) . Biodiversity of Pakistan Museum of Natural History, Islamabad
and Florida Museum of Natural History, Gainesville
Khataee AR, Dehghan G (2011) Optimization of biological treatment of a dye solution by
macroalgae Cladophora sp. using response surface methodology. J Taiwan Inst Chem Eng 42
(1):26–33
Khataee AR, Dehghan G, Ebadi A, Zarei M, Pourhassan M (2010a) Biological treatment of a dye
solution by Macroalgae Chara sp.: effect of operational parameters, intermediates identification
and artificial neural network modeling. Bioresour Technol 101(7):2252–2258. https://doi.org/
10.1016/j.biortech.2009.11.079
Khataee AR, Zarei M, Pourhassan M (2010b) Bioremediation of malachite green from contaminated water by three microalgae: neural network Modeling. Clean Soil Air Water 38(1):96–103.
https://doi.org/10.1002/clen.200900233
Kneer R, Kutchan TM, Hochberger A, Zenk MH (1992) Saccharomyces cerevisiae and Neurospora
crassa contain heavy metal sequestering phytochelatin. Arch Microbiol 157:305–310
Krauter P, Martinelli R, William K, Martins S (1996) Removal of Cr4+ from ground water by
S. cervisiae. Biodegradation 7:277–286
Kujan P, Votruba J, Kamenik V (1995) Substrate-dependent bioaccumulation of cadmium by
growing yeast Candida utilis. Folia Microbiol 40(3):288–292
Kumar KV, Ramamurthi V, Sivanesan S (2006) Biosorption of malachite green, a cationic dye onto
Pithophora sp., a fresh water algae. Dyes Pigments 69:102–107
Kumar PS, Pavithra J, Suriya S, Ramesh M, Kumar AN (2015) Sargassum wightii, a marine alga is
the source for the production of algal oil, bio-oil, and application in the dye wastewater
9 Removal of Dyes From Industrial Effluents Using Bioremediation Technique
191
tolerant bacterial strain Pseudomonas sp. RA20 isolated from Paharang drain effluents in
Pakistan. Ecotoxicol Environ Saf 98:331–338. https://doi.org/10.1016/j.ecoenv.2013.09.018
Jadhav UU, Dawkar VV, Ghodake GS, Govindwar SP (2008) Biodegradation of Direct Red 5B, a
textile dye by newly isolated Comamonas sp. UVS. J Hazard Mater 158(2–3):507–516. https://
doi.org/10.1016/j.jhazmat.2008.01.099
Jin Y, Luan Y, Ning Y, Wang L (2018) Effects and mechanisms of microbial remediation of heavy
metals in soil: a critical review. Appl Sci 8:1336. https://doi.org/10.3390/app8081336
Joho M, Inouhe M, Tohoyama H, Murayama T (1995) Nickel resistance mechanisms in yeasts and
other fungi. J Ind Microbiol 14:164–168
Joshi B, Kabariya K, Nakrani S, Khan A, Parabia FM, Doshi HV, Thakur MC (2013) Biodegradation of turquoise blue dye by Bacillus megaterium isolated from industrial effluent. Am J
Environ Protec 1(2):41–46
Joutey NT, Sayel H, Bahafid W, El Ghachtouli N (2015) Mechanisms of hexavalent chromium
resistance and removal by microorganisms. Rev Environ Contam Toxicol 233:45–69. https://
doi.org/10.1007/978-3-319-10479-9_2
Kamizono A, Nishizawa M, Teranishi Y, Murata K, Kimura A (1989) Identification of a gene
conferring resistance to zinc and cadmium ions in the yeast Saccharomyces cerevisiae. Mol Gen
Genet 219:161–167
Karim ME, Dhar K, Hossain MT (2018) Decolorization of textile reactive dyes by bacterial
monoculture and consortium screened from textile dyeing effluent. J Genet Eng Biotechnol
16(2):375–380
Khaled E, Hassan G, Khider M, Mandour R (2010) Safe biodegradation of textile azo dyes by
newly isolated lactic acid bacteria and detection of plasmids associated with degradation. J
Biored Biodegrd 1(3):1–6
Khalid A, Kausar F, Arshad M, Mahmood T, Ahmed I (2012) Accelerated decolorization of
reactive azo dyes under saline conditions by bacteria isolated from Arabian seawater sediment.
Appl Microbiol Biotechnol 96(6):1599–1606. https://doi.org/10.1007/s00253-012-3877-7
Khan AG, Bari A, Chaudhry TM, Qazilbash AA (1997) Phytoremediation- strategy to decontaminate heavy metal polluted soils and to conserve the biodiversity of Pakistan soils. In: Mufti SA,
Woods CA, Hasan SA (eds) . Biodiversity of Pakistan Museum of Natural History, Islamabad
and Florida Museum of Natural History, Gainesville
Khataee AR, Dehghan G (2011) Optimization of biological treatment of a dye solution by
macroalgae Cladophora sp. using response surface methodology. J Taiwan Inst Chem Eng 42
(1):26–33
Khataee AR, Dehghan G, Ebadi A, Zarei M, Pourhassan M (2010a) Biological treatment of a dye
solution by Macroalgae Chara sp.: effect of operational parameters, intermediates identification
and artificial neural network modeling. Bioresour Technol 101(7):2252–2258. https://doi.org/
10.1016/j.biortech.2009.11.079
Khataee AR, Zarei M, Pourhassan M (2010b) Bioremediation of malachite green from contaminated water by three microalgae: neural network Modeling. Clean Soil Air Water 38(1):96–103.
https://doi.org/10.1002/clen.200900233
Kneer R, Kutchan TM, Hochberger A, Zenk MH (1992) Saccharomyces cerevisiae and Neurospora
crassa contain heavy metal sequestering phytochelatin. Arch Microbiol 157:305–310
Krauter P, Martinelli R, William K, Martins S (1996) Removal of Cr4+ from ground water by
S. cervisiae. Biodegradation 7:277–286
Kujan P, Votruba J, Kamenik V (1995) Substrate-dependent bioaccumulation of cadmium by
growing yeast Candida utilis. Folia Microbiol 40(3):288–292
Kumar KV, Ramamurthi V, Sivanesan S (2006) Biosorption of malachite green, a cationic dye onto
Pithophora sp., a fresh water algae. Dyes Pigments 69:102–107
Kumar PS, Pavithra J, Suriya S, Ramesh M, Kumar AN (2015) Sargassum wightii, a marine alga is
the source for the production of algal oil, bio-oil, and application in the dye wastewater
9 Removal of Dyes From Industrial Effluents Using Bioremediation Technique
191
