64

4 Bioremediation of Toxic Dyes for Zero Waste

3 Saini, A., Doda, A., and Singh, B. (2018). Recent advances in microbial remedia-

tion of textile azo dyes. In: Phytobiont and Ecosystem Restitution (eds. K. Vivek,

K. Manoj and P. Ram), 45–62. Singapore: Springer.

4 Gupta, V. (2009). Application of low-cost adsorbents for dye removal – a review.

Journal of Environmental Management 90 (10): 2313–2342.

5 Christian, V., Shrivastava, R., Shukla, D. et al. (2005). Degradation of xenobiotic

compounds by lignin-degrading white-rot fungi enzymology and mechanism

involved. Indian Journal of Experimental Biology 43 (4): 301–312.

6 Yang, Q.M.K., Yang, A., Pritsch, A. et al. (2003). Decolorization of synthetic

dyes and production of manganese-dependent peroxidase by new fungal isolates.

Biotechnology Letters 25: 709–713.

7 Jadhav, P., Parshetti, K., and Kalme, S.D. (2007). Decolorization of azo dye

methyl red by Saccharomyces cerevisiae MTCC463. Chemosphere 68 (2): 394–400.

8 Aksu, Z. and Donmez, G. (2003). A comparative study on the biosorption charac-

teristics of some yeasts for Remazol Blue reactive dye. Chemosphere 50 (8): 1075.

9 Al-baldawi, I.A., Abdullah, S.R.S., Anuar, N. et al. (2018). Phytotransformation of

methylene blue from water using aquatic plant (Azolla pinnata). Environmental

Technology and Innovation 11: 15–22.

10 Totiya, I. and Sibi, G. (2020). Azo dye degradation by Chlorella vulgaris: opti-

mization and kinetics. International Journal of Biological Chemistry 14: 1–7.

11 Yan, H. and Pan, G. (2004). Increase in biodegradation of dimethyl phthalate by

Closterium lunula using inorganic carbon. Chemosphere 55 (9): 1281–1285.

12 Paba, M., Baldiris, D., Ávila, R. et al. (2021). Application of environmental bac-

teria as potential methods of azo dye degradation systems. Global Journal of

Environmental Science and Management 7 (1) https://doi.org/10.22034/gjesm

.2021.01.0.

13 Hossen, M.Z., Hussain, M.E., Hakim, A. et al. (2019). Biodegradation of reactive

textile dye Novacron Super Black G by free cells of newly isolated Alcaligenes

faecalis AZ26 and Bacillus spp. obtained from textile effluents. Heliyon 5 (7):

e02068.

14 Roy, DC., Sheam M. Hasan, R. et al. (2020). Isolation and characterization of two

bacterial strains from textile effluents having malachite green dye degradation

ability. bioRxiv. https://doi.org/10.1101/2020.03.29.014274.

15 Ayman, Y., Ewida, I., Marwa, E. et al. (2019). Complete degradation of azo dye

acid red 337 by Bacillus megaterium KY848339 isolated from textile wastewater.

Water Science 33 (1): 154–161.

16 Ajaz, M., Rehman, A., Khan, Z. et al. (2019). Degradation of azo dyes by Alcali-

genes aquatilis 3c and its potential use in the wastewater treatment. AMB Express

9: 64.

17 Khan, R., Bhawana, P., and Fulekar, M.H. (2012). Microbial decolorization and

degradation of synthetic dyes: a review. Reviews in Environmental Science and

Bio/Technology 12 (1): 75–97.

18 Varjani, S. and Upasani, V.N. (2019). Influence of abiotic factors, natural atten-

uation, bioaugmentation and nutrient supplementation on bioremediation of