The textile industry generates dye-containing wastewater characterized by intense coloration, high salinity, elevated oxygen demand, and recalcitrant pollutants. Although conventional treatment technologies can remove color and reduce organic load, decolorization alone does not guarantee detoxification because toxic transformation products may persist or be generated during incomplete degradation. This review emphasizes the synergistic interaction between oxidative and reductive enzymes and microorganisms as a promising strategy for promoting extensive pollutant transformation and potentially enhancing mineralization. Particular attention is given to the complementary roles of laccases (LAC), azoreductases (AZOR), ligninolytic peroxidases, bacteria, fungi, and microbial consortia in sequential degradation pathways that can improve detoxification efficiency. Mechanisms including azo bond cleavage, aromatic amine transformation, and subsequent microbial degradation are discussed to demonstrate how integrated systems can overcome the limitations of enzyme- or microorganism-based treatments alone and may facilitate complete pollutant removal under appropriate conditions. The review also explores biomass-derived biocatalysts produced through solid-state fermentation of agro-industrial residues, demonstrating opportunities to integrate wastewater remediation with biomass valorization and circular bioeconomy principles. Finally, operational challenges, toxicity assessment, reactor design, enzyme immobilization, scale-up, and techno-economic considerations are discussed, and future research priorities are identified to support the development of sustainable and industrially applicable enzymatic–microbial detoxification technologies.
The textile industry generates vast quantities of dye-contaminated wastewater, posing risks to environmental sustainability and human health. Conventional treatment methods are often energy-intensive, expensive, and cause secondary pollution; hence, environmentally friendly alternatives are required to replace them. Ho...
Manvi Rawat, A. Bhatt, P. K. Agrawal· Discover Environment· 0 citations
Combining free cell systems with immobilized microbial consortia can greatly enhance dye removal efficiency while lowering treatment costs, and offer sustainable and scalable solutions for treating textile dye wastewater, promoting environmentally friendly wastewater management and supporting cleaner production in the...
Vijayalakshmi Pradeep, N. Ashwini, HG VarshiniRaju et al.· 0 citations
Azo dyes account for the majority of synthetic colorants discharged by the textile, leather, paper and food industries, and their recalcitrant azo bonds, together with the carcinogenic and mutagenic aromatic amines that can arise from their reductive cleavage, make them a persistent environmental and public health conc...
Sheetal Sahare, R. P. Kushvaha, Renu Mishra et al.· Asian Journal of Biotechnolo...· 0 citations
Overall, microbial bioremediation represents a promising strategy for sustainable wastewater management and environmental restoration and future research should focus on integrating advanced biotechnology, systems biology, and process optimization to enhance large-scale implementation and contribute to achieving global...
S. Idris, Hassan Hafsat, Abdulmajid Ahmad et al.· Nigerian Journal of Biotechn...· 0 citations
Abstract Industrial discharge of dye-containing effluents into aquatic environments poses severe ecological and human health risks because of their toxicity, persistence, and potential carcinogenicity. Among different dye classes, cationic dyes are particularly difficult to eliminate due to their high solubility, chemi...
S. Roshan, N. Venkatesh, Sivaramalakshmi Sivaramakrishnan et al.· Reviews in chemical engineer...· 0 citations
Increased contamination and complexity of wastewater due to rapid industrialization, urbanization, and new contaminants have highlighted the limitations of conventional treatment technologies. The treatment of complex wastewater matrices containing heavy metals, refractory organic contaminants, pharmaceuticals, per- an...
Aminur Rahman, Muhammad Muhitur Rahman, Aftab Ahmad Khan et al.· Processes· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.