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March 28, 2026Molecules10 citationsOpen Access

Bioremediation of Synthetic Dyes by White-Rot Fungi: Enzymatic Mechanisms, Biosorption, and Environmental Applications

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AFA FerreiraYTYgor Velloso TavaresNFNina Rezende Fontana

Key Points

  • The aim is to explore the potential of white-rot fungi in bioremediation, focusing on their enzymatic mechanisms for degrading synthetic dyes.
  • Reviewed biochemical mechanisms of laccases and peroxidases in dye degradation.
  • Analyzed operational parameters influencing fungal metabolic efficiency.
  • Evaluated environmental applications of white-rot fungi for textile effluent treatment.
  • Discussed challenges in maintaining enzymatic stability in non-sterile environments.
  • Outlook on the scaling of fungal treatments from laboratories to industrial applications.
  • Identified key extracellular enzymes involved in degrading synthetic dyes.
  • Confirmed that parameters like pH and temperature significantly affect enzymatic activity.
  • Highlighted successful applications of white-rot fungi in treating actual textile effluents.
  • Noted challenges regarding the stability and efficiency of the enzymes in industrial settings.

Abstract

The widespread utilization of synthetic dyes within the textile industry, driven by their chemical recalcitrance and diverse chromatic spectra, constitutes a significant global environmental challenge. Improper discharge of these highly stable effluents into natural water bodies leads to severe ecological imbalances, affecting aquatic life and soil integrity while posing indirect risks to human health due to their mutagenic potential. Conventional physicochemical treatment methods are often hindered by prohibitive operational costs and the frequent generation of hazardous secondary pollutants. Consequently, there is an urgent demand for sustainable biotechnological alternatives to mitigate these industrial impacts. Bioremediation, specifically using white-rot fungi, represents a robust and eco-friendly strategy for the degradation of complex aromatic structures. Species such as Trametes versicolor, Pleurotus ostreatus, and Phanerochaete chrysosporium utilize a specialized extracellular enzymatic complex to mineralize toxic compounds effectively. Here we review the ligninolytic capacity of white-rot fungi and their specialized enzymatic systems for environmental sustainability. The primary points are: (i) the biochemical mechanisms of the ligninolytic system of laccases and peroxidases during dye degradation; (ii) the influence of operational parameters such as pH, temperature, and nutrient availability on fungal metabolic efficiency; (iii) the diverse environmental applications of these microorganisms in treating real textile effluents; (iv) the current biotechnological challenges, including maintaining enzymatic stability in non-sterile industrial environments; and (v) the future perspectives for scaling up fungal treatment systems from laboratory research to large-scale industrial implementation.

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Cite This Study

Ferreira et al. (2026) studied this question.

synapsesocial.com/papers/69c770f78bbfbc51511e0d38https://doi.org/10.3390/molecules31071085
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