Microbial fuel cell-induced production of fungal laccase to degrade the anthraquinone dye Remazol Brilliant Blue R

Springer Science and Business Media LLC - Tập 17 - Trang 1413-1420 - 2019
Marta Filipa Simões1, Alfredo Eduardo Maiorano2, Jonas Gomes dos Santos2, Luciana Peixoto3, Rodrigo Fernando Brambilla de Souza4, Almir Oliveira Neto4, António Guerreiro Brito5, Cristiane Angélica Ottoni2,6,7,8
1Biology Department, Edge Hill University, Lancashire, UK
2Laboratório de Biotecnologia Industrial, Instituto de Pesquisas Tecnológicas do Estado de São Paulo, São Paulo, Brazil
3Centre of Biological Engineering, University of Minho, Braga, Portugal
4Centro de Célula a Combustível e Hidrogênio, Instituto de Pesquisas Energéticas e Nucleares, São Paulo, Brazil
5Department of Biosystems Sciences and Engineering, Institute of Agronomy, University of Lisbon, Lisbon, Portugal
6São Paulo State University, UNESP, São Vicente, Brazil
7Instituto de Estudos Avançados do Mar (IEAMar/UNESP), São Vicente, Brazil
8Bioscience Institute, São Paulo State University, São Vicente, Brazil

Tóm tắt

The anthraquinone dye Remazol Brilliant Blue R is largely used in the textile industry. However, its removal from wastewaters is costly and complex. Many methods have been tested to solve this ecological problem, but there is still a need for efficient methods. We propose here an alternative use of a two-chambered microbial fuel cell (MFC), fuelled with domestic wastewater in the anodic chamber, to degrade a simulated textile dye effluent made of Remazol Brilliant Blue R inoculated with an immobilised fungal strain, Pleurotus ostreatus URM 4809, as a laccase producer, in the cathodic chamber. The MFC showed continuous synthesis of laccase in the cathodic chamber, which, in turn, promoted the rapid decolourisation, of more than 86% of the textile dye effluent. The yield was further increased by the addition of glycerol. Electrochemical monitoring also indicated an increase in power density and current density. After 20 days of MFC operation, 62.1% of organic matter was removed in the anodic compartment, thus leaving the effluent with a much lower toxicity.

Tài liệu tham khảo

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