<p>Air pollution comprises complex mixtures of chemically reactive pollutants, including PM₂․₅, soot, transition metals, aldehydes, polycyclic aromatic hydrocarbons (PAHs) and volatile organic compounds (VOCs) that contribute to cardiopulmonary, neurological and dermatological injury, particularly in high-burden regions such as the Indo-Gangetic Plain. Conventional filtration systems efficiently remove particulate mass but often exhibit limited interaction with chemically reactive pollutant fractions within indoor and semi-enclosed microenvironments where human exposure is greatest. This review evaluates fungal biotechnology as a mechanistically relevant, exposure-centered complement to conventional air-pollution mitigation. Extracellular oxidoreductases may facilitate the oxidative transformation of aromatic VOCs and PAHs, while chitin–glucan–melanin cell-wall polymers contribute to immobilization of metal- and soot-associated toxicants. In parallel, porous mycelial architectures support particulate interception and extended pollutant–surface interaction under controlled conditions. Evidence from laboratory and pilot-scale studies of active mycofilters, immobilized-enzyme reactors, mycelium-based composites and hybrid fungal–biochar systems suggests potential for partial reduction of chemically reactive pollutant fractions under laboratory and pilot-scale conditions. Emerging translational approaches include mycelium-based composites, immobilized-enzyme systems and low-energy hybrid remediation platforms designed for localized exposure reduction. However, important limitations remain, including enzymatic instability, fouling, mixed-pollutant interference, biosafety concerns and the absence of standardized certification frameworks. Current evidence is further constrained by limited long-term field validation and substantial variability across experimental systems. Overall, fungal biotechnology represents a promising mechanistically informed approach for interacting with exposure-relevant pollutant chemistry that may not be fully addressed by purely capture-based filtration systems under certain indoor or chemically heterogeneous conditions. This review synthesizes mechanistic fungal biology, engineered remediation systems and exposure-centered air-quality perspectives relevant to emerging fungal air-remediation technologies.</p> Graphical Abstract <p>Integrated conceptual framework illustrating representative fungal pollutant-interaction pathways across the air-pollution lifecycle. Crop residues are converted into mushroom biomass, potentially reducing PM₂.₅ precursor emissions associated with residue burning. Fungal cell-wall polymers (chitin, β-glucans and melanin) support&#xa0;the biosorption of soot, metals and PAH-associated toxicants, while extracellular oxidoreductases (laccase, MnP and VP) may facilitate oxidative transformation of benzene-class VOCs, aldehydes and polycyclic aromatic hydrocarbons. Porous mycelium-based composites further support particulate interception, humidity buffering and prolonged contact with chemically reactive pollutant fractions within indoor and semi-enclosed microenvironments. Engineered fungal systems including mycofilters, immobilized-enzyme reactors and mycelium-derived biomaterials may contribute to localized reductions in exposure to PM<sub>2.5</sub>, ultrafine particles and VOCs in classrooms, kitchens, transit corridors and public buildings. Collectively, the schematic illustrates fungal biotechnology as a low-energy, circular-biomass-oriented and exposure-centered complement to conventional air-treatment and filtration approaches.</p> <p></p>

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Fungal biotechnology for air-pollution mitigation: Mechanistic pathways, engineered systems and exposure-centered applications

  • Sujata Makkar,
  • Sudheer Kumar Annepu,
  • Ajay Singh

摘要

Air pollution comprises complex mixtures of chemically reactive pollutants, including PM₂․₅, soot, transition metals, aldehydes, polycyclic aromatic hydrocarbons (PAHs) and volatile organic compounds (VOCs) that contribute to cardiopulmonary, neurological and dermatological injury, particularly in high-burden regions such as the Indo-Gangetic Plain. Conventional filtration systems efficiently remove particulate mass but often exhibit limited interaction with chemically reactive pollutant fractions within indoor and semi-enclosed microenvironments where human exposure is greatest. This review evaluates fungal biotechnology as a mechanistically relevant, exposure-centered complement to conventional air-pollution mitigation. Extracellular oxidoreductases may facilitate the oxidative transformation of aromatic VOCs and PAHs, while chitin–glucan–melanin cell-wall polymers contribute to immobilization of metal- and soot-associated toxicants. In parallel, porous mycelial architectures support particulate interception and extended pollutant–surface interaction under controlled conditions. Evidence from laboratory and pilot-scale studies of active mycofilters, immobilized-enzyme reactors, mycelium-based composites and hybrid fungal–biochar systems suggests potential for partial reduction of chemically reactive pollutant fractions under laboratory and pilot-scale conditions. Emerging translational approaches include mycelium-based composites, immobilized-enzyme systems and low-energy hybrid remediation platforms designed for localized exposure reduction. However, important limitations remain, including enzymatic instability, fouling, mixed-pollutant interference, biosafety concerns and the absence of standardized certification frameworks. Current evidence is further constrained by limited long-term field validation and substantial variability across experimental systems. Overall, fungal biotechnology represents a promising mechanistically informed approach for interacting with exposure-relevant pollutant chemistry that may not be fully addressed by purely capture-based filtration systems under certain indoor or chemically heterogeneous conditions. This review synthesizes mechanistic fungal biology, engineered remediation systems and exposure-centered air-quality perspectives relevant to emerging fungal air-remediation technologies.

Graphical Abstract

Integrated conceptual framework illustrating representative fungal pollutant-interaction pathways across the air-pollution lifecycle. Crop residues are converted into mushroom biomass, potentially reducing PM₂.₅ precursor emissions associated with residue burning. Fungal cell-wall polymers (chitin, β-glucans and melanin) support the biosorption of soot, metals and PAH-associated toxicants, while extracellular oxidoreductases (laccase, MnP and VP) may facilitate oxidative transformation of benzene-class VOCs, aldehydes and polycyclic aromatic hydrocarbons. Porous mycelium-based composites further support particulate interception, humidity buffering and prolonged contact with chemically reactive pollutant fractions within indoor and semi-enclosed microenvironments. Engineered fungal systems including mycofilters, immobilized-enzyme reactors and mycelium-derived biomaterials may contribute to localized reductions in exposure to PM2.5, ultrafine particles and VOCs in classrooms, kitchens, transit corridors and public buildings. Collectively, the schematic illustrates fungal biotechnology as a low-energy, circular-biomass-oriented and exposure-centered complement to conventional air-treatment and filtration approaches.