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Turkey Tail, Yun Zhi · 2025 · Research Support, Non U.S. Gov'T

Medium relevance

Antifungal Performance and Mechanisms of Carbon Quantum Dots in Cellulosic Materials.

Trametes versicolor

OncologyImmune supportEnergy & fatigue
SpeciesTurkey Tail, Yun Zhi
JournalACS nano
Year2025

Key points

  • CQDs with proper structure demonstrated significant antifungal effects against both brown-rot ( Postia placenta, Pp) and white-decay fungi ( Trametes versicolor, Tv) on various cellulosic materials
  • The underlying antifungal mechanisms of CQDs on cellulosic materials were further elucidated
  • We found that positively charged nanosized CQDs primarily adhered to and penetrated into fungal cell membranes
  • This led to fungal metabolism disorder, a significant reduction in enzymatic activities, and ultimately cell death, as confirmed by transcriptome analysis
  • Furthermore, CQDs have the ability to chelate Fe 3+, which results in the inhibition of the Fenton reaction and the hindering of the nonenzymatic cellulose degradation
  • These findings suggest that CQDs inhibit fungal degradation of cellulosic materials through integrated mechanisms, with potential implications for sustainable cellulose applications

Metadata-grounded summary

Citation abstract

Cellulosic materials, which are widely utilized in daily life, are highly susceptible to fungal degradation. However, commercial fungicides are usually toxic, posing severe threats to human health and the environment, highlighting the necessity of developing eco-friendly antifungal agents for cellulosic materials. In this work, we synthesized nitrogen-doped carbon quantum dots (CQDs) via a microwave-assisted method. CQDs with proper structure demonstrated significant antifungal effects against both brown-rot ( Postia placenta, Pp) and white-decay fungi ( Trametes versicolor, Tv) on various cellulosic materials. The underlying antifungal mechanisms of CQDs on cellulosic materials were further elucidated. We found that positively charged nanosized CQDs primarily adhered to and penetrated into fungal cell membranes. This led to fungal metabolism disorder, a significant reduction in enzymatic activities, and ultimately cell death, as confirmed by transcriptome analysis. Additionally, CQDs generated reactive oxygen species (ROS) under light, causing oxidation and dysfunction of the fungal cell wall. Furthermore, CQDs have the ability to chelate Fe 3+, which results in the inhibition of the Fenton reaction and the hindering of the nonenzymatic cellulose degradation. These findings suggest that CQDs inhibit fungal degradation of cellulosic materials through integrated mechanisms, with potential implications for sustainable cellulose applications.

Citation

Zhao X, Zhang S, Zhang M, Zhang Z, Zhou M, Cao J (2025). Antifungal Performance and Mechanisms of Carbon Quantum Dots in Cellulosic Materials. ACS nano https://doi.org/10.1021/acsnano.5c00052 PMID: 40183541

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