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January 18, 2026Bioresources and Bioproducts4 citationsOpen Access

Bioinspired Improvement of Lignocellulosic Bio-Based Materials Against Fire and Fungi—A Comprehensive Review

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JTJovale Vincent TongcoAMArmando G. McDonald

Key Points

  • The aim is to analyze bioinspired improvements in lignocellulosic materials to enhance their resistance against fire and fungi.
  • Reviewed advancements in biomimetics and bioinspired strategies
  • Discussed mineralization and biomineralization processes
  • Assessed the effectiveness of nanomaterials and protein treatments against fire and fungi
  • Evaluated metal-chelating techniques and their protective mechanisms
  • Mineralized composites show improved thermal stability
  • Nanocellulose and lignin nanoparticles create effective barriers
  • Protein treatments inhibit fungal growth and enhance properties
  • Synergistic approaches can lead to multifunctional protections

Abstract

Lignocellulosic bio-based materials, such as wood, biocomposites, and natural fibers, exhibit desirable structural properties. This comprehensive review emphasizes the foundational and latest advancements in bioinspired improvement strategies, such as direct mineralization, biomineralization, lignocellulosic nanomaterials, protein-based treatments, and metal-chelating processes. Significant focus was placed on biomimetics, emulating natural protective mechanisms, with discussions on relevant topics including hierarchical mineral deposition, free-radical formation and quenching, and selective metal ion binding, and relating them to lignocellulosic bio-based material property improvements, particularly against fire and fungi. This review evaluates the effectiveness of different bioinspired processes: mineralized and biomineralized composites improve thermal stability, nanocellulose and lignin nanoparticles provide physical, thermal, and chemical barriers, proteins offer biochemical inhibition and mineral templating, and chelators interfere with fungal oxidative pathways while simultaneously improving fire retardancy through selective binding with metal ions. Synergistic approaches integrating various mechanisms could potentially lead to long-lasting and multifunctional protection. This review also highlights the research gaps, challenges, and potential for future applications.

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Cite This Study

Tongco et al. (2026) studied this question.

synapsesocial.com/papers/696c77d4eb60fb80d139616chttps://doi.org/10.3390/bioresourbioprod2010003
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