Please use this identifier to cite or link to this item: http://bura.brunel.ac.uk/handle/2438/33063
Title: Guaiacol-enhanced laccase secretion by <i>Trametes versicolor</i> for lignin modification toward high-performance bamboo composites
Other Titles: Guaiacol-enhanced laccase secretion by Trametes versicolor for lignin modification toward high-performance bamboo composites
Authors: Wang, Y
Qin, Y
Yang, J
Du, G
Fan, M
Xia, Y
Zhou, X
Zhou, Y
Liao, J
Keywords: bamboo composites;Trametes versicolor;laccase induction;lignin depolymerisation;interfacial bonding;mechanical enhancement
Issue Date: 25-Mar-2026
Publisher: Elsevier
Citation: Wang, Y. et al. (2026) 'Guaiacol-enhanced laccase secretion by Trametes versicolor for lignin modification toward high-performance bamboo composites', Industrial Crops and Products, 243, 123149, pp. 1–12. doi: 10.1016/j.indcrop.2026.123149.
Abstract: This study reports high-performance bamboo-based composites engineered through a biological eco-modification strategy involving targeted lignin depolymerisation. By leveraging guaiacol-enhanced <i>Trametes versicolor</i> pretreatment, we achieved substantial improvements in the mechanical properties and water resistance of bamboo-phenolic resin composites via efficient biological modification of Dendrocalamus sinicus. This targeted biological modification boosted laccase activity to 2566.28 U/L, selectively depolymerised lignin and hemicellulose (by 6.97% and 11.46%, respectively) while preserving the cell wall skeleton, increased the crystallinity of bamboo from 28.28% to 31.94%, and enhanced the surface reactivity of bamboo for subsequent resin bonding. This bioconversion enhanced bamboo's chemical reactivity via targeted lignin demethoxylation and β-O-4 bond cleavage, efficiently generating additional phenolic hydroxyl groups, while also improving surface wettability (contact angle reduced from 109.73° to 79.96°) to facilitate resin penetration. Consequently, the resulting composites exhibited superior fiber-resin interfacial bonding, leading to exceptional mechanical performance, with tensile strength reaching 286.65 MPa (40.2% higher than untreated controls) and bonding strength of 9.74 MPa (33.6% improvement). Furthermore, the composites demonstrated enhanced water resistance and interfacial stability, underscoring their suitability for load-bearing applications. This targeted lignin depolymerisation strategy directly optimises the bamboo-resin interface, offering a sustainable pathway for the industrial production of high-strength biocomposites and enabling the value-added utilisation of bamboo resources.
Description: Highlights: • Guaiacol-induced metabolic targeting enables precise lignin modification. • Selective lignin removal increases bamboo crystallinity. • β-O-4 cleavage raises phenolic hydroxyls, improving interfacial bonding. • Improved bamboo properties yield high-performance biocomposites.
Data availability: Data will be made available on request.
URI: https://bura.brunel.ac.uk/handle/2438/33063
DOI: https://doi.org/10.1016/j.indcrop.2026.123149
ISSN: 0926-6690
Other Identifiers: ORCiD: Mizi Fan https://orcid.org/0000-0002-6609-3110
ORCiD: Yan Xia https://orcid.org/0000-0003-3121-4784
Appears in Collections:Department of Civil and Environmental Engineering Research Papers

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