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A biomimetic biofilm-inspired hydrogel for enhanced ultraviolet- shielding and anti-scouring ability of microbial pesticides

Wang, Zeyu, Shen, Qinghui, Ma, Xiaoxu, He, Zirong, Berry, Colin ORCID: https://orcid.org/0000-0002-9943-548X, He, Xiang, Shu, Changlong, Huang, Qiliang, Hassen, Ahmed Idris, Cao, Chong and Zhang, Jie 2026. A biomimetic biofilm-inspired hydrogel for enhanced ultraviolet- shielding and anti-scouring ability of microbial pesticides. Chemical Engineering Journal 545 , 179471. 10.1016/j.cej.2026.179471

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Abstract

Bacillus thuringiensis is a widely used microbial pesticide but suffers from rapid degradation under ultraviolet radiation and wash-off due to rainwater, limiting its field persistence. Bacterial biofilms are formed by communities that are embedded in a self-produced matrix exhibit a set of “emergent properties” such as ultraviolet- resistance and viscosity. While conventional hydrogels primarily function as passive carriers, this study develops a novel supramolecular hydrogel formulation combining B. thuringiensis spores and crystals simulating a biofilm to enhance environmental resilience. The B. thuringiensis hydrogel exhibits a three-dimensional porous network structure, significant shear-thinning behavior, and rapid self-healing properties, facilitating spray application and adhesion. Compared to conventional B. thuringiensis wettable powder, the hydrogel demonstrates superior anti-scouring ability, increasing 47%–55% insecticidal protein deposition on the surface due to inhibited droplet bouncing and increase in adhesion force by about 85% to tomato leaves. It also enhances ultraviolet resistance, retaining 64–73% more insecticidal proteins after ultraviolet exposure indoors and outdoors, thus, inducing more damage on the gut of target insect larvae. Consequently, the field control efficiency of the hydrogel reached 73% against tomato leafminer after 14 days, 27% higher than the wettable powder. This hydrogel offers a promising approach to prolong microbial pesticide persistence in sustainable agriculture.

Item Type: Article
Date Type: Publication
Status: Published
Schools: Schools > Biosciences
Publisher: Elsevier
ISSN: 1385-8947
Date of First Compliant Deposit: 20 July 2026
Date of Acceptance: 12 July 2026
Last Modified: 04 Aug 2026 13:30
URI: https://orca.cardiff.ac.uk/id/eprint/188322

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