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Biodegradation of PBSA Films by Elite Aspergillus Isolates and Farmland Soil

Polymers 2022 39 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Hsiao-Lin Chien, Hsiao-Lin Chien, Yi‐Ting Tsai, Wei-Sung Tseng, Wei-Sung Tseng, Jin‐An Wu, Shin‐Liang Kuo, Shin‐Liang Kuo, Sheng-Lung Chang, Sheng-Lung Chang, Shu–Jiuan Huang, Shu–Jiuan Huang, Chi‐Te Liu

Summary

Researchers isolated two Aspergillus fungal strains from farmland soil that efficiently degrade PBSA biodegradable mulch films, demonstrating that agricultural soils harbor fungi capable of breaking down these plastic alternatives under realistic field conditions.

Plastic films are widely used in current agricultural practices; however, most mulch films used are discarded and buried in the land after harvest, having adverse environmental impacts. To solve this environmental problem, the demand for biodegradable mulch has been increasing in recent years. Polybutylene succinate-co-adipate (PBSA) is a biodegradable polymer with good ductility and can be used for packaging and mulching. In this study, we isolated two elite fungal strains for PBSA degradation from farmlands, i.e., <i>Aspergillus fumigatus</i> L30 and <i>Aspergillus terreus</i> HC, and the latter showed better degradation ability than the former. It is noteworthy that biodegradation of PBSA by <i>A. terreus</i> is reported for the first time, which revealed unique characteristics. In the soil burial test, even the soil with relatively poor degradation ability could be improved by the addition of elite fungal mycelia. In substrate specificity analyses of soil samples, PBSA could induce the synthesis of lipolytic enzymes of indigenous microbes to degrade substrates with medium and long carbon chains in soil. Furthermore, PBSA residues or fungal mycelia supplementation in soils had no adverse effect on the seed germination rate, seedling growth, or mature plant weight of the test green leafy vegetable. Taken together, the results of this study not only advance our understanding of the biodegradation of PBSA films by filamentous fungi but also provide insight into improving the efficiency of biodegradation in soil environments.

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