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Table 1_Adaptation and mechanisms of biodegradable mulching films in Jerusalem artichoke cultivation on the Qinghai-Tibet Plateau: crop-soil-microbe synergistic effects.xlsx
Summary
Farmers often cover fields with plastic sheeting to help crops grow in cold climates, but this plastic breaks down into microplastic pollution that lingers in soil for years. This study found that a biodegradable alternative worked just as well at boosting plant growth (and even improved a healthy fiber compound in the crop) while breaking down naturally by over 84%, compared to less than 7% for regular plastic film. That's good news for reducing microplastic buildup in farmland soil, which is important since these particles can eventually make their way into the food we eat.
Introduction Conventional polyethylene (PE) mulching can promote crop growth in high-altitude areas of the Qinghai-Tibet Plateau but may also contribute to residual plastic and microplastic pollution in soil. Biodegradable mulch film (BDM) has been proposed as a promising alternative, yet its agronomic performance and ecological effects in alpine agroecosystems remain insufficiently understood. Methods We conducted a field experiment in a high-altitude agro-pastoral ecotone of Qinghai Province, using Jerusalem artichoke (Helianthus tuberosus L.) as the test crop. Four treatments were established: BDM, black PE film, white PE film, and a no-mulch control. Soil hydrothermal conditions, apparent field mass loss, crop growth and tuber quality, soil nutrient status, and rhizosphere bacterial communities were evaluated. Results BDM increased soil temperature by 2.04 °C at the seedling stage and maintained relatively high soil water content during the rapid growth stage, reaching 79.80%. The apparent field mass loss of BDM reached 84.20%, far exceeding that of PE films (<7%). Compared with the no-mulch control, BDM increased plant height by 43.68% and tuber fructan content by 22.73%, whereas tuber yield showed only a non-significant increasing trend. BDM also increased soil alkali-hydrolyzablenitrogen by 19.44%. Proteobacteria dominated the rhizosphere bacterial community, and BDM enriched indicator genera, including Devosia, Pseudarthrobacter, and Cellvibrio. These genera were associated with crop growth traits, soil pH, and nitrogen-phosphorus dynamics. Discussion These findings indicate that BDM can provide dual benefits in cold alpine environments by supporting crop growth and quality while reducing recoverable residual film accumulation. This study provides scientific support for the use of biodegradable mulches as a green alternative to conventional PE mulches on the Qinghai-Tibet Plateau. However, the single-site, one-season design and the recoverable-film mass-loss method limit inference regarding long-term agronomic stability and complete biodegradation. Future studies should combine multi-year, multi-site trials with direct mineralization assays and functional validation of microbial processes to assess the long-term sustainability of BDM in alpine agroecosystems.