Qianting Zhuo, Ranran Wei, Ya Su, Haochen Shao, Lujia Han, Guangqun Huang
Microplastics (MPs) are emerging contaminants that may disrupt Earth's biogeochemical cycles of elements, yet their effects on multi-element cycling during aerobic fermentation of livestock manure remain unclear. This study evaluated how polyethylene (PE) MPs and fermentation strategy affected multi-element functional potential during aerobic fermentation of dairy manure solids by integrating metagenomic functional profiling, co-occurrence networks, and other complementary approaches. Fermentation time dominated functional gene succession, with treatment separation becoming most evident on day 30. Biomarkers were confined to the C cycling and detected only in the low concentration treatments, with none at the higher concentration. Network analysis revealed predominantly positive associations among genes involved in different elemental cycles. The membrane-covered treatment at the lower concentration formed the most connected network. The pathway profiles and network topology in the membrane-covered treatment at the higher concentration were similar to those of the blank control. This suggests that, under high MPs exposure, the membrane-covered treatment retained a functional profile similar to the blank control, likely in association with the more stable fermentation conditions in the membrane-covered treatment. Physicochemical properties, process variables, and gas emissions jointly explained 78% of functional gene variation. Mantel tests and structural equation modelling further linked fermentation conditions, gas emissions, and multi-element functional potential. Overall, multi-element functional responses to MP exposure varied with fermentation stage, strategy, and PE MP concentration. These findings highlight the importance of fermentation management when assessing multi-element functional responses to MP exposure during manure valorization.