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Updated: Mar 13, 2026

Isolation of Native Soil Microorganisms with Potential for Breaking Down Biodegradable Plastic Mulch Films Used in Agriculture
Published on: May 10, 2013
Interactive effects of drought and microplastic particle size on soil bacterial community structure
Yiran Hou1, Biao Liu1, Jiaying Zhao1
1Henan Key Laboratory of Water Pollution Control and Rehabilitation Technology, Henan University of Urban Construction, Pingdingshan 467036, China.
Abstract:
The coexistence of microplastics (MPs) and drought threatens soil health, yet how MP size modulates microbial drought response remains unknown, hindering prediction of their combined impact. This study investigated the individual and combined impacts of drought and MPs of varying polymer types (non-degradable polypropylene, PP vs biodegradable polyhydroxyalkanoates, PHA) and particle sizes on soil bacterial communities. After a 60-day incubation, we analyzed soil properties, enzyme activities, bacterial composition, co-occurrence networks, and metabolomic profiles. Our results demonstrated that drought and MPs synergistically altered soil physicochemical and biological properties. Notably, the effects of MPs were highly dependent on their size, with small-particle-size MPs exerting the most pronounced influence on microbial diversity and network structure, under non-drought conditions, PHA20 treatment reduced the Shannon index by 25%, while under drought conditions, it decreased by 29%. Co-occurrence network analysis revealed that drought and most MPs decreased overall network connectivity, yet the combination of drought and certain MPs (e.g., PHA) enhanced modularity, indicating a potential shift in community stability strategy. Metabolomic profiling further confirmed that small-particle-size MPs induced the most substantial shifts in soil metabolic pathways. Redundancy analysis identified pH, nitrogen components, and specific enzymes as key drivers shaping the microbial community under different treatments. These findings provide critical evidence that MPs particle size is a crucial factor determining the impact of MPs on soil ecosystems under drought conditions, highlighting the need to consider this variability for accurate ecological risk assessment of plastic pollution in a changing climate.
Insights
Microplastic (MP) particle size significantly impacts soil microbial communities, especially under drought. Small MPs altered soil properties and bacterial networks more than larger ones, affecting ecosystem health.
Area of Science:
- Environmental Science
- Soil Science
- Microbiology
Background:
- Microplastics (MPs) and drought co-exist, posing risks to soil health.
- The influence of MP size on microbial responses to drought is not well understood.
Purpose of the Study:
- To investigate how MP size and polymer type affect soil bacterial communities under drought.
- To assess the combined impacts of drought and MPs on soil properties, enzyme activities, and microbial networks.
Main Methods:
- Incubation of soil with polypropylene (PP) and polyhydroxyalkanoates (PHA) MPs of varying sizes under drought and non-drought conditions.
- Analysis of soil physicochemical properties, enzyme activities, bacterial composition, co-occurrence networks, and metabolomics.
Main Results:
- Drought and MPs synergistically altered soil properties; MP effects depended heavily on particle size.
- Small MPs had the most significant impact on microbial diversity and network structure.
- Drought and MPs altered microbial network connectivity and modularity; small MPs induced substantial metabolic pathway shifts.
Conclusions:
- MP particle size is a critical factor influencing soil microbial communities under drought.
- Accurate ecological risk assessment of plastic pollution requires considering MP size variability in a changing climate.

