0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Sign in to save

A comprehensive review on microplastics as vectors of chemical and biological pollutants

Figshare 2026
Pegah Nazari, Amir Hossein Hamidian, Yu Shrike Zhang, Min Yang

Summary

Microplastics don't just pollute on their own—this review of existing research shows they can act like tiny sponges, soaking up harmful chemicals and germs from the environment and carrying them into animals and ecosystems (and potentially our food supply). Studies suggest pollutants that hitch a ride on microplastics may be even more toxic and prone to building up in living things than pollutants floating freely, though real-world conditions like biofilm growth make this tricky to predict. The takeaway: we need more research on microplastics in realistic settings to understand the true health risks and create better policies to limit exposure.

The increase in microplastics has the potential to cause harm to ecosystems and can also create a hazard through their role as a ‘transport vector’. This review offers a novel contribution by systematically mapping evidence from multiple studies. We present a synthesis of various pollutant categories and polymer types across both aquatic and terrestrial environments, providing a broader understanding of MPs’ role in pollutant transport. This study emphasizes the importance of real-world environmental factors, such as surface properties, pollutant characteristics, environmental conditions, and biofilms, that influence the adsorption and desorption of pollutants on MPs. By integrating the effects of biofilm formation and aging into a unified framework and comparing MPs with natural particles, we offer a nuanced perspective on how these factors jointly affect pollutant dynamics. Our findings highlight the complex, context-dependent nature of MPs as vectors and link it to raising concerns about pollutant bioavailability and ecological risks. Our evidence suggests that pollutant-loaded MPs are more toxic than unbound pollutants and contribute to bioaccumulation in aquatic and terrestrial organisms. This review extends previous models, which focused on general adsorption principles derived from laboratory studies, by incorporating real-world dynamics and critically assessing the limitations of existing research. We emphasize the need for further studies in environmentally relevant conditions to better understand the ecological risks posed by MPs, which is essential for the development of effective mitigation strategies and informed policy decisions.

Share this paper