Dongqing Zhang, Antoine Prandota Trzcinski
The increasing release of engineered nanoparticles into wastewater systems has raised concerns regarding their long-term effects on biological treatment processes and soluble microbial product (SMP) formation. However, the effects of zinc oxide nanoparticles (ZnO NPs) on the composition, diversity, and persistence of low-molecular-weight (low-MW) SMPs in membrane bioreactors (MBRs) remain poorly understood. In this study, the long-term effects of ZnO NP exposure on SMP characteristics were investigated in submerged anoxic-aerobic MBRs operated with and without ZnO NP addition. SMP production, extracellular polymeric substances (EPS), molecular weight distribution, fluorescence properties, and low-MW SMP identification were analyzed using HPLC-SEC, FEEM fluorescence spectroscopy, and GC-MS. ZnO NP exposure increased polysaccharide production in both loosely bound and tightly bound EPS fractions, indicating stress-induced enhancement of the extracellular protective matrix. High-MW SMP fractions and protein- and fulvic acid-like fluorescence intensities also increased under ZnO NP stress. GC-MS analysis revealed that ZnO NP exposure increased the number and diversity of detectable low-MW SMPs, with a shift toward aromatics, esters, and alcohols, while the relative abundance of alkanes and alkenes decreased. Several compounds were detected exclusively in the ZnO NP-exposed reactor, suggesting stress-induced metabolic transformation and altered biodegradation pathways. Although many SMPs were partially or fully removed during treatment, some recalcitrant compounds persisted in the effluent, including long-chain hydrocarbons and aromatic derivatives. The results demonstrate that ZnO NP exposure substantially alters SMP composition and promotes the formation of more diverse and persistent low-MW organic compounds in MBR systems. These findings provide new insights into nanoparticle-induced stress responses and their implications for SMP dynamics, effluent quality, and membrane fouling in biological wastewater treatment systems.