Cold-water gut isolate from threespine stickleback ( Gasterosteus aculeatus ) reveals polypropylene surface oxidation and co-culture inhibition
Sarah M. Pasqualetti, Jolie Atwood, Abiodun Aderibigbe, Edward Russell, Kayleigh O'Keefe, Victoria Rosario, Kelly Ireland, Kenneth Sparks, Koral Campbell, Ruth Y. Isenberg, Ryan Lucas, Kathryn Milligan-McClellanABSTRACT
Polyethylene terephthalate (PET) and polypropylene (PP), two of the most widely produced plastics in the United States, persist in diverse environments worldwide and may persist longer in cold-water environments where plastic-degrading microbial taxa have been poorly characterized. Understanding how gut microbes interact and contribute to plastic degradation is essential for developing potential microbiome-based bioremediation strategies. We isolated 184 microbes from wild Alaskan threespine stickleback (
IMPORTANCE
Plastic pollution persists in cold, freshwater environments and presents a significant challenge to the ecosystem, where low temperatures slow abiotic degradation, and microbial contributions remain poorly understood and understudied. Here, we isolated 184 microbes from adult Alaskan threespine stickleback guts across six bodies of water and screened for plastic-degradation potential using plate-based assays under both monoculture and co-culture conditions. We identified a stickleback gut-associated microbe that can oxidize polypropylene and identified a second microbe, isolated from the same environment, that can significantly suppress polymer oxidation when in co-culture. Together, these findings demonstrate that microbial interactions influence plastic-degradation abilities and support efforts to identify ecologically relevant microbes or enzymes for bioremediation efforts.