What's Happening?
A recent study by the World Institute of Kimchi has identified a lactic acid bacterium, Leuconostoc mesenteroides CBA3656, isolated from kimchi, that demonstrates the ability to bind to nanoplastics and potentially aid in their removal from the body.
Nanoplastics, which are ultrafine plastic particles less than 1 micrometer in size, can enter the human body through food and water and accumulate in organs. The research team, led by Drs. Se Hee Lee and Tae Woong Whon, investigated the adsorption capacity of this kimchi-derived bacterium against polystyrene nanoplastics (PS-NPs). Under laboratory conditions, strain CBA3656 exhibited a high adsorption efficiency of 87%. More significantly, under simulated human intestinal conditions, where the adsorption rate of a reference strain sharply decreased, CBA3656 maintained a substantial adsorption level of 57%. Animal experiments using a germ-free mouse model further supported these findings, showing that mice administered strain CBA3656 had more than a twofold increase in nanoplastics detected in their feces compared to a control group. This suggests the probiotic may contribute to the excretion of nanoplastics by binding to them in the intestine.
Why It's Important?
This discovery holds significant implications for public health, as plastic pollution is increasingly recognized as a major environmental and health concern. Nanoplastics, due to their minute size, can cross the intestinal barrier and accumulate in vital organs such as the kidneys and brain, posing potential long-term health risks. Currently, biological strategies to reduce nanoplastic accumulation in the gastrointestinal tract are in their early stages of research. The identification of a kimchi-derived bacterium with a stable and effective nanoplastic-binding capacity in gut-like environments offers a novel and natural approach to address this emerging challenge. This could lead to the development of new dietary interventions or probiotic treatments aimed at mitigating the health impacts of nanoplastic exposure, benefiting individuals by potentially reducing the body's plastic burden and contributing to overall gut health.
What's Next?
The lead researcher, Dr. Sehee Lee, stated that the team will continue to expand the scientific value of kimchi microbial resources to contribute to public health and environmental solutions. Future research will likely focus on further understanding the mechanisms by which Leuconostoc mesenteroides CBA3656 binds to nanoplastics and optimizing its application. This could involve clinical trials to assess its efficacy and safety in humans, as well as exploring methods for incorporating this bacterium into functional foods or supplements. The findings may also spur broader investigations into other microorganisms found in traditional fermented foods for their potential in addressing environmental micropollutants. The long-term goal is to develop practical and accessible biological strategies to help reduce nanoplastic accumulation in the human body.
Beyond the Headlines
The study highlights a deeper connection between traditional dietary practices and modern environmental challenges. Fermented foods, long recognized for their gut health benefits, are now being explored for their potential in addressing novel threats like nanoplastic pollution. This research underscores the importance of microbial diversity, not just within the human gut, but also in the broader ecosystem, as a source of innovative solutions. It also raises ethical considerations regarding the widespread presence of nanoplastics in our food chain and environment, emphasizing the urgent need for both preventative measures against plastic pollution and effective remediation strategies. The potential for a food-derived solution could empower individuals to take a more active role in managing their exposure to environmental contaminants through dietary choices, fostering a greater appreciation for the health benefits of traditional fermented foods.













