Papers

61,005 results
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Article Tier 2

Gut Microbiome and Degradation Product Formation during Biodegradation of Expanded Polystyrene by Mealworm Larvae under Different Feeding Strategies

Researchers found that mealworm larvae successfully degrade polystyrene under different feeding strategies, with gut microbiome composition and degradation byproduct profiles varying by diet, demonstrating that diet manipulation can optimize the biological plastic-degradation capacity of the mealworm system.

2021 Molecules 34 citations
Article Tier 2

Optimizing polystyrene degradation, microbial community and metabolite analysis of intestinal flora of yellow mealworms, Tenebrio molitor.

Yellow mealworm larvae fed only expanded polystyrene were found to biodegrade the plastic, with the efficiency depending on temperature and humidity conditions. The gut microbiome of the larvae played a key role, and researchers identified metabolic pathways involved in polystyrene breakdown, advancing understanding of insect-based plastic biodegradation.

2024 Bioresource technology
Article Tier 2

Gut microbiome of mealworms (Tenebrio molitor Larvae) show similar responses to polystyrene and corn straw diets

Researchers compared the gut microbiomes of mealworms fed polystyrene plastic versus corn straw and found strikingly similar microbial community responses to both diets. The findings suggest that the ability of mealworm larvae to break down plastics likely evolved from ancient biological mechanisms originally designed to digest natural plant fibers like lignocellulose. The study points to mealworm gut bacteria as a potential resource for developing biological plastic degradation strategies.

2023 Microbiome 73 citations
Article Tier 2

Biodegradation of Polystyrene by Plastic-Eating Tenebrionidae Larvae

Researchers examined the biodegradation of polystyrene by Tenebrionidae beetle larvae, testing the ability of plastic-eating mealworm larvae to break down the highly stable, hydrophobic polymer. The study characterized polymer molecular weight changes, gut microbiome contributions, and metabolic byproducts, demonstrating that larval gut bacteria play a key role in PS depolymerization.

2024 Preprints.org
Article Tier 2

Influence of Polymer Size on Polystyrene Biodegradation in Mealworms (Tenebrio molitor): Responses of Depolymerization Pattern, Gut Microbiome, and Metabolome to Polymers with Low to Ultrahigh Molecular Weight

Mealworms fed polystyrene microplastics of varying molecular weights (low to ultrahigh) over 24 days showed significant differences in biodegradation rate, gut microbiome composition, and metabolic profiles. Lower molecular weight polystyrene was biodegraded more efficiently, suggesting that polymer molecular weight is a key factor in insect-mediated plastic degradation.

2022 Environmental Science & Technology 64 citations
Article Tier 2

Responses of gut microbiomes to commercial polyester polymer biodegradation in Tenebrio molitor Larvae

Researchers demonstrated that mealworms (Tenebrio molitor) can rapidly biodegrade commercial polyethylene terephthalate microplastics, with gut microbiome analysis revealing specific bacterial communities that shift in response to PET consumption and enable its breakdown.

2023 Journal of Hazardous Materials 47 citations
Article Tier 2

Effects of plastic aging on biodegradation of polystyrene by Tenebrio molitor larvae: Insights into gut microbiome and bacterial metabolism

Researchers showed that UV and freeze-thaw pretreatment of polystyrene microplastics modestly improved biodegradation by mealworm larvae (Tenebrio molitor), but more notably reshaped the larvae's gut microbial communities and associated metabolic gene profiles, suggesting that plastic aging mainly affects how the gut microbiome adapts rather than dramatically changing degradation rates.

2024 The Science of The Total Environment 11 citations
Article Tier 2

Biodegradation of Polystyrene by Plastic-Eating Tenebrionidae Larvae

Researchers tested the ability of mealworm (Tenebrio molitor) and superworm (Zophobas morio) larvae to biodegrade polystyrene foam through feeding experiments with different dietary conditions. They found that both species could consume and break down polystyrene, with gut microorganisms playing a key role in the degradation process. The study suggests that insect-based biodegradation could offer a biological approach to addressing polystyrene waste in the environment.

2024 Polymers 10 citations
Article Tier 2

Isolation of Plastic Digesting Microbes from the Gastrointestinal Tract of Tenebrio Molitor

Researchers isolated bacteria from the gut of Tenebrio molitor mealworm larvae that are capable of degrading polystyrene and polyethylene microplastics. The identified gut microbes showed plastic-degrading enzymatic activity, suggesting potential for bioremediation applications.

2024 1 citations
Article Tier 2

Biodegradation of polystyrene microplastics by superworms (larve of Zophobas atratus): Gut microbiota transition, and putative metabolic ways

Researchers fed polystyrene microplastics to superworms (Zophobas atratus larvae) and found reduced survival and weight, along with major shifts in gut microbial communities including an increase in Hafnia-Obesumbacterium. Metabolomic analysis identified three metabolic pathways through which superworm gut microbes break down polystyrene.

2023 Chemosphere 17 citations
Article Tier 2

Biodegradation of aged polyethylene (PE) and polystyrene (PS) microplastics by yellow mealworms (Tenebrio molitor larvae)

Yellow mealworm larvae were able to consume and biodegrade both fresh and aged polyethylene film and polystyrene foam over a 35-day period. While aged plastics slightly slowed larval growth, the worms still broke down the plastic with help from their gut bacteria, confirmed by chemical analysis showing structural changes in the consumed plastic. This biological approach to plastic degradation could help reduce the amount of plastic waste that eventually breaks down into microplastics in the environment.

2024 The Science of The Total Environment 22 citations
Article Tier 2

Polystyrene microplastics biodegradation by gut bacterial Enterobacter hormaechei from mealworms under anaerobic conditions: Anaerobic oxidation and depolymerization

Researchers discovered that the gut bacterium Enterobacter hormaechei from mealworms can oxidize and depolymerize polystyrene microplastics under anaerobic conditions, offering a potential biological approach to plastic waste degradation.

2023 Journal of Hazardous Materials 44 citations
Article Tier 2

Polystyrene-degrading bacteria modulate host stress and toxicity responses to microplastic exposure in Caenorhabditis elegans

Scientists studied how gut bacteria affect the health impacts of microplastics (tiny plastic particles) using lab worms as a model. They found that different types of plastic-eating bacteria in the gut can either make microplastic exposure more harmful or help protect against it. This research suggests that the specific mix of bacteria in our intestines might influence how dangerous microplastics are to our health.

2026 The ISME Journal
Article Tier 2

Generation and Fate of Nanoplastics in the Intestine of Plastic-Degrading Insect (Tenebrio molitor Larvae) during Polystyrene Microplastic Biodegradation

Researchers tracked what happens to nanoplastics inside mealworm larvae as they digest polystyrene microplastics. They found that nanoplastics were generated during digestion and initially accumulated in gut tissues and glands, but concentrations declined over four weeks and eventually fell below detection limits, suggesting the larvae and their gut microbes can work together to break down even these tiny plastic particles.

2024 Environmental Science & Technology 37 citations
Article Tier 2

Polystyrene influences bacterial assemblages in Arenicola marina-populated aquatic environments in vitro

This study found that polystyrene microplastics altered the bacterial communities in the gut of the marine worm Arenicola marina and in surrounding sediments, including increasing the abundance of potential pathogens. The results raise concern that microplastic ingestion by marine invertebrates could disrupt their gut microbiome in ways that affect their health and the broader sediment ecosystem.

2016 Environmental Pollution 49 citations
Article Tier 2

Unveiling Fragmentation of Plastic Particles during Biodegradation of Polystyrene and Polyethylene Foams in Mealworms: Highly Sensitive Detection and Digestive Modeling Prediction

Researchers discovered that mealworms biodegrading polystyrene and polyethylene foams generate micro- and nanoplastic fragments during the digestion process, despite removing over 70% of the ingested plastic. The study developed a digestive biofragmentation model to predict plastic fragmentation patterns, suggesting that insect-based plastic biodegradation may create secondary contamination that warrants further assessment.

2023 Environmental Science & Technology 37 citations
Article Tier 2

Tenebrio molitor: possible source of polystyrene-degrading bacteria

Researchers identified that Klebsiella oxytoca bacteria, found in the gut of mealworm beetles (Tenebrio molitor), may be key players in breaking down polystyrene plastic, pointing to insects as a potential source of microbe-based plastic biodegradation solutions.

2022 BMC Biotechnology 31 citations
Article Tier 2

Polystyrene-degrading bacteria in the gut microbiome of marine benthic polychaetes support enhanced digestion of plastic fragments

Researchers found that marine worms called clamworms harbor gut bacteria capable of breaking down polystyrene foam, but this digestion also generates microplastics averaging 0.6 mm in diameter, meaning these worms both degrade and produce microplastics — complicating their role in marine plastic pollution.

2024 Communications Earth & Environment 29 citations
Article Tier 2

Polystyrene shaping effect on the enriched bacterial community from the plastic-eating Alphitobius diaperinus (Insecta: Coleoptera)

Researchers enriched and identified bacteria from the gut of polystyrene-fed lesser mealworm beetles, isolating Klebsiella, Pseudomonas, and Stenotrophomonas species that attached to plastic surfaces, confirming these microbes as promising candidates for breaking down polystyrene waste.

2022 Symbiosis 24 citations
Article Tier 2

Gut Check: Microbiota and Obesity in Mice Exposed to Polystyrene Microspheres

Researchers found that gut microbiota appeared to play a mediating role in the obesity outcomes observed in mice fed manufactured polystyrene microspheres, suggesting that microplastic-induced alterations to the gut microbiome may be a mechanism linking microplastic exposure to metabolic dysfunction and weight gain.

2024 Environmental Health Perspectives
Article Tier 2

Biodegradation of Post-Consumer Expanded Polystyrene and Low-Density Polyethylene by Tenebrio molitor Larvae

Scientists found that mealworms (beetle larvae) can actually break down used plastic bags and foam containers by eating them and changing their chemical structure. The mealworms produce waste that contains smaller plastic pieces and chemical compounds, which could potentially reduce plastic pollution in the environment. This research is important because it shows a natural way to help deal with the massive amounts of plastic waste that currently pile up in landfills and oceans.

2026 Microplastics
Article Tier 2

Microplastics impact the accumulation of metals in earthworms by changing the gut bacterial communities

Researchers exposed earthworms to three sizes of polystyrene microplastics (0.1, 10, and 100 micrometers) to study effects on metal accumulation and gut bacteria. The study found that microplastics reduced nickel and lead accumulation in earthworms while significantly altering gut bacterial communities. The results suggest that microplastics influence heavy metal bioavailability in soil organisms by changing gut microbiome composition.

2022 The Science of The Total Environment 47 citations
Article Tier 2

Immunological and Genotoxic Effects of Polystyrene Microparticles on the Model Insect Tenebrio molitor L. (Coleoptera: Tenebrionidae)

Researchers fed mealworm (Tenebrio molitor) larvae polystyrene microplastics at four dose levels and assessed immune function and DNA damage. Dietary exposure caused dose-dependent increases in larval mortality, immune cell changes, and genotoxic damage, indicating that even insect species used in waste degradation studies are harmed by microplastic ingestion.

2025 Transactions of the American Entomological Society
Article Tier 2

The interplay of larval age and particle size regulates micro-polystyrene biodegradation and development of Tenebrio molitor L.

Researchers found that three-month-old mealworm larvae are optimal for polystyrene microplastic biodegradation, showing the highest consumption rates and confirmed depolymerization in their frass, with comparable survival to control groups when co-fed with wheat bran.

2022 The Science of The Total Environment 20 citations