We can't find the internet
Attempting to reconnect
Something went wrong!
Hang in there while we get back on track
Effects of Micro- and Nanoplastics on Human Saliva– and Dental Plaque–Derived Biofilms
AI summary Read the abstract
Scientists exposed spit and dental plaque samples to tiny plastic particles (microplastics and nanoplastics) in the lab and found they changed the mix of bacteria living in your mouth, sometimes boosting acid-producing germs linked to cavities. The effects depended on particle size and amount, and while this doesn't prove microplastics cause dental problems in real life, it raises questions worth studying further.
Introduction and Aims Micro- and nanoplastics (MNPs) are ubiquitous environmental pollutants and are associated with health risks. Here, we investigated the effects of polystyrene micro- and nanoplastics (PS-MNPs) of different particle sizes and concentrations on saliva- and dental plaque–derived biofilms. Methods Colony-forming units and live/dead microbial staining were used to assess microbial count and viability, respectively. The anthrone assay and polysaccharide/microbial staining were used to determine extracellular polysaccharide (EPS) content. Acid production was assessed by supernatant pH and lactic acid concentration measurement. Reverse transcription quantitative polymerase chain reaction was used to determine the expression levels of acid and base production-associated genes. 16S rRNA gene sequencing was performed to characterise the microbial community at the genus level. Results PS-MNPs exposure reduced microbial count and viability in both biofilm types, although the magnitude of inhibition varied among treatments. No significant changes in EPS production were observed following PS-MNP exposure. In saliva-derived biofilms, 60-nm PS-MNPs at 1 and 10 µg/mL and 5-µm PS-MNPs at 1 µg/mL significantly increased lactic acid production, whereas 20-µm PS-MNPs at 100 µg/mL significantly reduced lactic acid production. In dental plaque–derived biofilms, only 60-nm PS-MNPs at 10 µg/mL inhibited lactic acid production. The supernatant pH decreased only after exposure to 10 and 100 µg/mL PS-MNPs in saliva-derived biofilms. Alkali-producing genes were downregulated, whereas the acid-producing genes were upregulated following PS-MNP treatment. Furthermore, only 5-µm MNPs at 100 µg/mL significantly increased richness and α-diversity in dental plaque–derived biofilm, whereas β-diversity remained unchanged in both biofilm types. PS-MNP exposure reduced the relative abundance of Neisseria and increased that of Limosilactobacillus in saliva-derived biofilm, whereas Porphyromonas, Fusobacterium, Actinomyces , and Schaalia increased in dental plaque–derived biofilm. Conclusions The effects of PS-MNPs on oral biofilms are dependent on size, concentration, and biofilm type. Clinical Relevance PS-MNPs can affect oral biofilms; however, their association with oral diseases warrants further investigation.
More Papers Like This
Micro- and nanoplastics in periodontitis: mechanistic pathways and clinical implications
AI summary Read the abstract
Tiny plastic particles from water, food, and even toothpaste may be doing more than just floating around your mouth, this review of existing research suggests they could worsen gum disease by fueling inflammation, disrupting the balance of oral bacteria, and interfering with how your body repairs bone and tissue. The evidence so far comes mostly from lab studies, not large human trials, so microplastics shouldn't be seen as a proven cause of gum disease, but they're a plausible piece of the puzzle worth watching, especially since periodontitis is linked to broader health issues like heart disease and diabetes.
Micro and nanoplastics in dentistry: emerging sources, health implications, and mitigation pathways: a narrative review.
AI summary Read the abstract
This review of existing research found that common dental materials and oral care products like toothbrushes, toothpaste, and dental fillings can release tiny plastic particles called microplastics into your mouth. Lab studies suggest these particles might cause inflammation and cell damage when they build up in mouth tissues, though scientists haven't yet proven they cause actual health problems in people. The good news is that dentists and patients can reduce exposure by using better suction systems during procedures and choosing oral care products that shed fewer plastic particles.
The peril of microplastics and nanoplastics on periodontal tissue
AI summary Read the abstract
Tiny plastic particles from our environment, called microplastics and nanoplastics, can end up in your mouth through the food you eat, the air you breathe, and everyday contact, and this review of existing research suggests they may settle into your gums and contribute to gum disease. Scientists think these plastic particles could damage gum tissue, disrupt the balance of bacteria in your mouth, trigger inflammation, and interfere with the bone that holds your teeth in place. While more research is needed to confirm exactly how big a role plastics play, this adds gum health to the growing list of reasons to be concerned about our daily plastic exposure
Dental Calculus Microplastics: Exposure Assessment And Cytotoxicity On Gingival Fibroblasts
AI summary Read the abstract
Researchers detected microplastics in dental calculus — the hardened plaque that builds up on teeth — at an average of over 3,600 particles per gram, with polyamide and polyethylene among the most common types. Exposing gum cells to these particles reduced their viability and triggered cell death, suggesting microplastics accumulate in the mouth and may harm oral tissues.
Dental Polymethyl Methacrylate Microplastics Induce Biofilm Formation In Streptococcus Mutans
AI summary Read the abstract
Researchers found that microplastics shed from plastic dentures (made of PMMA, a common dental material) significantly increased the growth, biofilm formation, and antibiotic resistance of Streptococcus mutans — the main bacterium responsible for tooth decay — in both lab cultures and in mice. The findings suggest that plastic dental devices are an overlooked source of oral microplastic exposure that could worsen dental disease and antibiotic resistance.
Research digests by email
When a large batch of papers lands in the Atlas, we read through it and send a short write-up of what stood out.