Simulated gastrointestinal digestion of polylactic acid (PLA) biodegradable microplastics and their interaction with

C Jiménez-Arroyo1, A Tamargo1, N Molinero1

  • 1Institute of Food Science Research, CIAL, CSIC-UAM, C/ Nicolás Cabrera 9, 28049 Madrid, Spain.

Insights

Polylactic acid (PLA) microplastics may alter human gut microbial metabolism and show signs of biodegradation. Further research is critical to understand the health impacts of these bioplastics in the human gastrointestinal tract.

Area of Science:

  • Environmental Science
  • Microbiology
  • Biomaterials Science

Background:

  • Microplastic (MP) accumulation in food and humans necessitates health effect studies.
  • Polylactic acid (PLA) is a widely used bioplastic with a "Generally Recognized As Safe" (GRAS) status.
  • Animal studies suggest PLA MPs can alter intestinal microbiota, but human gut consequences remain unstudied.

Purpose of the Study:

  • To simulate daily PLA MP ingestion and assess effects on human colonic microbiota composition and metabolic function.
  • To investigate potential biotransformation of PLA MPs by the human gut microbiota.
  • To evaluate morphological changes and biodegradation of PLA MPs during gastrointestinal transit.

Main Methods:

  • Utilized the INFOGEST method and the gastrointestinal simgi® model for simulated digestion.
  • Analyzed colonic microbiota composition using 16S rRNA gene sequencing.
  • Quantified lactic acid and short-chain fatty acid (SCFA) production.
  • Characterized PLA MP morphology and surface changes using Raman spectroscopy and field emission scanning electron microscopy (FESEM).

Main Results:

  • PLA MPs did not significantly alter overall microbial community homeostasis but showed a trend towards increased Bifidobacterium with millimetric particles.
  • Detected functional shifts suggest altered microbial metabolism and potential PLA biotransformation by the colonic microbiota.
  • Morphological changes, organic matter adhesion, biofilm formation, and surface biodegradation of PLA MPs were observed post-digestion.

Conclusions:

  • Ingested PLA MPs may undergo biotransformation and surface biodegradation by the human colonic microbiota.
  • Functional shifts in the gut microbiota indicate potential metabolic alterations due to PLA MP exposure.
  • Further investigation into the human health impacts and biodegradation of bioplastics in the gastrointestinal tract is warranted.

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