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Mucoadhesive Nanoparticles May Disrupt the Protective Human Mucus Barrier by Altering Its Microstructure

Overview of attention for article published in PLOS ONE, June 2011
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Title
Mucoadhesive Nanoparticles May Disrupt the Protective Human Mucus Barrier by Altering Its Microstructure
Published in
PLOS ONE, June 2011
DOI 10.1371/journal.pone.0021547
Pubmed ID
Authors

Ying-Ying Wang, Samuel K. Lai, Conan So, Craig Schneider, Richard Cone, Justin Hanes

Abstract

Mucus secretions typically protect exposed surfaces of the eyes and respiratory, gastrointestinal and female reproductive tracts from foreign entities, including pathogens and environmental ultrafine particles. We hypothesized that excess exposure to some foreign particles, however, may cause disruption of the mucus barrier. Many synthetic nanoparticles are likely to be mucoadhesive due to hydrophobic, electrostatic or hydrogen bonding interactions. We therefore sought to determine whether mucoadhesive particles (MAP) could alter the mucus microstructure, thereby allowing other foreign particles to more easily penetrate mucus. We engineered muco-inert probe particles 1 µm in diameter, whose diffusion in mucus is limited only by steric obstruction from the mucus mesh, and used them to measure possible MAP-induced changes to the microstructure of fresh human cervicovaginal mucus. We found that a 0.24% w/v concentration of 200 nm MAP in mucus induced a ∼10-fold increase in the average effective diffusivity of the probe particles, and a 2- to 3-fold increase in the fraction capable of penetrating physiologically thick mucus layers. The same concentration of muco-inert particles, and a low concentration (0.0006% w/v) of MAP, had no detectable effect on probe particle penetration rates. Using an obstruction-scaling model, we determined that the higher MAP dose increased the average mesh spacing ("pore" size) of mucus from 380 nm to 470 nm. The bulk viscoelasticity of mucus was unaffected by MAP exposure, suggesting MAP may not directly impair mucus clearance or its function as a lubricant, both of which depend critically on the bulk rheological properties of mucus. Our findings suggest mucoadhesive nanoparticles can substantially alter the microstructure of mucus, highlighting the potential of mucoadhesive environmental or engineered nanoparticles to disrupt mucus barriers and cause greater exposure to foreign particles, including pathogens and other potentially toxic nanomaterials.

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Geographical breakdown

Country Count As %
United States 3 2%
Japan 1 <1%
Greece 1 <1%
Ireland 1 <1%
Unknown 128 96%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 40 30%
Researcher 28 21%
Student > Master 16 12%
Student > Doctoral Student 8 6%
Other 8 6%
Other 18 13%
Unknown 16 12%
Readers by discipline Count As %
Engineering 22 16%
Pharmacology, Toxicology and Pharmaceutical Science 19 14%
Agricultural and Biological Sciences 18 13%
Chemistry 11 8%
Biochemistry, Genetics and Molecular Biology 9 7%
Other 29 22%
Unknown 26 19%