Related Experiment Video
Updated: Jun 12, 2026

Preparation, Characteristics, Toxicity, and Efficacy Evaluation of the Nasal Self-Assembled Nanoemulsion Tumor Vaccine In Vitro and In Vivo
Published on: September 28, 2022
Intranasal M cell uptake of nanoparticles is independently influenced by targeting ligands and buffer ionic strength
Thejani E Rajapaksa1, Kaila M Bennett, Mary Hamer
1Division of Biomedical Sciences, University of California, Riverside, CA 92521, USA.
Abstract:
In mucosal tissues, epithelial M cells capture and transport microbes across the barrier to underlying immune cells. Previous studies suggested that high affinity ligands targeting M cells may be used to deliver mucosal vaccines; here, we show that particle composition and dispersion buffer ionic strength can independently influence their uptake in vivo. First, addition of a poloxamer 188 to nanoparticle formulations increased uptake of intranasally administered nanoparticles in vivo, but the effect was dependent on the presence of the M cell-targeting ligand. Second, solvent ionic strength is known to effect electrostatic interactions; accordingly, reduced ionic strength increased the electrostatic potential between the epithelium and the particles. Interestingly, below a critical ionic strength, intranasal particle uptake in vivo significantly was increased even when controlled for osmolarity. Similar results were obtained for uptake of bacterial particles. Surprisingly, at low ionic strength, the specific enhancement effect by the targeting peptide was negligible. Modeling of the electrostatic forces predicted that the enhancing effects of the M cell-targeting ligand only are enabled at high ionic strength, as particle electrostatic forces are reduced through Debye screening. Thus, electrostatic forces can have a dramatic effect on the in vivo M cell particle uptake independent of the action of targeting ligands. Examination of these forces will be helpful to optimizing mucosal vaccine and drug delivery.
Insights
Particle uptake by M cells for mucosal vaccines is influenced by particle composition and buffer ionic strength. Lowering ionic strength enhances particle uptake, independent of targeting ligands, revealing key factors for optimizing drug delivery.
Area of Science:
- Immunology
- Biomaterials Science
- Nanotechnology
Background:
- Epithelial M cells in mucosal tissues transport microbes to immune cells.
- M cells are potential targets for mucosal vaccine delivery using high-affinity ligands.
Purpose of the Study:
- To investigate how particle composition and buffer ionic strength affect M cell uptake in vivo.
- To understand the interplay between targeting ligands and electrostatic forces in M cell particle delivery.
Main Methods:
- Intranasal administration of nanoparticles and bacterial particles in vivo.
- Formulation of nanoparticles with and without poloxamer 188 and varying ionic strengths.
- Modeling of electrostatic forces to predict particle-epithelium interactions.
Main Results:
- Poloxamer 188 increased nanoparticle uptake, dependent on M cell-targeting ligands.
- Reduced ionic strength significantly enhanced particle uptake, independent of osmolarity.
- The enhancing effect of targeting peptides diminished at low ionic strength due to reduced electrostatic interactions.
Conclusions:
- Particle composition and buffer ionic strength are critical, independent factors influencing M cell uptake.
- Electrostatic forces play a significant role in M cell particle uptake, modulating the efficacy of targeting ligands.
- Understanding these electrostatic interactions is crucial for optimizing mucosal vaccine and drug delivery systems.
More Related Videos
05:50Intranasal Delivery of mRNA Polyplexes via Rayleigh Breakup Aerosols: An In Vitro Method for Nasal Deposition and Functional Testing
Published on: January 20, 2026
18:07Analyzing Cellular Internalization of Nanoparticles and Bacteria by Multi-spectral Imaging Flow Cytometry
Published on: June 8, 2012