Rationally Designed Dendritic Silica Nanoparticles for Oral Delivery of Exenatide.
Pharmaceutics · 2019
Last updated 2026-08-28Researchers developed a new type of silica nanoparticle to help deliver exenatide, a GLP-1 drug used for type 2 diabetes, in pill form instead of injections. The particles, called dendritic silica nanoparticles (DSNPs), could hold 35–40% of the drug by weight and improved its passage through intestinal cells by 1.7 times compared to the free drug. Coating the particles with chitosan further enhanced their ability to pass through a complex gut barrier model.
AI summary of the abstract below.
| Journal | Pharmaceutics, 2019 |
|---|---|
| Citations | 42 |
| Relative citation ratio | 2.54 |
| NIH percentile | 80 |
| Molecules | exenatide |
Abstract
Type 2 diabetes makes up approximately 85% of all diabetic cases and it is linked to approximately one-third of all hospitalisations. Newer therapies with long-acting biologics such as glucagon-like peptide-1 (GLP-1) analogues have been promising in managing the disease, but they cannot reverse the pathology of the disease. Additionally, their parenteral administration is often associated with high healthcare costs, risk of infections, and poor patient adherence associated with phobia of needles. Oral delivery of these compounds would significantly improve patient compliance; however, poor enzymatic stability and low permeability across the gastrointestinal tract makes this task challenging. In the present work, large pore dendritic silica nanoparticles (DSNPs) with a pore size of ~10 nm were prepared, functionalized, and optimized in order to achieve high peptide loading and improve intestinal permeation of exenatide, a GLP-1 analogue. Compared to the loading capacity of the most popular, Mobil Composition of Matter No. 41 (MCM-41) with small pores, DSNPs showed significantly high loading owing to their large and dendritic pore structure. Among the tested DSNPs, pristine and phosphonate-modified DSNPs (PDSNPs) displayed remarkable loading of 40 and 35% /, respectively. Furthermore, particles successfully coated with positively charged chitosan reduced the burst release of exenatide at both pH 1.2 and 6.8. Compared with free exenatide, both chitosan-coated and uncoated PDSNPs enhanced exenatide transport through the Caco-2 monolayer by 1.7 fold. Interestingly, when a triple co-culture model of intestinal permeation was used, chitosan-coated PDSNPs performed better compared to both PDSNPs and free exenatide, which corroborated our hypothesis behind using chitosan to interact with mucus and improve permeation. These results indicate the emerging role of large pore silica nanoparticles as promising platforms for oral delivery of biologics such as exenatide.
Verbatim abstract via PubMed 31430872 ↗
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