Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Understanding the Biological Interactions of pH‐Swellable Nanoparticles

View through CrossRef
AbstractpH‐responsive nanoparticles have generated significant interest for use as drug delivery systems due to their potential for inducible release at low pH. The pH variation from the bloodstream (pH 7.4) to intracellular compartments of cells called endosomes/lysosomes (pH < 5.0) has been of particular interest. However, one of the limitations with nanoparticle delivery systems is the inability to migrate out of these compartments to the cytosol or other organelles, via a process termed endosomal escape. Previous studies have postulated that pH‐responsive nanoparticles can facilitate endosomal escape through a range of mechanisms including membrane interaction, pH‐induced swelling, and the proton‐sponge effect. In this study, a series of pH‐swellable nanoparticles (85–100 nm) are designed and their impact on biological interactions, particularly endosomal escape, are investigated. The particles exhibit tunable pH‐induced swelling (from 120% to 200%) and have good buffering capacity. The cellular association is studied using flow cytometry and endosomal escape is determined using a calcein leakage assay. Interestingly, no endosomal escape with all nanoparticle formulations is found, which suggests there are limitations with both the proton‐sponge effect and pH‐induced swelling mechanism as the primary methods for inducing endosomal escape.
Title: Understanding the Biological Interactions of pH‐Swellable Nanoparticles
Description:
AbstractpH‐responsive nanoparticles have generated significant interest for use as drug delivery systems due to their potential for inducible release at low pH.
The pH variation from the bloodstream (pH 7.
4) to intracellular compartments of cells called endosomes/lysosomes (pH < 5.
0) has been of particular interest.
However, one of the limitations with nanoparticle delivery systems is the inability to migrate out of these compartments to the cytosol or other organelles, via a process termed endosomal escape.
Previous studies have postulated that pH‐responsive nanoparticles can facilitate endosomal escape through a range of mechanisms including membrane interaction, pH‐induced swelling, and the proton‐sponge effect.
In this study, a series of pH‐swellable nanoparticles (85–100 nm) are designed and their impact on biological interactions, particularly endosomal escape, are investigated.
The particles exhibit tunable pH‐induced swelling (from 120% to 200%) and have good buffering capacity.
The cellular association is studied using flow cytometry and endosomal escape is determined using a calcein leakage assay.
Interestingly, no endosomal escape with all nanoparticle formulations is found, which suggests there are limitations with both the proton‐sponge effect and pH‐induced swelling mechanism as the primary methods for inducing endosomal escape.

Related Results

Merging Coiled Tubing and Swellable Packer Technologies
Merging Coiled Tubing and Swellable Packer Technologies
Abstract For a number of years one of the main areas being developed has been multilateral wells to better access the reservoir. One of the greatest challenges in op...
Multifunctional Silver Nanoparticles: Synthesis and Applications
Multifunctional Silver Nanoparticles: Synthesis and Applications
Multifunctional silver nanoparticles have attracted widely due to their potential applications. Based on the properties of individual silver nanoparticles, such as plasmonic and an...
DEVELOPMENT AND CHARACTERIZATION OF ORAL SWELLABLE RAPID RELEASE FILM WITH SUPERDISINTEGRANT-SURFACTANT
DEVELOPMENT AND CHARACTERIZATION OF ORAL SWELLABLE RAPID RELEASE FILM WITH SUPERDISINTEGRANT-SURFACTANT
Objective: Oral disintegrating films consisting of hydrophilic polymer are designed to be quickly hydrated by saliva, adhere to the mucosa and disintegrate rapidly to release the d...
Interaction studies of nanomaterials with plasma protein using experimental and computational methods
Interaction studies of nanomaterials with plasma protein using experimental and computational methods
Nanomaterials have received considerable attention due to their unique physicochemical properties and various applications. The present study attempts to fill in the knowledge gaps...
Abstract 266: Differential collective cell migratory behaviors modulated by phospholipid nanoparticles
Abstract 266: Differential collective cell migratory behaviors modulated by phospholipid nanoparticles
Abstract Phospholipid nanoparticles have been actively explored for biological and biomedical applications. These nanoparticles display excellent cargo encapsulation...
Biocompatible, Superparamagnetic, Flame Synthesized Iron Oxide Nanoparticles: Cellular Uptake and Toxicity Studies
Biocompatible, Superparamagnetic, Flame Synthesized Iron Oxide Nanoparticles: Cellular Uptake and Toxicity Studies
Superparamagnetic iron oxide nanoparticles, including magnetite (Fe3O4), are widely used in applications such as targeted drug delivery, magnetic resonance imaging, tissue engineer...

Back to Top