The interaction of amorphous silica nanoparticles with phospholipid monolayers and bilayers has received a great deal of interest in recent years and is of importance for assessing potential cellular toxicity of such species, whether natural or synthesized for the purpose of nanomedical drug delivery and other applications. This present communication studies the rate of silica nanoparticle adsorption on to phospholipid monolayers in order to extract a heterogeneous rate constant from the data. This rate constant relates to the initial rate of growth of an adsorbed layer of nanoparticles as SiO2 on a unit area of the monolayer surface from unit concentration in dispersion. Experiments were carried out using the system of dioleoyl phosphatidy...
Nanomaterials are already impacting on virtually all sectors of industrial and domestic products (co...
Potential toxic effects of synthetic nanoparticles are of great public concern. Presently, the impac...
In this project, the interaction between polyethylene glycol modified (PEG-ylated) lipid nanoparticl...
Nanoparticle; Phospholipid MonolayersNanopartícula; Monocapas de fosfolípidosNanopartícula; Monocapa...
We studied the interactions of silica and titanium dioxide nanoparticles with phospholipid membranes...
We studied the interactions of silica and titanium dioxide nanoparticles with phospholipid membranes...
We studied the interactions of silica and titanium dioxide nanoparticles with phospholipid membranes...
Silica nanoparticles (SNPs) are widely used for biomedical applications. However, their parenteral a...
The fast-growing production and utilization of nanomaterials in diverse applications will undoubtedl...
Advancing our understanding of the mechanism of the interaction between inhaled pollutant microparti...
The free energy of adhesion per unit area (hereafter referred to as the adhesion strength) of lipid ...
FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULO - FAPESPCONSELHO NACIONAL DE DESENVOLVIMENTO CI...
Direct contact of nanoparticles with the plasma membrane is essential for biomedical applications su...
Silica nanoparticles (SiNP) can be incorporated in phospholipid layers to form hybrid organic-inorga...
Given the increasing variety of manufactured nanomaterials, suitable, robust, standardized in vitro ...
Nanomaterials are already impacting on virtually all sectors of industrial and domestic products (co...
Potential toxic effects of synthetic nanoparticles are of great public concern. Presently, the impac...
In this project, the interaction between polyethylene glycol modified (PEG-ylated) lipid nanoparticl...
Nanoparticle; Phospholipid MonolayersNanopartícula; Monocapas de fosfolípidosNanopartícula; Monocapa...
We studied the interactions of silica and titanium dioxide nanoparticles with phospholipid membranes...
We studied the interactions of silica and titanium dioxide nanoparticles with phospholipid membranes...
We studied the interactions of silica and titanium dioxide nanoparticles with phospholipid membranes...
Silica nanoparticles (SNPs) are widely used for biomedical applications. However, their parenteral a...
The fast-growing production and utilization of nanomaterials in diverse applications will undoubtedl...
Advancing our understanding of the mechanism of the interaction between inhaled pollutant microparti...
The free energy of adhesion per unit area (hereafter referred to as the adhesion strength) of lipid ...
FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULO - FAPESPCONSELHO NACIONAL DE DESENVOLVIMENTO CI...
Direct contact of nanoparticles with the plasma membrane is essential for biomedical applications su...
Silica nanoparticles (SiNP) can be incorporated in phospholipid layers to form hybrid organic-inorga...
Given the increasing variety of manufactured nanomaterials, suitable, robust, standardized in vitro ...
Nanomaterials are already impacting on virtually all sectors of industrial and domestic products (co...
Potential toxic effects of synthetic nanoparticles are of great public concern. Presently, the impac...
In this project, the interaction between polyethylene glycol modified (PEG-ylated) lipid nanoparticl...