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F Englund

Publications and source records attributed to F Englund.

4 recordsLinked to original sources

Particulate enhanced membrane uptake of 1,2-benzanthracene observed by fluorescence spectroscopy: a possible role in co-carcinogenesis.

In recognition of the co-carcinogenic effects of particulate matter and chemical carcinogens, we investigated the effect of particulate silica on the rates of membrane uptake of 1,2-benzanthracene. The fluorescence emission spectra and the apparent quantum yields of benzanthracene and dependent upon adsorption to silica and upon the surface density of benzanthracene on the silica. The fluorescence spectral shifts which occur upon transfer of benzanthracene from the silica surface to phospholipid vesicles provided a convenient means to quantitate the membrane uptake of benzanthracene from particulates. The rate of benzanthracene uptake by dipalmitoyl-L-alpha-phosphatidylcholine vesicles was independent of the concentration of lipid, indicating that the rate-limiting step may involve its solubilization in the aqueous phase. These uptake rates were also independent of the surface density of benzanthracene on the silica, indicating that the benzathracene molecules are dispersed uniformly on the silica surface. Rates of membrane uptake of benzanthracene from the crystalline, microcrystalline, and the silica-absorbed states were compared, and are greatly enhanced by a reduction in crystal size. Silica-adsorbed benzanthracene had the most rapid rate of membrane uptake. Silica did not cause disruption of the lipid vesicles. These results indicate that particulates can enhance the cellular availability of the chemical carcinogens.

Benz(a)Anthracenes↗

Particle-enhanced membrane uptake of a polynuclear aromatic hydrocarbon: a possible role in cocarcinogenesis.

One possible mechanism by which cocarcinogenesis occurs was investigated. The effect of a particulate, silica, upon the rate of membrane uptake of a polynuclear aromatic hydrocarbon, benz[a]anthracene (BA), was studied. The fluorescence emission spectrum and quantum yield of BA, when adsorbed to silica, underwent spectral shifts upon addition of phospholipid vesicles. These spectral changes appeared to result from the transfer of BA from the silica surface into the lipid bilayer. We used these spectral changes to measure the rates of membrane uptake of BA from the silica-adsorbed state and from the crystalline and microcrystalline states of BA. Our studies demonstrated that adsorption of BA to silica resulted in an increased rate of uptake of BA into dipalmitoyl-L-alpha-phosphatidylcholine vesicles compared to the uptake rate into these vesicles from crystalling states. Such particle-enhanced membrane uptake of chemical carcinogens may be of importance in explaining the enhanced carcinogenicity of the polynuclear aromatic hydrocarbons in the presence of particulate matter.

Adsorption↗