<P><B>Abstract</B></P> <P>As the worldwide usage of nanoparticles in commercial products continues to increase, there is growing concern about the environmental risks that nanoparticles pose to biological systems, includ...

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https://www.riss.kr/link?id=A107740532
2017
-
SCOPUS,SCIE
학술저널
264-273(10쪽)
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
<P><B>Abstract</B></P> <P>As the worldwide usage of nanoparticles in commercial products continues to increase, there is growing concern about the environmental risks that nanoparticles pose to biological systems, includ...
<P><B>Abstract</B></P> <P>As the worldwide usage of nanoparticles in commercial products continues to increase, there is growing concern about the environmental risks that nanoparticles pose to biological systems, including potential damage to cellular membranes. A detailed understanding of how different types of nanoparticles behave in environmentally relevant conditions is imperative for predicting and mitigating potential membrane-associated toxicities. Herein, we investigated the adsorption of two popular nanoparticles (silver and buckminsterfullerene) onto biomimetic supported lipid bilayers of varying membrane charge (positive and negative). The quartz crystal microbalance-dissipation (QCM-D) measurement technique was employed to track the adsorption kinetics. Particular attention was focused on understanding how natural organic matter (NOM) coatings affect nanoparticle-bilayer interactions. Both types of nanoparticles preferentially adsorbed onto the positively charged bilayers, although NOM coatings on the nanoparticle and lipid bilayer surfaces could either inhibit or promote adsorption in certain electrolyte conditions. While past findings showed that NOM coatings inhibit membrane adhesion, our findings demonstrate that the effects of NOM coatings are more nuanced depending on the type of nanoparticle and electrolyte condition. Taken together, the results demonstrate that NOM coatings can modulate the lipid membrane interactions of various nanoparticles, suggesting a possible way to improve the environmental safety of nanoparticles.</P> <P><B>Highlights</B></P> <P> <UL> <LI> Interaction of Ag and C<SUB>60</SUB> nanoparticles with charged lipid membranes was studied. </LI> <LI> Quartz crystal microbalance experiments measured the adsorption kinetics. </LI> <LI> Natural organic matter (NOM) either inhibited or promoted nanoparticle adsorption. </LI> <LI> Adsorption profile depended on nanoparticle type, electrolyte condition, and NOM. </LI> </UL> </P>
A new route to the stable capture and final immobilization of radioactive cesium