Shanghai Jiao Tong University Environment Science Building, 800 Dongchuan Rd, Minhang District, Shanghai 200240, China.
School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue 639798, Singapore; Centre for Biomimetic Sensor Science, Nanyang Technological University, 50 Nanyang Drive, 637553, Singapore; School of Chemical and Biomedical Engineering, Nanyang Technological University, 62 Nanyang Drive 637459, Singapore.
J Hazard Mater. 2017 Oct 5;339:264-273. doi: 10.1016/j.jhazmat.2017.06.031. Epub 2017 Jun 21.
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.
随着纳米颗粒在商业产品中的全球应用不断增加,人们越来越关注纳米颗粒对包括细胞膜潜在损伤在内的生物系统所构成的环境风险。详细了解不同类型的纳米颗粒在与环境相关的条件下的行为对于预测和减轻潜在的与膜相关的毒性至关重要。在此,我们研究了两种常见的纳米颗粒(银和富勒烯)在带不同膜电荷(正电荷和负电荷)的仿生支撑脂质双层上的吸附。采用石英晶体微天平耗散(QCM-D)测量技术来跟踪吸附动力学。特别关注了解天然有机物(NOM)涂层如何影响纳米颗粒-双层相互作用。这两种类型的纳米颗粒都优先吸附在带正电荷的双层上,尽管纳米颗粒和脂质双层表面上的 NOM 涂层在某些电解质条件下可以抑制或促进吸附。虽然过去的研究结果表明 NOM 涂层抑制了膜的粘附,但我们的研究结果表明,取决于纳米颗粒的类型和电解质条件,NOM 涂层的影响更加复杂。总的来说,这些结果表明,NOM 涂层可以调节各种纳米颗粒与脂质膜的相互作用,这表明了提高纳米颗粒环境安全性的一种可能途径。