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ACS Nano. 2010 Sep 28;4(9):5321-31. doi: 10.1021/nn100816s.
Cerium oxide nanoparticles (nanoceria) have shown great potential as antioxidant and radioprotective agents for applications in cancer therapy. Recently, various polymer-coated nanoceria preparations have been developed to improve their aqueous solubility and allow for surface functionalization of these nanoparticles. However, the interaction of polymer-coated nanoceria with cells, their uptake mechanism, and subcellular localization are poorly understood. Herein, we engineered polymer-coated cerium oxide nanoparticles with different surface charges (positive, negative, and neutral) and studied their internalization and toxicity in normal and cancer cell lines. The results showed that nanoceria with a positive or neutral charge enters most of the cell lines studied, while nanoceria with a negative charge internalizes mostly in the cancer cell lines. Moreover, upon entry into the cells, nanoceria is localized to different cell compartments (e.g., cytoplasm and lysosomes) depending on the nanoparticle's surface charge. The internalization and subcellular localization of nanoceria plays a key role in the nanoparticles' cytotoxicity profile, exhibiting significant toxicity when they localize in the lysosomes of the cancer cells. In contrast, minimal toxicity is observed when they localize into the cytoplasm or do not enter the cells. Taken together, these results indicate that the differential surface-charge-dependent localization of nanoceria in normal and cancer cells plays a critical role in the nanoparticles' toxicity profile.
氧化铈纳米颗粒(纳米氧化铈)作为抗氧化剂和辐射防护剂,在癌症治疗中的应用具有巨大潜力。最近,已经开发出各种聚合物包覆的纳米氧化铈制剂,以提高其水溶解度并允许对这些纳米颗粒进行表面功能化。然而,聚合物包覆的纳米氧化铈与细胞的相互作用、它们的摄取机制和亚细胞定位知之甚少。在此,我们用不同表面电荷(正、负和中性)设计了聚合物包覆的氧化铈纳米颗粒,并研究了它们在正常和癌细胞系中的内化和毒性。结果表明,带正电荷或中性电荷的纳米氧化铈进入了大多数研究的细胞系,而带负电荷的纳米氧化铈主要进入癌细胞系。此外,进入细胞后,纳米氧化铈根据纳米颗粒的表面电荷定位到不同的细胞区室(例如细胞质和溶酶体)。纳米氧化铈的内化和亚细胞定位在纳米颗粒的细胞毒性特征中起着关键作用,当它们定位于癌细胞的溶酶体中时表现出显著的毒性。相比之下,当它们定位到细胞质中或不进入细胞时,观察到的毒性最小。总之,这些结果表明,纳米氧化铈在正常和癌细胞中的差异表面电荷依赖性定位在纳米颗粒的毒性特征中起着关键作用。