Construction of a Silver Nanoparticle Complex and its Application in Cancer Treatment

IF 0.5 Q4 ENGINEERING, BIOMEDICAL
Wanzhong Li, Haozhe Ma, Pei Dong, Chen Lin Liang, Long Li, Xi Feng Zhang
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Abstract

Nanomedicine has been used in tumor treatment and research due to its advantages of targeting, controlled release and high absorption rate. Silver nanoparticle (AgNPs), with the advantages of small particle size, and large specific surface area, are of great potential value in suppressing and killing cancer cells. Methods: AgNPs–polyethyleneimine (PEI) –folate (FA) (AgNPs–PF) were synthesised and characterised by several analytical techniques. The ovarian cancer cell line Skov3 was used as the cell model to detect the tumor treatment activity of AgNPs, AgNPs–PF and AgNPs+ AgNPs–PF. Results: Results shown that AgNPs–PF were successfully constructed with uniform particle size of 50–70 nm. AgNPs, AgNPs–PF, AgNPs–PF+ AgNPs all showed a certain ability to inhibit cancer cell proliferation, increase reactive oxygen species and decrease the mitochondrial membrane potential. All AgNPs, AgNPs–PF, AgNPs+ AgNPs–PF promoted DNA damage in Skov3 cells, accompanied by the generation of histone RAD51 and γ-H2AX site, and eventually leading to the apoptosis of Skov3 cells. The combination of AgNPs–PF and AgNPs had a more pronounced effect than either material alone. Conclusion: This study is to report that the combination of AgNPs+ AgNPs–PF can cause stronger cytotoxicity and induce significantly greater cell death compared to AgNPs or AgNPs–PF alone in Skov3 cells. Therefore, the combined application of drugs could be the best way to cancer treatment.
银纳米粒子复合物的构建及其在癌症治疗中的应用
纳米药物以其靶向、控释、吸收率高等优点,已广泛应用于肿瘤的治疗和研究。银纳米颗粒具有粒径小、比表面积大等优点,在抑制和杀伤癌细胞方面具有很大的潜在价值。方法:合成agnps -聚乙烯亚胺(PEI) -叶酸(FA) (AgNPs-PF),并用多种分析技术对其进行表征。以卵巢癌细胞系Skov3为细胞模型,检测AgNPs、AgNPs - pf和AgNPs+ AgNPs - pf对肿瘤的治疗活性。结果:成功构建了粒径为50 ~ 70 nm的AgNPs-PF。AgNPs、AgNPs - pf、AgNPs - pf + AgNPs均表现出一定的抑制癌细胞增殖、增加活性氧、降低线粒体膜电位的能力。AgNPs、AgNPs - pf、AgNPs+ AgNPs - pf均可促进Skov3细胞DNA损伤,并伴随组蛋白RAD51和γ-H2AX位点的产生,最终导致Skov3细胞凋亡。AgNPs - pf和AgNPs的组合比单独使用任何一种材料都有更明显的效果。结论:本研究报道AgNPs+ AgNPs - pf在Skov3细胞中比单独使用AgNPs或AgNPs - pf具有更强的细胞毒性和更大的细胞死亡。因此,药物联合应用可能是治疗癌症的最佳途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.40
自引率
14.30%
发文量
73
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