Fabrication of bimetallic Ag@ZnO nanocomposite and its anti-cancer activity on cervical cancer via impeding PI3K/AKT/mTOR pathway

IF 3.6 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Qinghua Yin, Qiang Zhou, Jianbing Hu, Jie Weng, Songlian Liu, Leilan Yin, Ling Long, Yajun Tong, Kewei Tang, Site Bai, Ludi Ou
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引用次数: 0

Abstract

Introduction

Bimetallic nanoparticles, specifically Zinc oxide (ZnO) and Silver (Ag), continue to much outperform other nanoparticles investigated for a variety of biological uses in the field of cancer therapy. This study introduces biosynthesis of bimetallic silver/zinc oxide nanocomposites (Ag@ZnO NCs) using the Crocus sativus extract and evaluates their anti-cancer properties against cervical cancer.

Methods

The process of generating bimetallic nanoparticles (NPs), namely Ag@ZnO NCs, through the utilization of Crocus sativus extract proved to be uncomplicated and eco-friendly. Various methods, such as UV–vis, DLS, FTIR, EDX, and SEM analyses, were utilized to characterize the generated Ag@ZnO NCs. The MTT assay was employed to assess the cytotoxic properties of biosynthesized bimetallic Ag@ZnO NCs against the HeLa cervical cancer cell line. Moreover, the impact of Ag@ZnO NCs on HeLa cells was assessed by examining cell survival, ROS production, MMP levels, and induced apoptosis. Through western blot analysis, the expression levels of the PI3K, AKT, mTOR, Cyclin D, and CDK proteins seemed to be ascertained. Using flow cytometry, the cancer cells' progression through necrosis and apoptosis, in addition to the cell cycle analysis, were investigated.

Results

Bimetallic Ag@ZnO NCs that were biosynthesized showed a high degree of stability, as demonstrated by the physicochemical assessments. The median size of the particles in these NCs was approximately 80–90 nm, and their zeta potential was –14.70 mV. AgNPs and ZnO were found, according to EDX data. Further, Ag@ZnO NCs hold promise as a potential treatment for cervical cancer. After 24 hours of treatment, a dosage of 5 µg/mL or higher resulted in a maximum inhibitory effect of 58 ± 2.9. The concurrent application of Ag/ZnO NPs to HeLa cells resulted in elevated apoptotic signals and a significant generation of reactive oxygen species (ROS). As a result, the bimettalic Ag@ZnO NCs treatment has been recognized as a chemotherapeutic intervention by inhibiting the production of PI3K, AKT, and mTOR-mediated regulation of propagation and cell cycle-regulating proteins.

Conclusions

The research yielded important insights into the cytotoxic etiology of biosynthesized bimetallic Ag@ZnO NCs against HeLa cells. The biosynthesized bimetallic Ag@ZnO NCs have a significant antitumor potential, which appears to be associated with the development of oxidative stress, which inhibits the development of the cell cycle and the proliferation of cells. Therefore, in the future, biosynthesized bimetallic Ag@ZnO NCs may be used as a powerful anticancer drug to treat cervical cancer.

双金属 Ag@ZnO 纳米复合材料的制备及其通过阻碍 PI3K/AKT/mTOR 通路对宫颈癌的抗癌活性
导言双金属纳米粒子,特别是氧化锌(ZnO)和银(Ag),在癌症治疗领域的各种生物用途研究中一直远远优于其他纳米粒子。本研究介绍了利用番红花提取物生物合成双金属银/氧化锌纳米复合材料(Ag@ZnO NCs),并评估了它们对宫颈癌的抗癌特性。方法利用番红花提取物生成双金属纳米粒子(NPs),即 Ag@ZnO NCs 的过程被证明是不复杂且环保的。利用紫外可见光、DLS、傅立叶变换红外光谱、EDX 和 SEM 分析等多种方法对生成的 Ag@ZnO NCs 进行了表征。利用 MTT 试验评估了生物合成的双金属 Ag@ZnO NCs 对 HeLa 宫颈癌细胞系的细胞毒性。此外,还通过检测细胞存活率、ROS产生量、MMP水平和诱导细胞凋亡情况,评估了Ag@ZnO NCs对HeLa细胞的影响。通过 Western 印迹分析,似乎可以确定 PI3K、AKT、mTOR、Cyclin D 和 CDK 蛋白的表达水平。除了细胞周期分析外,还使用流式细胞术研究了癌细胞的坏死和凋亡过程。这些 NCs 颗粒的中值大小约为 80-90 nm,zeta 电位为 -14.70 mV。根据 EDX 数据,发现了 AgNPs 和 ZnO。此外,Ag@ZnO NCs 有望成为治疗宫颈癌的潜在药物。经过 24 小时的治疗后,5 µg/mL 或更高剂量可产生 58 ± 2.9 的最大抑制效果。在 HeLa 细胞中同时使用 Ag/ZnO NPs 会导致细胞凋亡信号升高,并产生大量活性氧(ROS)。因此,双金属 Ag@ZnO NCs 通过抑制 PI3K、AKT 和 mTOR 介导的繁殖调节蛋白和细胞周期调节蛋白的产生,被认为是一种化疗干预手段。生物合成的双金属 Ag@ZnO NCs 具有显著的抗肿瘤潜力,这似乎与氧化应激的发展有关,氧化应激抑制了细胞周期的发展和细胞的增殖。因此,生物合成的双金属 Ag@ZnO NCs 未来可作为治疗宫颈癌的强效抗癌药物。
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来源期刊
CiteScore
6.60
自引率
2.90%
发文量
202
审稿时长
85 days
期刊介绍: The journal provides the reader with a thorough description of theoretical and applied aspects of trace elements in medicine and biology and is devoted to the advancement of scientific knowledge about trace elements and trace element species. Trace elements play essential roles in the maintenance of physiological processes. During the last decades there has been a great deal of scientific investigation about the function and binding of trace elements. The Journal of Trace Elements in Medicine and Biology focuses on the description and dissemination of scientific results concerning the role of trace elements with respect to their mode of action in health and disease and nutritional importance. Progress in the knowledge of the biological role of trace elements depends, however, on advances in trace elements chemistry. Thus the Journal of Trace Elements in Medicine and Biology will include only those papers that base their results on proven analytical methods. Also, we only publish those articles in which the quality assurance regarding the execution of experiments and achievement of results is guaranteed.
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