Department of Medical Microbiology and Immunology, Division of Biomedical Science, School of Medicine, College of Health Sciences, Mekelle University, Mekelle 1871, Ethiopia.
Department of Pharmaceutical Biotechnology, School of Pharmacy, Shahid Beheshti University of Medical Sciences, Tehran, Iran.
Int J Nanomedicine. 2020 May 19;15:3577-3595. doi: 10.2147/IJN.S240293. eCollection 2020.
Breast cancer remains as a concerning global health issue, being the second leading cause of cancer deaths among women in the United States (US) in 2019. Therefore, there is an urgent and substantial need to explore novel strategies to combat breast cancer. A potential solution may come from the use of cancer nanotechnology, an innovative field of study which investigates the potential of nanomaterials for cancer diagnosis, therapy, and theranostic applications. Consequently, the theranostic functionality of cancer nanotechnology has been gaining much attention between scientists during the past few years and is growing exponentially. The use of biosynthesized gold nanoparticles (AuNPs) has been explored as an efficient mechanism for the treatment of breast cancer. The present study supposed a global systematic review to evaluate the effectiveness of biogenic AuNPs for the treatment of breast cancer and their anticancer molecular mechanisms through in vitro studies. Online electronic databases, including Cochrane, PubMed, Scopus, Web of Science, Science Direct, ProQuest, and Embase, were searched for the articles published up to July 16, 2019. Our findings revealed that plant-mediated synthesis was the most common approach for the generation of AuNPs. Most of the studies reported spherical or nearly spherical-shaped AuNPs with a mean diameter less than 100 nm in size. A significantly larger cytotoxicity was observed when the biogenic AuNPs were tested towards breast cancer cells compared to healthy cells. Moreover, biogenic AuNPs demonstrated significant synergistic activity in combination with other anticancer drugs through in vitro studies. Although we provided strong and comprehensive preliminary in vitro data, further in vivo investigations are required to show the reliability and efficacy of these NPs in animal models.
乳腺癌仍然是一个令人关注的全球健康问题,是 2019 年美国女性癌症死亡的第二大主要原因。因此,迫切需要探索新的策略来对抗乳腺癌。一种潜在的解决方案可能来自癌症纳米技术的应用,这是一个创新性的研究领域,研究纳米材料在癌症诊断、治疗和治疗应用中的潜力。因此,癌症纳米技术的治疗诊断功能在过去几年中引起了科学家们的极大关注,并呈指数级增长。生物合成的金纳米粒子(AuNPs)已被探索作为治疗乳腺癌的有效机制。本研究通过体外研究假设了一项全球系统评价,以评估生物合成的 AuNPs 治疗乳腺癌的有效性及其抗癌分子机制。在线电子数据库,包括 Cochrane、PubMed、Scopus、Web of Science、Science Direct、ProQuest 和 Embase,均检索到截至 2019 年 7 月 16 日发表的文章。我们的研究结果表明,植物介导的合成是生成 AuNPs 的最常见方法。大多数研究报告称,生成的 AuNPs 呈球形或近球形,平均直径小于 100nm。与健康细胞相比,生物合成的 AuNPs 对乳腺癌细胞的细胞毒性明显更大。此外,通过体外研究,生物合成的 AuNPs 与其他抗癌药物联合显示出显著的协同活性。尽管我们提供了强有力的、全面的初步体外数据,但仍需要进一步的体内研究来证明这些 NPs 在动物模型中的可靠性和疗效。
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