Utilizing Plant Phytoconstituents in Metal Oxide Nanoparticle Synthesis for Cancer Therapies.

IF 2.6 4区 医学 Q2 PHARMACOLOGY & PHARMACY
Swati Dubey, Tarun Virmani, Shiv Kumar Yadav, Girish Kumar, Ashwani Sharma, Dalapathi Gugulothu
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引用次数: 0

Abstract

Background: The metal oxide nanoparticles possess unique properties such as biological compatibility, superior reactivity, and capacity to develop reactive oxygen species, due to this they have drawn significant interest in cancer treatment. The various MONPs such as cerium oxide, Copper oxide, Iron oxide, Titanium dioxide, and Zinc oxide have been investigated for several types of cancers including brain, breast, cervical, colon, leukemia, liver, lung, melanoma, ovarian, and prostate cancers. However, traditional physiochemical synthetic methods for MONPs commonly include toxic materials, a major concern that raises questions regarding their biocompatibility and safety.

Objective: This study aims to investigate the role of plant phytoconstituents in the development of MONPs via green synthesis and explore the therapeutic effectiveness of MONPs in treating several types of cancer. Primarily, it examines the potential of plant phytoconstituents (phenolic compounds, flavonoids, glycosides, alkaloids, etc.) in the development of MONPs as well as their improved ability to target numerous types of cancer.

Methods: A systemic search was conducted on recent literature, focusing on developing green MONPs by utilizing plants' phytoconstituents (plant extracts). The study of plant phytochemicals (present in different parts of a plant such as leaves, flowers, stems, peels, and roots) and their role in the synthesis of green metal oxide nanoparticles as well as their anticancer activity against several types of cancers was analyzed. Also focusing on their anticancer mechanism that involves ROS production, generates oxidative stress, and apoptosis leads to cancer inhibition.

Results: Phytochemicals-mediated metal oxide nanoparticle synthesis revealed many advantages such as improved biological compatibility and enhanced sensitivity towards cancer cells. Phytochemicals present in plant extracts act as natural capping, reducing, and stabilizing agents, enhancing nanoparticle synthesis which leads to synergistic anticancer activity. Additionally, the natural antioxidant and anticancer activity of various phytochemicals enhances the therapeutic potential of metal oxide nanoparticles, producing them more effective against ROS-generated apoptosis and showing negligible toxicity towards normal cells.

Conclusion: The utilization of plant phytochemicals in metal oxide nanoparticle production presents a safe, eco-friendly, sustainable, and effective approach to developing effective and safer cancer nanomedicines. Green synthesis not only increases anticancer activity but also decreases the biocompatibility problems associated with the physiochemical synthetic approach. Further research needs to concentrate on improving this synergy to create a targeted phytochemical-based metal oxide nanoparticle for cancer therapeutics.

利用植物成分合成金属氧化物纳米颗粒用于癌症治疗。
背景:金属氧化物纳米颗粒具有独特的性质,如生物相容性、优越的反应性和产生活性氧的能力,因此它们在癌症治疗中引起了极大的兴趣。各种MONPs,如氧化铈、氧化铜、氧化铁、二氧化钛和氧化锌,已经被研究用于几种类型的癌症,包括脑癌、乳腺癌、宫颈癌、结肠癌、白血病、肝癌、肺癌、黑色素瘤、卵巢癌和前列腺癌。然而,传统的单克隆肽的物理化学合成方法通常含有有毒物质,这引起了人们对其生物相容性和安全性的质疑。目的:本研究旨在通过绿色合成探讨植物成分在MONPs发育中的作用,并探讨MONPs治疗几种类型癌症的疗效。主要研究了植物成分(酚类化合物、类黄酮、苷类、生物碱等)在monp发展中的潜力,以及它们针对多种癌症的改进能力。方法:系统检索近年来的文献,重点研究利用植物成分(植物提取物)开发绿色MONPs。植物化学物质(存在于植物的不同部分,如叶、花、茎、皮和根)及其在绿色金属氧化物纳米粒子合成中的作用以及它们对几种癌症的抗癌活性的研究进行了分析。同时关注它们的抗癌机制,包括ROS的产生、氧化应激和细胞凋亡导致的癌症抑制。结果:植物化学物质介导的金属氧化物纳米颗粒合成具有改善生物相容性和增强对癌细胞敏感性等优点。存在于植物提取物中的植物化学物质作为天然的覆盖、还原和稳定剂,增强纳米颗粒的合成,从而产生协同抗癌活性。此外,各种植物化学物质的天然抗氧化和抗癌活性增强了金属氧化物纳米颗粒的治疗潜力,使它们更有效地对抗ros引起的细胞凋亡,对正常细胞的毒性可以忽略不计。结论:利用植物化学物质生产金属氧化物纳米颗粒是开发有效、安全的抗癌纳米药物的一条安全、环保、可持续、有效的途径。绿色合成不仅增加了抗癌活性,而且减少了与物理化学合成方法相关的生物相容性问题。进一步的研究需要集中在改善这种协同作用上,以创造一种靶向植物化学的金属氧化物纳米颗粒,用于癌症治疗。
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
6.30
自引率
0.00%
发文量
302
审稿时长
2 months
期刊介绍: Current Pharmaceutical Design publishes timely in-depth reviews and research articles from leading pharmaceutical researchers in the field, covering all aspects of current research in rational drug design. Each issue is devoted to a single major therapeutic area guest edited by an acknowledged authority in the field. Each thematic issue of Current Pharmaceutical Design covers all subject areas of major importance to modern drug design including: medicinal chemistry, pharmacology, drug targets and disease mechanism.
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