ZnO Nanoparticles: A Promising Anticancer Agent.

Q1 Engineering
Nanobiomedicine Pub Date : 2016-01-01 DOI:10.5772/63437
Gunjan Bisht, Sagar Rayamajhi
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引用次数: 0

Abstract

Nanoparticles, with their selective targeting capabilities and superior efficacy, are becoming increasingly important in modern cancer therapy and starting to overshadow traditional cancer therapies such as chemotherapy radiation and surgery. ZnO nanoparticles, with their unique properties such as biocompatibility, high selectivity, enhanced cytotoxicity and easy synthesis, may be a promising anticancer agent. Zinc, as one of the major trace elements of the human body and co-factor of more than 300 mammalian enzymes, plays an important role in maintaining crucial cellular processes including oxidative stress, DNA replication, DNA repair, cell cycle progression and apoptosis. Thus, it is evident that an alteration in zinc levels in cancer cells can cause a deleterious effect. Research has shown that low zinc concentration in cells leads to the initiation and progression of cancer and high zinc concentration shows toxic effects. Zinc-mediated protein activity disequilibrium and oxidative stress through reactive oxygen species (ROS) may be the probable mechanism of this cytotoxic effect. The selective localization of ZnO nanoparticles towards cancer cells due to enhanced permeability and retention (EPR) effect and electrostatic interaction and selective cytotoxicity due to increased ROS present in cancer cells show that ZnO nanoparticles can selectively target and kill cancer cells, making them a promising anticancer agent.

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氧化锌纳米粒子:一种前景广阔的抗癌剂
纳米粒子具有选择性靶向能力和卓越的疗效,在现代癌症治疗中的作用日益重要,并开始超越化疗、放疗和手术等传统癌症疗法。氧化锌纳米粒子具有生物相容性、高选择性、增强细胞毒性和易于合成等独特性质,可能是一种前景广阔的抗癌剂。锌是人体的主要微量元素之一,也是 300 多种哺乳动物酶的辅助因子,在维持氧化应激、DNA 复制、DNA 修复、细胞周期进展和细胞凋亡等关键细胞过程中发挥着重要作用。因此,癌细胞中锌含量的改变显然会造成有害影响。研究表明,细胞中锌浓度过低会导致癌症的发生和发展,而锌浓度过高则会产生毒性作用。锌介导的蛋白质活性失衡和通过活性氧(ROS)产生的氧化应激可能是这种细胞毒性效应的机制。由于增强的渗透性和滞留(EPR)效应以及静电相互作用,氧化锌纳米粒子可选择性地定位在癌细胞上,而癌细胞中存在的 ROS 增加了氧化锌纳米粒子的选择性细胞毒性,这表明氧化锌纳米粒子可选择性地靶向杀死癌细胞,使其成为一种很有前途的抗癌剂。
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来源期刊
Nanobiomedicine
Nanobiomedicine Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.80
自引率
0.00%
发文量
1
审稿时长
14 weeks
期刊介绍: Nanobiomedicine is an international, peer-reviewed, open access scientific journal that publishes research in nanotechnology as it interfaces with fundamental studies in biology, as well as its application to the fields of medicine. Nanobiomedicine covers all key aspects of this research field, including, but not limited to, bioengineering, biophysics, physical and biological chemistry, and physiology, as well as nanotechnological applications in diagnostics, therapeutic application, preventive medicine, drug delivery, and monitoring of human disease. Additionally, theoretical and modeling studies covering the nanobiomedicine fields will be considered. All submitted articles considered suitable for Nanobiomedicine are subjected to rigorous peer review to ensure the highest levels of quality. The review process is carried out as quickly as possible to minimize any delays in the online publication of articles. Submissions are encouraged on all topics related to nanobiomedicine, and its clinical applications including but not limited to: Nanoscale-structured biomaterials, Nanoscale bio-devices, Nanoscale imaging, Nanoscale drug delivery, Nanobiotechnology, Nanorobotics, Nanotoxicology, Nanoparticles, Nanocarriers, Nanofluidics, Nanosensors (nanowires, nanophotonics), Nanosurgery (dermatology, gastroenterology, ophthalmology, etc), Nanocarriers commercialization of nanobiomedical technologies, Market trends in the nanobiomedicine space, Ethics and regulatory aspects of nanobiomedicine approval, New perspectives of nanobiomedicine in clinical diagnostics, BioMEMS, Nano-coatings, Plasmonics, Nanoscale visualization.
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