具有成本效益的绿色生物制造氧化铜纳米粒子:探索抗菌和抗癌应用

Q1 Immunology and Microbiology
Yemane Tadesse Gebreslassie , Fisseha Guesh Gebremeskel
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引用次数: 0

摘要

近年来,纳米技术取得了长足的进步,通过利用金属和金属氧化物纳米粒子,为各个科学领域、工业和研究机构带来了革命性的变化。在这些纳米粒子中,氧化铜纳米粒子(CuO NPs)因其多变的特性和广泛的应用而备受关注,尤其是作为有效的抗菌剂和抗癌剂。CuO NPs 可通过不同的方法合成,包括物理、化学和生物方法。然而,传统的化学和物理方法成本高昂、资源密集,而且涉及使用有害化学物质,会对人类健康和环境造成危害。相比之下,生物合成法消除了化学污染物,并允许生产定制尺寸和形状的氧化铜氮氧化物,从而提供了一种可持续和具有成本效益的替代方法。本综述重点介绍了利用各种生物资源(如植物、微生物和其他生物衍生物)绿色合成 CuO NPs 的方法。文章讨论了 CuO NPs 绿色合成方法的现有知识和最新趋势,并特别强调了其生物医学应用,尤其是在抗癌和微生物感染方面的应用。这篇综述强调了 CuO NPs 在应对这些疾病方面的巨大潜力。通过利用生物合成的优势,如环境安全性和定制纳米粒子特性的能力,CuO NPs 已成为治疗各种疾病的有前途的药物。本综述介绍了令人信服的研究结果,展示了生物合成的 CuO NPs 作为新型治疗剂所取得的显著成就。其独特的性质和机制可有效对抗癌细胞和各种有害微生物感染。CuO NPs 通过多种机制表现出强大的抗癌活性,包括诱导细胞凋亡、抑制血管生成和调节信号通路。此外,它们的抗菌活性还体现在破坏微生物膜、产生活性氧和干扰微生物酶等多种机制上。本综述就生物合成的氧化铜氮氧化物的巨大潜力提供了宝贵的见解,它是未来针对癌症和微生物感染进行治疗干预的一种创新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Green and cost-effective biofabrication of copper oxide nanoparticles: Exploring antimicrobial and anticancer applications

Green and cost-effective biofabrication of copper oxide nanoparticles: Exploring antimicrobial and anticancer applications

Nanotechnology has made remarkable advancements in recent years, revolutionizing various scientific fields, industries, and research institutions through the utilization of metal and metal oxide nanoparticles. Among these nanoparticles, copper oxide nanoparticles (CuO NPs) have garnered significant attention due to their versatile properties and wide-range applications, particularly, as effective antimicrobial and anticancer agents. CuO NPs can be synthesized using different methods, including physical, chemical, and biological approaches. However, conventional chemical and physical approaches are expensive, resource-intensive, and involve the use of hazardous chemicals, which can pose risks to human health and the environment. In contrast, biological synthesis provides a sustainable and cost-effective alternative by eliminating chemical pollutants and allowing for the production of CuO NPs of tailored sizes and shapes. This comprehensive review focused on the green synthesis of CuO NPs using various biological resources, such as plants, microorganisms, and other biological derivatives. Current knowledge and recent trends in green synthesis methods for CuO NPs are discussed, with a specific emphasis on their biomedical applications, particularly in combating cancer and microbial infections. This review highlights the significant potential of CuO NPs in addressing these diseases. By capitalizing on the advantages of biological synthesis, such as environmental safety and the ability to customize nanoparticle characteristics, CuO NPs have emerged as promising therapeutic agents for a wide range of conditions. This review presents compelling findings, demonstrating the remarkable achievements of biologically synthesized CuO NPs as novel therapeutic agents. Their unique properties and mechanisms enable effective combating against cancer cells and various harmful microbial infections. CuO NPs exhibit potent anticancer activity through diverse mechanisms, including induction of apoptosis, inhibition of angiogenesis, and modulation of signaling pathways. Additionally, their antimicrobial activity manifests through various mechanisms, such as disrupting microbial membranes, generating reactive oxygen species, and interfering with microbial enzymes. This review offers valuable insights into the substantial potential of biologically synthesized CuO NPs as an innovative approach for future therapeutic interventions against cancer and microbial infections.

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来源期刊
Biotechnology Reports
Biotechnology Reports Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
15.80
自引率
0.00%
发文量
79
审稿时长
55 days
期刊介绍: Biotechnology Reports covers all aspects of Biotechnology particularly those reports that are useful and informative and that will be of value to other researchers in related fields. Biotechnology Reports loves ground breaking science, but will also accept good science that can be of use to the biotechnology community. The journal maintains a high quality peer review where submissions are considered on the basis of scientific validity and technical quality. Acceptable paper types are research articles (short or full communications), methods, mini-reviews, and commentaries in the following areas: Healthcare and pharmaceutical biotechnology Agricultural and food biotechnology Environmental biotechnology Molecular biology, cell and tissue engineering and synthetic biology Industrial biotechnology, biofuels and bioenergy Nanobiotechnology Bioinformatics & systems biology New processes and products in biotechnology, bioprocess engineering.
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