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Biogenesis of metal nanoparticles and their pharmacological applications: present status and application prospects

机译:金属纳米粒子的生物发生及其药理应用:现状与应用前景

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Green chemistry approaches for the synthesis of metallic nanoparticles have become a new and promising field of research in recent years. Synthesis of metal nanoparticles [like gold (Au), silver (Ag), lead (Pb), platinum (Pt), copper (Cu), iron (Fe), cadmium (Cd), and other metal oxides such as titanium oxide (TiO), zinc oxide (ZnO), etc.] by various chemical and physical approaches as well as the biological approaches mediated by number of microorganisms have been actively found. Plant-mediated synthesis approaches are found to be more reliable and economic route to synthesize these metal nanoparticles. Owing to the biodiversity of plant biomasses, the actual mechanism by which the plant constituents have contributed to the synthetic process is yet to be fully known. Although the feasibility of controlling, the size and shape of nanoparticles by variation in reaction conditions have been demonstrated in many studies. Conventionally, nanoparticles are synthesized by chemicals and physicochemical methods using several chemicals which later on become accountable for various risk due to their general toxicity, so that solving the objective biological approaches is coming up to fill these gaps. The plant-mediated synthesis process undergoes highly controlled approaches for making them suitable for metal nanoparticle synthesis. In addition, biological synthesis of metallic nanoparticles is inexpensive, one-step, and eco-friendly method. In addition, the plant-mediated nanoparticles are used as potential pharmaceutical agents for various diseases such as malaria, HIV, cancer, hepatitis, and other diseases. Including this some other relevant information regarding nanopharmaceutical products, companies that are involve in the manufacturing and commercialization process and their clinical trial status are also discussed. This review article gives an overview of the plant-mediated synthesis of metal nanoparticles, possible compounds, and mechanisms that might be responsible for the reduction process as well as the potential pharmacological applications, currently available nanopharmaceutical products and their marketing status. Graphical abstract.
机译:近年来,用于合成金属纳米颗粒的绿色化学方法已成为一个新的有前途的研究领域。金属纳米粒子的合成[例如金(Au),银(Ag),铅(Pb),铂(Pt),铜(Cu),铁(Fe),镉(Cd)和其他金属氧化物,例如氧化钛(已经积极地发现了通过各种化学和物理方法以及由多种微生物介导的生物方法的TiO 2,氧化锌(ZnO)等。发现植物介导的合成方法是合成这些金属纳米颗粒的更可靠和经济的途径。由于植物生物量的生物多样性,植物成分促成合成过程的实际机制尚不完全清楚。尽管控制的可行性,但是在许多研究中已经证明了通过改变反应条件来控制纳米颗粒的大小和形状。常规地,纳米粒子通过化学和物理化学方法使用几种化学物质合成,由于它们的一般毒性,后来由于它们的一般毒性而对各种风险负责,因此解决客观的生物方法正在填补这些空白。植物介导的合成过程经历了高度受控的方法,以使其适于金属纳米颗粒合成。另外,金属纳米颗粒的生物合成是廉价的,一步一步且环保的方法。此外,植物介导的纳米颗粒还被用作治疗各种疾病的潜在药物,例如疟疾,HIV,癌症,肝炎和其他疾病。包括有关纳米药物产品的其他一些相关信息,还讨论了参与制造和商业化过程的公司及其临床试验状态。这篇综述文章概述了植物介导的金属纳米颗粒的合成,可能的化合物以及可能导致还原过程的机理,以及潜在的药理学应用,当前可用的纳米药物产品及其市场地位。图形概要。

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