Research and Development Cell, Parul University, Vadodara, Gujarat, 391760, India.
Universidad de Buenos Aires, Facultad de Farmacia y Bioquímica, Instituto de Química y Metabolismo del Fármaco (IQUIMEFA), Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Buenos Aires, Argentina.
Int J Nanomedicine. 2023 Aug 18;18:4727-4750. doi: 10.2147/IJN.S419369. eCollection 2023.
Conventional nanoparticle synthesis methods involve harsh conditions, high costs, and environmental pollution. In this context, researchers are actively searching for sustainable, eco-friendly alternatives to conventional chemical synthesis methods. This has led to the development of green synthesis procedures among which the exploration of the plant-mediated synthesis of nanoparticles experienced a great development. Especially, because plant extracts can work as reducing and stabilizing agents. This opens up new possibilities for cost-effective, environmentally-friendly nanoparticle synthesis with enhanced size uniformity and stability. Moreover, bio-inspired nanoparticles derived from plants exhibit intriguing pharmacological properties, making them highly promising for use in medical applications due to their biocompatibility and nano-dimension.
This study investigates the role of specific phytochemicals, such as phenolic compounds, terpenoids, and proteins, in plant-mediated nanoparticle synthesis together with their influence on particle size, stability, and properties. Additionally, we highlight the potential applications of these bio-derived nanoparticles, particularly with regard to drug delivery, disease management, agriculture, bioremediation, and application in other industries.
Extensive research on scientific databases identified green synthesis methods, specifically plant-mediated synthesis, with a focus on understanding the contributions of phytochemicals like phenolic compounds, terpenoids, and proteins. The database search covered the field's development over the past 15 years.
Insights gained from this exploration highlight plant-mediated green synthesis for cost-effective nanoparticle production with significant pharmacological properties. Utilizing renewable biological resources and controlling nanoparticle characteristics through biomolecule interactions offer promising avenues for future research and applications.
This review delves into the scientific intricacies of plant-mediated synthesis of nanoparticles, highlighting the advantages of this approach over the traditional chemical synthesis methods. The study showcases the immense potential of green synthesis for medical and other applications, aiming to inspire further research in this exciting area and promote a more sustainable future.
传统的纳米颗粒合成方法涉及苛刻的条件、高成本和环境污染。在这种情况下,研究人员正在积极寻找传统化学合成方法的可持续、环保替代品。这导致了绿色合成方法的发展,其中植物介导的纳米颗粒合成的探索得到了很大的发展。特别是,因为植物提取物可以作为还原和稳定剂。这为具有成本效益、环保的纳米颗粒合成开辟了新的可能性,提高了尺寸均匀性和稳定性。此外,源自植物的生物启发纳米颗粒表现出有趣的药理学特性,由于其生物相容性和纳米尺寸,它们在医学应用中极具应用前景。
本研究调查了特定植物化学物质(如酚类化合物、萜类化合物和蛋白质)在植物介导的纳米颗粒合成中的作用,以及它们对颗粒尺寸、稳定性和性质的影响。此外,我们强调了这些生物衍生纳米颗粒的潜在应用,特别是在药物输送、疾病管理、农业、生物修复以及其他行业的应用方面。
通过广泛研究科学数据库,确定了绿色合成方法,特别是植物介导的合成方法,重点是了解酚类化合物、萜类化合物和蛋白质等植物化学物质的贡献。数据库搜索涵盖了过去 15 年该领域的发展情况。
从这种探索中获得的见解突出了植物介导的绿色合成方法在具有显著药理学特性的经济型纳米颗粒生产中的应用。利用可再生生物资源和通过生物分子相互作用控制纳米颗粒特性为未来的研究和应用提供了有前途的途径。
本综述深入探讨了植物介导的纳米颗粒合成的科学复杂性,强调了这种方法相对于传统化学合成方法的优势。该研究展示了绿色合成在医学和其他应用中的巨大潜力,旨在激发该令人兴奋领域的进一步研究,并促进更可持续的未来。