Department of Chemical Engineering & Food Engineering, Federal University of Santa Catarina, Florianópolis, SC 88040-900, Brazil.
Nanoscale. 2023 Sep 1;15(34):13886-13908. doi: 10.1039/d3nr02507a.
The biosynthesis of metallic nanoparticles (MNPs), encompassing noble metals, metal oxides, and sulfides, has gained significant attention in recent years due to their unique properties and wide-ranging applications. However, traditional chemical synthesis methods often involve extreme conditions, harsh chemicals, and negative environmental impacts. Consequently, developing a simple, non-toxic, and eco-friendly approach for MNP synthesis is paramount. One promising method that addresses these concerns is using a bacterial cell-free extract (CFE) as a mediator for biosynthesis. Compared with other biosynthesis production methods, the purification process of MNPs synthesized using bacterial CFEs is much simpler, and CFE production is easier to standardize and reproduce. Bacterial CFEs are rich in various biomolecules, including proteins, enzymes, and peptides, which serve as both reducing and oxidizing agents during MNP formation. These biomolecules act as capping agents, contributing to the stability and monodisperse nature of MNPs. Using bacterial CFEs for MNP synthesis offers several advantages. Firstly, it aligns with eco-friendly practices as a biosynthesis approach. The non-toxic process minimizes environmental damage. Additionally, bacterial CFEs are cost-effective, making large-scale production economically viable. This review provides insights into these mechanisms, highlighting the role of CFE biomolecules and their impact on MNP characteristics. It also investigates the correlation between synthesis parameters, morphologies, and physical, chemical, and biological properties, allowing for tailored MNP design through the biosynthesis conditions. Despite its advantages, bacterial CFE-mediated biosynthesis faces challenges. This review addresses these challenges and discusses potential solutions. It also explores future perspectives, emphasizing areas for further investigation and innovation. In summary, using bacterial CFEs to synthesize MNPs offers significant advantages over other methods. It ensures eco-friendly, non-toxic, and cost-effective production. The review emphasizes the mechanisms and biomolecules involved, showcasing the potential for tailored MNP design. It also addresses challenges and prospects, paving the way for advancements in this field. Furthermore, the originality of this work lies in the exploitation of bacterial CFEs as a highly efficient and scalable platform for MNP synthesis.
金属纳米粒子(MNPs)的生物合成,包括贵金属、金属氧化物和硫化物,由于其独特的性质和广泛的应用而引起了人们的极大关注。然而,传统的化学合成方法通常涉及极端条件、苛刻的化学物质和负面的环境影响。因此,开发一种简单、无毒、环保的 MNP 合成方法至关重要。一种有前途的方法是使用细菌无细胞提取物(CFE)作为生物合成的介质。与其他生物合成生产方法相比,使用细菌 CFEs 合成的 MNPs 的纯化过程要简单得多,而且 CFE 的生产更容易标准化和重现。细菌 CFEs 富含各种生物分子,包括蛋白质、酶和肽,它们在 MNP 形成过程中既是还原剂又是氧化剂。这些生物分子作为稳定剂,有助于 MNPs 的稳定性和单分散性。使用细菌 CFEs 进行 MNP 合成具有几个优点。首先,它符合环保的生物合成方法。无毒过程最大限度地减少了环境破坏。此外,细菌 CFEs 具有成本效益,使得大规模生产在经济上可行。本综述提供了对这些机制的深入了解,强调了 CFE 生物分子的作用及其对 MNP 特性的影响。它还研究了合成参数、形态以及物理、化学和生物特性之间的相关性,允许通过生物合成条件对 MNP 进行定制设计。尽管具有优势,但细菌 CFE 介导的生物合成面临挑战。本综述讨论了这些挑战和潜在的解决方案。它还探讨了未来的展望,强调了进一步研究和创新的领域。总之,使用细菌 CFEs 合成 MNPs 具有优于其他方法的显著优势。它确保了环保、无毒和具有成本效益的生产。综述强调了所涉及的机制和生物分子,展示了定制 MNP 设计的潜力。它还讨论了挑战和前景,为该领域的进展铺平了道路。此外,这项工作的创新性在于利用细菌 CFEs 作为一种高效且可扩展的 MNP 合成平台。