Mosquera-Romero Suanny, Anaya-Garzon Juan, Garcia-Timermans Cristina, Van Dorpe Jo, Hoorens Anne, Commenges-Bernole Nadine, Verbeken Kim, Rabaey Korneel, Varia Jeet
Center for Microbial Ecology & Technology (CMET), Ghent University, Coupure Links 653, B-9000 Gent, Belgium.
ESPOL Polytechnic University, Escuela Superior Politécnica del Litoral, ESPOL, Facultad de Ciencias Naturales y Matemáticas, Campus Gustavo Galindo km. 30.5 Vía Perimetral, Guayaquil P.O. Box 09-01-5863, Ecuador.
Nanomaterials (Basel). 2022 Dec 24;13(1):83. doi: 10.3390/nano13010083.
Green synthesis of gold nanoparticles (AuNPs) using microorganisms has been generally studied aiming for high-yield production and morphologies appropriated for various applications, such as bioremediation, (bio)sensors, and (bio)catalysis. Numerous approaches showed the individual effect of factors influencing the synthesis of AuNPs with limited analysis of the governing factors enhancing the production and desired quality of the precipitates. This study proposes a fractional-factorial design to investigate the simultaneous influence of seven environmental factors (cell concentration, temperature, anoxic/oxic conditions, pH, gold concentration, electron donor type, and bacterial species) on the recovery yield and synthesis of targeted AuNPs. Various sizes and morphologies of the AuNPs were obtained by varying the environmental factors studied. The factors with significant effects (i.e., 0.2 mM Au and pH 5) were selected according to statistical analysis for optimal removal of 88.2 ± 3.5% of gold and with the production of valuable 50 nm AuNPs, which are known for their enhanced sensitivity. Implications of the cytochrome-C on the bacterial mechanisms and the provision of electron donors via an electrochemical system are further discussed. This study helps develop gold recovery and nanoparticle synthesis methods, focusing on the determining factor(s) for efficient, low-cost, green synthesis of valuable materials.
利用微生物进行金纳米颗粒(AuNPs)的绿色合成已得到广泛研究,旨在实现高产率生产,并获得适用于各种应用的形态,如生物修复、(生物)传感器和(生物)催化。众多方法展示了影响AuNPs合成的各因素的单独作用,但对提高沉淀物产量和所需质量的主导因素分析有限。本研究提出一种析因设计,以研究七个环境因素(细胞浓度、温度、缺氧/有氧条件、pH值、金浓度、电子供体类型和细菌种类)对目标AuNPs回收率和合成的同时影响。通过改变所研究的环境因素,获得了各种尺寸和形态的AuNPs。根据统计分析,选择了具有显著影响的因素(即0.2 mM金和pH值5),以实现88.2±3.5%的金的最佳去除率,并生产出具有增强灵敏度的50 nm有价值的AuNPs。进一步讨论了细胞色素C对细菌机制的影响以及通过电化学系统提供电子供体的情况。本研究有助于开发金回收和纳米颗粒合成方法,重点关注高效、低成本、绿色合成有价值材料的决定因素。