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产氢嗜热细菌合成了尺寸可控的优质细金纳米颗粒,在消除生物膜和抗菌应用方面表现出色。

Hydrogen-producing hyperthermophilic bacteria synthesized size-controllable fine gold nanoparticles with excellence for eradicating biofilm and antibacterial applications.

作者信息

Bing Wei, Sun Hanjun, Wang Faming, Song Yanqiu, Ren Jinsong

机构信息

Cancer Center, First Affiliated Hospital, Jilin University, Changchun, Jilin 130061.

出版信息

J Mater Chem B. 2018 Jul 28;6(28):4602-4609. doi: 10.1039/c8tb00549d. Epub 2018 Jul 2.

DOI:10.1039/c8tb00549d
PMID:32254404
Abstract

Herein, we employed the hydrogen-producing hyperthermophilic bacterial strain Caldicellulosiruptor changbaiensis for preparing uniform and size-tunable gold nanoparticles (AuNPs). Compared with the commonly used chemically synthesized nanoparticles, the biological synthesis of nanoparticles appears to be a suitable process since it has a low manufacturing cost of scalability, good biocompatibility, and better nanoparticles stabilization. The produced AuNPs possessed a unique property, whereby the smallest AuNPs exhibited the highest peroxidase activity over a broad pH range, even at neutral pH, which was quite different from the commonly chemical-synthesized ones. Also, when the size of AuNPs increased, the peroxidase activity of B-AuNPs at neutral pH decreased. Owing to the excellent antibacterial capability of ROS, the AuNPs exhibited striking antibacterial properties against both Gram-positive and Gram-negative bacteria, and moreover, the AuNPs showed excellent ability to disperse bacterial biofilms both in vitro and in vivo. Our studies indicate that living bacterial cells, as a biosynthesizer, can synthesize size-controllable AuNPs with improved bioactivity. This work may promote the design and synthesis of other types of metal nanoparticles with defined properties for future applications.

摘要

在此,我们使用产氢嗜热细菌菌株长白热解纤维素菌来制备均匀且尺寸可调的金纳米颗粒(AuNPs)。与常用的化学合成纳米颗粒相比,纳米颗粒的生物合成似乎是一个合适的过程,因为它具有低成本、可扩展性、良好的生物相容性以及更好的纳米颗粒稳定性。所制备的AuNPs具有独特的性质,即最小的AuNPs在较宽的pH范围内表现出最高的过氧化物酶活性,甚至在中性pH条件下也是如此,这与常用的化学合成AuNPs有很大不同。此外,当AuNPs的尺寸增大时,B-AuNPs在中性pH下的过氧化物酶活性降低。由于活性氧(ROS)具有出色的抗菌能力,AuNPs对革兰氏阳性菌和革兰氏阴性菌均表现出显著的抗菌性能,而且AuNPs在体外和体内均表现出优异的分散细菌生物膜的能力。我们的研究表明,活细菌细胞作为生物合成器,可以合成具有改善生物活性的尺寸可控的AuNPs。这项工作可能会促进未来用于其他类型具有特定性质的金属纳米颗粒的设计和合成。

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