Department of Material Science and Engineering, Center for Nano-Science and Nano-Technology, Tel-Aviv University, 69978, Tel-Aviv, Israel.
Monash Institute of Pharmaceutical Sciences, Monash University, Parkville Campus, 381 Royal Parade, Parkville, VIC, 3052, Australia.
J Nanobiotechnology. 2022 Nov 16;20(1):482. doi: 10.1186/s12951-022-01680-7.
Inspired by nature, green chemistry uses various biomolecules, such as proteins, as reducing agents to synthesize metallic nanostructures. This methodology provides an alternative route to conventional harsh synthetic processes, which include polluting chemicals. Tuning the resulting nanostructure properties, such as their size and shape, is challenging as the exact mechanism involved in their formation is still not well understood. This work reports a well-controlled method to program gold nanostructures' shape, size, and aggregation state using only one protein type, mucin, as a reduction and capping material in a one-pot bio-assisted reaction. Using mucin as a gold reduction template while varying its tertiary structure via the pH of the synthesis, we demonstrate that spherical, coral-shaped, and hexagonal gold crystals can be obtained and that the size can be tuned over three orders of magnitude. This is achieved by leveraging the protein's intrinsic reducing properties and pH-induced conformational changes. The systematic study of the reaction kinetics and growth steps developed here provides an understanding of the mechanism behind this phenomenon. We further show that the prepared gold nanostructures exhibit tunable photothermal properties that can be optimized for various hyperthermia-induced antibacterial applications.
受自然启发,绿色化学使用各种生物分子,如蛋白质,作为还原剂来合成金属纳米结构。这种方法为传统的苛刻合成工艺提供了一种替代途径,传统的合成工艺包括使用污染性化学物质。由于形成它们的精确机制仍未得到很好的理解,因此调整所得纳米结构的性质(例如尺寸和形状)具有挑战性。这项工作报道了一种使用仅一种蛋白质类型(粘蛋白)作为还原和封端材料,在一锅生物辅助反应中控制金纳米结构形状、尺寸和聚集态的方法。通过使用粘蛋白作为金还原模板,同时通过合成的 pH 值改变其三级结构,我们证明可以获得球形、珊瑚形和六方晶金晶体,并且尺寸可以在三个数量级上进行调节。这是通过利用蛋白质的内在还原性质和 pH 诱导的构象变化来实现的。这里开发的反应动力学和生长步骤的系统研究提供了对这种现象背后机制的理解。我们进一步表明,所制备的金纳米结构具有可调谐的光热性质,可以针对各种用于诱导抗菌的热疗应用进行优化。