Chevrier D M, Thanthirige V D, Luo Z, Driscoll S, Cho P, MacDonald M A, Yao Q, Guda R, Xie J, Johnson E R, Chatt A, Zheng N, Zhang P
Department of Chemistry , Dalhousie University , 6274 Coburg Road , Halifax , NS B3H4J3 , Canada . Email:
Department of Chemistry , Western Michigan University , Kalamazoo , MI49008 , USA.
Chem Sci. 2018 Feb 5;9(10):2782-2790. doi: 10.1039/c7sc05086k. eCollection 2018 Mar 14.
Highly luminescent gold clusters simultaneously synthesized and stabilized by protein molecules represent a remarkable category of nanoscale materials with promising applications in bionanotechnology as sensors. Nevertheless, the atomic structure and luminescence mechanism of these gold clusters are still unknown after several years of developments. Herein, we report findings on the structure, luminescence and biomolecular self-assembly of gold clusters stabilized by the large globular protein, bovine serum albumin. We highlight the surprising identification of interlocked gold-thiolate rings as the main gold structural unit. Importantly, such gold clusters are in a rigidified state within the protein scaffold, offering an explanation for their highly luminescent character. Combined free-standing cluster synthesis (without protecting protein scaffold) with rigidifying and un-rigidifying experiments, were designed to further verify the luminescence mechanism and gold atomic structure within the protein. Finally, the biomolecular self-assembly process of the protein-stabilized gold clusters was elucidated by time-dependent X-ray absorption spectroscopy measurements and density functional theory calculations.
由蛋白质分子同时合成并稳定的高发光金簇是一类引人注目的纳米级材料,在作为传感器的生物纳米技术中具有广阔的应用前景。然而,经过数年的发展,这些金簇的原子结构和发光机制仍然未知。在此,我们报告了关于由大球状蛋白牛血清白蛋白稳定的金簇的结构、发光和生物分子自组装的研究结果。我们着重指出了令人惊讶的发现,即互锁的硫醇金环是主要的金结构单元。重要的是,此类金簇在蛋白质支架内处于刚性状态,这为它们的高发光特性提供了解释。结合独立簇合成(无保护蛋白质支架)与刚性化和非刚性化实验,旨在进一步验证蛋白质内的发光机制和金原子结构。最后,通过时间分辨X射线吸收光谱测量和密度泛函理论计算阐明了蛋白质稳定金簇的生物分子自组装过程。