Perea Daniel E, Liu Jia, Bartrand Jonah, Dicken Quinten, Thevuthasan S Theva, Browning Nigel D, Evans James E
Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory, Richland, WA 99352, USA.
Fundamental Computational Sciences Directorate, Pacific Northwest National Laboratory, Richland, WA 99352, USA.
Sci Rep. 2016 Feb 29;6:22321. doi: 10.1038/srep22321.
Here we report the atomic-scale analysis of biological interfaces within the ferritin protein using atom probe tomography that is facilitated by an advanced specimen preparation approach. Embedding ferritin in an organic polymer resin lacking nitrogen provided chemical contrast to visualise atomic distributions and distinguish the inorganic-organic interface of the ferrihydrite mineral core and protein shell, as well as the organic-organic interface between the ferritin protein shell and embedding resin. In addition, we definitively show the atomic-scale distribution of phosphorus as being at the surface of the ferrihydrite mineral with the distribution of sodium mapped within the protein shell environment with an enhanced distribution at the mineral/protein interface. The sample preparation method is robust and can be directly extended to further enhance the study of biological, organic and inorganic nanomaterials relevant to health, energy or the environment.
在此,我们报告了使用原子探针断层扫描技术对铁蛋白内生物界面进行的原子尺度分析,该技术借助先进的样品制备方法得以实现。将铁蛋白嵌入不含氮的有机聚合物树脂中,可提供化学对比度以可视化原子分布,并区分水铁矿矿物核心与蛋白质外壳的无机-有机界面,以及铁蛋白蛋白质外壳与嵌入树脂之间的有机-有机界面。此外,我们明确显示磷的原子尺度分布位于水铁矿矿物表面,钠的分布则绘制在蛋白质外壳环境中,且在矿物/蛋白质界面处分布增强。该样品制备方法稳健,可直接扩展以进一步加强对与健康、能源或环境相关的生物、有机和无机纳米材料的研究。