Moro Daniele, Ulian Gianfranco, Valdrè Giovanni
Centro di Ricerca Interdisciplinare di Biomineralogia, Cristallografia e Biomateriali, Dipartimento di Scienze Biologiche, Geologiche e Ambientali, Università di Bologna "Alma Mater Studiorum", Piazza di Porta San Donato 1, 40126 Bologna, Italy.
Langmuir. 2015 Apr 21;31(15):4453-63. doi: 10.1021/acs.langmuir.5b00161. Epub 2015 Apr 10.
In this work, we studied the interaction of glycine with the (001) surface of chlorite mineral at a single molecule level by cross-correlating scanning probe microscopy (SPM) and ab initio quantum mechanics (QM) investigations. Chlorite mineral is particularly interesting and peculiar for the interaction with organic molecules because it presents an alternated stacking of brucite-like (hydrophobic) and talc-like (hydrophilic) layers of different polarities. Brucite-like is positive, whereas talc-like is negative. The experimental atomic force microscopy (AFM) observations show that glycine is stably and selectively adsorbed on the brucite-like layer, organized in monolayers with different patterns. The sizes of single molecules of glycine measured by AFM are in agreement with those calculated by QM. Glycine molecules were found to align both at the edges and on the terraces of the brucitic surface. QM simulations confirmed the AFM observations that glycine molecule is adsorbed with high adsorption energy preferentially with its plane parallel to the (001) brucite-like surface. QM also provided the geometry conformation of the molecule and the bonding scheme between glycine and brucite surface. This kind of data can be very helpful both to biotechnological applications of this substrate and to depict some important processes that might have been occurred in prebiotic environments.
在这项工作中,我们通过将扫描探针显微镜(SPM)与从头算量子力学(QM)研究相互关联,在单分子水平上研究了甘氨酸与亚氯酸盐矿物(001)表面的相互作用。亚氯酸盐矿物与有机分子的相互作用特别有趣且独特,因为它呈现出不同极性的水镁石状(疏水)层和滑石状(亲水)层的交替堆叠。水镁石状层为正,而滑石状层为负。实验原子力显微镜(AFM)观察表明,甘氨酸稳定且选择性地吸附在水镁石状层上,形成具有不同图案的单分子层。通过AFM测量的甘氨酸单分子大小与QM计算的结果一致。发现甘氨酸分子在水镁石表面的边缘和平台上均有排列。QM模拟证实了AFM的观察结果,即甘氨酸分子以高吸附能优先以其平面平行于(001)水镁石状表面的方式被吸附。QM还提供了分子的几何构象以及甘氨酸与水镁石表面之间的键合方案。这类数据对于该底物的生物技术应用以及描绘在益生元环境中可能发生的一些重要过程都非常有帮助。