She Shan, Xuan Weimin, Bell Nicola L, Pow Robert, Ribo Eduard Garrido, Sinclair Zoe, Long De-Liang, Cronin Leroy
School of Chemistry, University of Glasgow University Avenue Glasgow G12 8QQ UK
Chem Sci. 2020 Dec 14;12(7):2427-2432. doi: 10.1039/d0sc06098d.
The precise control over the formation of complex nanostructures, polyoxometalates (POMs), at the sub-nanoscale is challenging but critical if non-covalent architectures are to be designed. Combining biologically-evolved systems with inorganic nanostructures could lead to sequence-mediated assembly. Herein, we exploit oligopeptides as multidentate structure-directing ligands metal-coordination and hydrogen bonded interactions to modulate the self-assembly of POM superstructures. Six oligopeptides (GH, AH, SH, GH, GH and GH) are incorporated into the cavities of Molybdenum Blue (MB) POM nanowheels. It is found that the helicity of the nanowheel can be readily switched (Δ to Λ) by simply altering the N-terminal amino acid on the peptide chain rather than their overall stereochemistry. We also reveal a delicate balance between the Mo-coordination and the hydrogen bonds found within the internal cavity of the inorganic nanowheels which results in the sequence mediated formation of two unprecedented asymmetrical nanowheel frameworks: {MoCe} and {MoCe}.
在亚纳米尺度上精确控制复杂纳米结构——多金属氧酸盐(POMs)的形成具有挑战性,但如果要设计非共价结构则至关重要。将生物进化系统与无机纳米结构相结合可能会导致序列介导的组装。在此,我们利用寡肽作为多齿结构导向配体,通过金属配位和氢键相互作用来调节POM超结构的自组装。六种寡肽(GH、AH、SH、GH、GH和GH)被纳入钼蓝(MB)POM纳米轮的空腔中。研究发现,通过简单改变肽链上的N端氨基酸而非其整体立体化学,纳米轮的螺旋度可以很容易地切换(从Δ到Λ)。我们还揭示了无机纳米轮内腔中钼配位与氢键之间的微妙平衡,这导致了两种前所未有的不对称纳米轮框架{MoCe}和{MoCe}的序列介导形成。