Institut des Sciences Chimiques de Rennes, UMR CNRS 6226, Université de Rennes 1 , 263 avenue du Général Leclerc, 35042 Rennes cedex, France.
J Am Chem Soc. 2017 Oct 4;139(39):13847-13857. doi: 10.1021/jacs.7b07559. Epub 2017 Sep 22.
Over the past decade, the hexaphyrin skeleton has emerged as a multifaceted frame exhibiting strong interplay between topology, aromaticity, and metal coordination, opening new research areas beyond porphyrins. However, molecular recognition with hexaphyrins has been underexplored, mainly because of the lack of general synthetic strategies leading to sophisticated molecular hosts. Here we have developed a straightforward approach for capping the heteroannulene frame with tripodal units (e.g., tris(2-aminoethyl)amine [tren]) through postsynthetic modification of a readily accessible meso-(2-aminophenyl) tris-substituted platform. The resulting tren-capped hexaphyrins, obtained in three steps from a 5-(aryl)dipyrromethane precursor, display remarkable features: (i) Considering the 28π-conjugated system, instantaneous and site-selective Zn(II) metalation at the level of a dipyrrin versus tren unit triggers a planar-to-singly twisted conformational change and hence a Hückel antiaromatic-to-Möbius aromatic transformation. In spite of the tripodal linkage, a smooth twist and efficient π overlap are preserved. (ii) Selective and cooperative binding of both an acetato ligand and an amino ligand to zinc occurs in distinct confined environments, reminiscent of substrate discrimination at the buried metal centers of metalloenzymes. The ligand binding pockets are allosterically tuned by monoprotonation of the tren unit. (iii) Substantial chiral induction of the molecular twist is achieved using chiral amino ligands (diastereomeric excess up to 77%, the highest reported to date for a Möbius compound), to which is associated a strong chiroptical signature in circular dichroism. These results provide unprecedented insights into molecular recognition with hexaphyrins, paving the way to innovative Möbius-type molecular hosts for sensing and catalysis.
在过去的十年中,六吡咯骨架作为一个多方面的框架出现了,它表现出拓扑、芳香性和金属配位之间的强烈相互作用,开辟了超越卟啉的新的研究领域。然而,六吡咯啉的分子识别尚未得到充分探索,主要是因为缺乏导致复杂分子主体的通用合成策略。在这里,我们通过对易于获得的中位(2-氨基苯基)三取代平台进行后合成修饰,开发了一种用三脚架单元(例如三(2-氨基乙基)胺[三嗪])封闭杂环烯框架的简单方法。通过 5-(芳基)二吡咯甲烷前体的三步反应,得到的三嗪封端的六吡咯啉具有显著的特点:(i)考虑到 28π 共轭体系,相对于三嗪单元的二吡咯啉的瞬时和位点选择性 Zn(II)金属化触发了平面到单扭转构象变化,从而导致 Hückel 反芳香到 Möbius 芳香的转变。尽管存在三脚架连接,但仍保留了平滑的扭转和有效的π重叠。(ii)锌上的乙酰氧配体和氨基配体的选择性和协同结合发生在不同的受限环境中,类似于金属酶中埋藏金属中心的底物识别。通过三嗪单元的单质子化来调节配体结合口袋的变构。(iii)使用手性氨基配体实现了分子扭转的大量手性诱导(对映体过量高达 77%,是迄今为止报道的 Möbius 化合物中的最高值),这与圆二色性中的强手性特征相关。这些结果为六吡咯啉的分子识别提供了前所未有的见解,为传感和催化开辟了创新的 Möbius 型分子主体的途径。