Department of Chemistry, South University of Science and Technology of China , Shenzhen 518055, China.
Acc Chem Res. 2018 Feb 20;51(2):534-547. doi: 10.1021/acs.accounts.7b00602. Epub 2018 Feb 8.
Axially chiral compounds have received much attention from chemists because of their widespread appearance in natural products, biologically active compounds, and useful chiral ligands in asymmetric catalysis. Because of the importance of this structural motif, the catalytic enantioselective construction of axially chiral scaffolds has been intensively investigated, and great progress has been accomplished. However, the majority of methodologies in this field focus on the use of metal catalysis, whereas approaches involving organocatalysis have started to emerge only recently. This Account describes certain advances in the organocatalytic asymmetric synthesis of axially chiral compounds involving the following strategies: kinetic resolution, desymmetrization, cyclization/addition, direct arylation, and so on. We began our investigation by developing a highly efficient strategy for the kinetic resolution of axially chiral BINAM derivatives involving a chiral Brønsted acid-catalyzed imine formation and transfer hydrogenation cascade process, thereby providing a convenient route to generate chiral BINAM derivatives in high yields with excellent enantioselectivities. The desymmetrization of 1-aryltriazodiones (ATADs) through an organocatalyzed tyrosine clicklike reaction wherein a nucleophile was added to the ATAD afforded an interesting type of axially chiral N-arylurazole in an excellent remote enantiocontrolled manner. We then focused on a direct construction strategy involving cyclization and the addition strategy given the inherent limitations of the kinetic resolution in terms of the chemical yield and the desymmetrization in terms of the substrate scope. By utilizing the catalytic enantioselective Paal-Knorr reaction, we disclosed a general and efficient cyclization method to access enantiomerically pure arylpyrroles. The direct heterocycle formation and the stepwise method, which was executed in a one-pot fashion containing enantioselective cyclization and subsequent aromatization, were successfully applied for the construction of diverse axially chiral arylquinazolinones catalyzed by chiral Brønsted acids. We discovered the asymmetric organocatalytic approach to construct axially chiral styrenes through the 1,4-addition of arylalkynals in good chemical yields and enantioselectivities. Such structural motifs are important precursors for further transformations into biologically active compounds and useful synthetic intermediates and may have potential applications in asymmetric syntheses as olefin ligands or organocatalysts. To further tackle this challenge, we accomplished the phosphoric acid-catalyzed enantioselective direct arylative reactions of 2-naphthol and 2-naphthamine with quinone derivatives to deliver efficient access to a class of axially chiral BINOL and NOBIN derivatives in good yields with excellent enantioselectivities under mild reaction conditions. Most importantly, we discovered that the azo group can effectively perform as a directing and activating group for organocatalytic formal aryl C-H functionalization via formal nucleophilic aromatic substitution of azobenzene derivatives. Thus, a wide range of axially chiral arylindoles were synthesized in good yields with excellent enantioselectivities. We anticipate that this strategy will foster the development of many other transformations and motivate a new enthusiasm for organocatalytic enantioselective aryl functionalization. Moreover, SPINOLs are fundamental synthetic precursors in the construction of other chiral organocatalysts and ligands. We have successfully developed a phosphoric acid-catalyzed enantioselective approach for SPINOLs. This approach is highly convergent and functional-group-tolerant for the efficient generation of SPINOLs with good results, thus delivering practical access to this privileged structure.
轴手性化合物因其在天然产物、生物活性化合物以及不对称催化中有用的手性配体中的广泛存在,受到了化学家的广泛关注。由于这种结构基序的重要性,人们一直在积极研究催化对映选择性构建轴手性支架的方法,并取得了很大的进展。然而,该领域的大多数方法都集中在使用金属催化上,而涉及有机催化的方法最近才开始出现。本综述描述了涉及以下策略的轴手性化合物的有机催化不对称合成的某些进展:动力学拆分、去对称化、环化/加成、直接芳基化等。我们通过开发一种高效的策略开始了我们的研究,该策略涉及手性 Brønsted 酸催化的亚胺形成和转移氢化级联过程中的轴手性 BINAM 衍生物的动力学拆分,从而为以高收率和优异对映选择性生成手性 BINAM 衍生物提供了一种方便的途径。通过有机催化的酪氨酸点击反应对 1-芳基三唑二酮(ATAD)进行去对称化,其中亲核试剂被添加到 ATAD 中,以极好的远程对映控制方式得到了一种有趣的轴手性 N-芳基尿嘧啶。然后,我们专注于直接构建策略,包括环化和加成策略,因为动力学拆分在化学收率方面以及去对称化在底物范围方面存在固有限制。通过利用催化对映选择性的 Paal-Knorr 反应,我们公开了一种通用且有效的环化方法,可获得对映纯芳基吡咯。直接杂环形成和分步方法,通过包含对映选择性环化和随后的芳构化的一锅法进行,成功地应用于手性 Brønsted 酸催化的各种轴手性芳基喹唑啉酮的构建。我们发现了通过芳基炔醛的 1,4-加成构建轴手性苯乙烯的不对称有机催化方法,具有良好的化学收率和对映选择性。这种结构基序是进一步转化为生物活性化合物和有用的合成中间体的重要前体,并且可能在手性合成中作为烯烃配体或有机催化剂具有潜在应用。为了进一步解决这一挑战,我们完成了磷酸催化的对映选择性直接芳基化反应,其中 2-萘酚和 2-萘胺与醌衍生物反应,在温和的反应条件下以良好的收率和优异的对映选择性有效地获得了一类轴手性 BINOL 和 NOBIN 衍生物。最重要的是,我们发现偶氮基可以有效地作为通过偶氮苯衍生物的形式亲核芳香取代进行有机催化的芳基 C-H 官能化的导向和活化基团。因此,以良好的收率和优异的对映选择性合成了大量的轴手性芳基吲哚。我们预计这种策略将促进许多其他转化的发展,并激发对有机催化对映选择性芳基官能化的新热情。此外,SPINOL 是构建其他手性有机催化剂和配体的基本合成前体。我们已经成功开发了一种磷酸催化的对映选择性 SPINOL 方法。该方法高度收敛且官能团耐受性好,可有效生成 SPINOL,结果良好,因此为这种特权结构提供了实际途径。