Li Wanfang, Lu Bin, Zhang Zhaoguo
School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, 200240, P. R. China.
Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 345 Lingling Road, Shanghai, 200032, P. R. China.
Chem Rec. 2016 Dec;16(6):2506-2520. doi: 10.1002/tcr.201600064. Epub 2016 Jul 7.
Around 2006, our group launched a long-term project on the asymmetric hydrogenation of functionalized ketones by using ruthenium complexes with SunPhos ligands. In this review, we recount the burgeoning and blossoming of this project. At the outset, we attempted some benchmark reactions with an array of monofunctionalized ketones, including α- and β-keto esters/amides, β-keto sulfones, phosphonates, and α-hydroxy ketones. For α-keto esters and amides, we discovered that CeCl •7H O was an efficient additive for both activity and enantioselectivity. The element iodine was found to be a valid additive for β-keto sulfones. β,γ-Unsaturated α-keto acids and esters were also hydrogenated to the saturated chiral blocks with good enantioselectivity and a high turnover number. For the α-substituted β-keto esters and phosphonates, exceptionally high stereoselectivity was achieved through dynamic kinetic resolution. Based on these incipient successes, we diverted to bifunctionalized ketone substrates, such as γ-heteroatom-substituted β-keto esters and δ-ketal-β-keto esters. For the δ-ketal-β-keto esters, CaCO was added to stabilize the δ-ketal groups, which ensured the formation of δ-ketal-β-hydroxy esters in good yields and high ee values. More interestingly, γ-halo-γ,δ-unsaturated-β-keto esters were hydrogenated to afford highly enantiopure chiral allyl alcohols under mild and neutral conditions. The distance effect of the directing groups was investigated in β-, γ-, and δ-keto amides; the last two were hydrogenated with the Ru-SunPhos-diamine system. To implement the pinpoint recognition of two carbonyl groups in similar chemical propinquity, we compared the reaction rates of different β-keto acid derivatives. THF was found to be a helpful coordinative solvent to control the chemo- and enantioselectivity for more challenging polycarbonyl substrates, such as 3-oxo glutaric acid derivatives, β,δ-diketo carboxamides, and γ-heteroatom-substituted β-diketones. The effects of solvents and heteroatoms in these substrates were also studied. Applications of these hydrogenation reactions were also exemplified by the employment of the products for important pharmaceutical syntheses.
2006年左右,我们团队启动了一个长期项目,利用钌配合物与SunPhos配体对官能化酮进行不对称氢化反应。在这篇综述中,我们讲述了这个项目的兴起与发展。一开始,我们尝试了一系列单官能化酮的基准反应,包括α-和β-酮酯/酰胺、β-酮砜、膦酸酯和α-羟基酮。对于α-酮酯和酰胺,我们发现CeCl₃•7H₂O是提高活性和对映选择性的有效添加剂。元素碘被发现是β-酮砜的有效添加剂。β,γ-不饱和α-酮酸和酯也能被氢化为饱和手性砌块,具有良好的对映选择性和高转化数。对于α-取代的β-酮酯和膦酸酯,通过动态动力学拆分实现了极高的立体选择性。基于这些初步成功,我们转向了双官能化酮底物,如γ-杂原子取代的β-酮酯和δ-缩酮-β-酮酯。对于δ-缩酮-β-酮酯,添加CaCO₃以稳定δ-缩酮基团,这确保了以良好的产率和高对映体过量值形成δ-缩酮-β-羟基酯。更有趣的是,γ-卤代-γ,δ-不饱和-β-酮酯在温和中性条件下被氢化为高对映体纯的手性烯丙醇。在β-、γ-和δ-酮酰胺中研究了导向基团的距离效应;后两者用Ru-SunPhos-二胺体系进行氢化。为了实现对化学距离相近的两个羰基的精准识别,我们比较了不同β-酮酸衍生物的反应速率。发现四氢呋喃是一种有用的配位溶剂,可控制更具挑战性的多羰基底物(如3-氧代戊二酸衍生物、β,δ-二酮羧酰胺和γ-杂原子取代的β-二酮)的化学选择性和对映选择性。还研究了这些底物中溶剂和杂原子的影响。这些氢化反应的应用也通过将产物用于重要药物合成得以例证。