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Two chiral catalysts in action: insights into cooperativity and stereoselectivity in proline and cinchona-thiourea dual organocatalysis

机译:两种手性催化剂在起作用:脯氨酸和金鸡纳硫脲双有机催化中的协同性和立体选择性的见解

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摘要

Increasing use of two chiral catalysts in cooperative asymmetric catalysis in recent years raises some fundamental questions on chiral compatibility between the catalysts, modes of activation, and relative disposition of substrates within the chiral environment of the catalysts for effective asymmetric induction. We present molecular insights into a one-pot catalytic Michael reaction cascade between a dicarbonyl compound (7-oxo-7-phenylhept-5-enal) and nitrostyrene, catalyzed by two chiral organocatalysts (proline and cinchona-thiourea), leading to a densely functionalized tetra-substituted cyclohexane product. The density functional theory (SMD(toluene)/M06-2X/6-31G**) computations helped us identify the role of the organocatalytic catalytic dyad in providing a lower energy pathway. The covalent activation of the aldehydic end by (S)-proline results in an enamine, which then adds to the noncovalently activated nitrostyrene in the first Michael addition to give a nitronate anion. The configuration at two of the four chiral centers of the product gets fixed in this step whereas that of the remaining two is determined by intramolecular cyclization between the nitronate and the enone. Important mechanistic features such as (a) a lower energy pathway as compared to a proline-only route for the formation of the syn-enamine and its participation in the first Michael addition and (b) the origin of the preferred prochiral faces in the C–C bond formation are traced to the active involvement of the cinchona-thiourea catalyst in conjunction with proline in each step of the reaction. The true cooperative action by both the catalysts is identified as enabled by a network of hydrogen bonding, and π···π stacking between the aryl ring of the cinchona-thiourea catalyst as well as other noncovalent interactions between the catalysts themselves, and that between the catalysts and substrate.
机译:近年来,在合作不对称催化中越来越多地使用两种手性催化剂提出了一些基本问题,这些问题涉及催化剂之间的手性相容性,活化方式以及在催化剂的手性环境中底物的相对布置,以进行有效的不对称诱导。我们介绍分子内的见解,由两种手性有机催化剂(脯氨酸和金鸡纳硫脲)催化,在二羰基化合物(7-氧代-7-苯基庚基5-烯醛)和硝基苯乙烯之间进行一锅催化迈克尔反应级联反应功能化的四取代环己烷产物。密度泛函理论(SMD(甲苯)/ M06-2X / 6-31G **)计算帮助我们确定了有机催化催化二元化合物在提供较低能量途径中的作用。 (S)-脯氨酸对醛基末端的共价活化产生烯胺,然后在第一次迈克尔加成中将其加到非共价活化的硝基苯乙烯上,得到亚硝酸根阴离子。在该步骤中,产物的四个手性中心中的两个的构型被固定,而其余两个手性中心的构型则通过亚硝酸盐和烯酮之间的分子内环化来确定。重要的机械特征,例如(a)与仅脯氨酸的路线相比,形成同烯胺及其参与第一个Michael加成的能量路径较低,以及(b)C中优选的前手性面的起源-C键的形成可追溯到金鸡纳硫脲催化剂与脯氨酸在反应的每个步骤中的积极参与。两种催化剂的真正合作作用是通过氢键网络以及金鸡纳硫脲催化剂的芳环之间的π··π堆积以及催化剂自身之间以及与它们之间的其他非共价相互作用而实现的。催化剂和底物。

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