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Proline bulky substituents consecutively act as steric hindrances and directing groups in a Michael/Conia-ene cascade reaction under synergistic catalysis

机译:在协同催化下脯氨酸庞大的取代基在迈克尔/卡尼亚-烯级联反应中连续充当位阻和导向基团

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摘要

In this study, we report a highly stereoselective and versatile synthesis of spiro pyrazolones, promising motifs that are being employed as pharmacophores. The new synthetic strategy merges organocatalysis and metal catalysis to create a synergistic catalysis using proline derivatives and Pd catalysts. This protocol is suitable for late-stage functionalization, which is very important in drug discovery. Additionally, a thorough computational study proved to be very useful to elucidate the function of the different catalysts along the reaction, showing a peculiar feature: the –CPh2OSiMe3 group of the proline catalyst switches its role during the reaction. In the initial Michael reaction, this group plays its commonly-assumed role of bulky blocking group, but the same group generates π–Pd interactions and acts as a directing group in the subsequent Pd-catalyzed Conia-ene reaction. This finding might be very relevant especially for processes with many steps, such as cascade reactions, in which functional groups are assumed to play the same role during all reaction steps.
机译:在这项研究中,我们报告了螺吡唑啉酮的高度立体选择性和通用性合成,有希望的基序被用作药效基团。新的合成策略结合了有机催化和金属催化,从而利用脯氨酸衍生物和Pd催化剂产生了协同催化作用。该协议适用于后期功能化,这在药物发现中非常重要。此外,事实证明,彻底的计算研究对于阐明不同催化剂在反应过程中的功能非常有用,它具有独特的功能:脯氨酸催化剂的–CPh2OSiMe3基团在反应过程中会改变其作用。在最初的迈克尔反应中,该基团发挥其通常假定的庞大阻滞基团的作用,但同一基团产生π–Pd相互作用,并在随后的Pd催化的Conia-ene反应中充当导向基团。这一发现尤其与具有许多步骤的过程(例如级联反应)非常相关,在该过程中,假定官能团在所有反应步骤中都起着相同的作用。

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