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Mechanistic studies of an L-proline-catalyzed pyridazine formation involving a Diels–Alder reaction with inverse electron demand

机译:涉及Diels-Alder反应和反电子需求的L-脯氨酸催化哒嗪形成的机理研究

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摘要

The mechanism of an L-proline-catalyzed pyridazine formation from acetone and aryl-substituted tetrazines via a Diels–Alder reaction with inverse electron demand has been studied with NMR and with electrospray ionization mass spectrometry. A catalytic cycle with three intermediates has been proposed. An enamine derived from L-proline and acetone acts as an electron-rich dienophile in a [4 + 2] cycloaddition with the electron-poor tetrazine forming a tetraazabicyclo[2.2.2]octadiene derivative which then eliminates N2 in a retro-Diels–Alder reaction to yield a 4,5-dihydropyridazine species. The reaction was studied in three variants: unmodified, with a charge-tagged substrate, and with a charge-tagged proline catalyst. The charge-tagging technique strongly increases the ESI response of the respective species and therefore enables to capture otherwise undetected reaction components. With the first two reaction variants, only small intensities of intermediates were found, but the temporal progress of reactants and products could be monitored very well. In experiments with the charge-tagged L-proline-derived catalyst, all three intermediates of the proposed catalytic cycle were detected and characterized by collision-induced dissociation (CID) experiments. Some of the CID pathways of intermediates mimic single steps of the proposed catalytic cycle in the gas phase. Thus, the charge-tagged catalyst proved one more time its superior effectiveness for the detection and study of reactive intermediates at low concentrations.
机译:利用NMR和电喷雾电离质谱研究了通过Diels-Alder反应与逆电子需求从丙酮和芳基取代的四嗪形成L-脯氨酸催化的哒嗪的机理。已经提出了具有三种中间体的催化循环。衍生自L-脯氨酸和丙酮的烯胺在[4 + 2]环加成反应中作为富电子的亲二烯体,与贫电子的四嗪形成四氮杂双环[2.2.2]辛二烯衍生物,然后消除逆Diels中的N2 – der木反应产生4,5-二氢哒嗪类。在三个变体中研究了该反应:未修饰的,带电荷标签的底物和带电荷标签的脯氨酸催化剂。电荷标记技术极大地提高了各个物质的ESI响应,因此能够捕获原本无法检测到的反应成分。对于前两个反应变体,仅发现了少量的中间体,但是可以很好地监控反应物和产物的时间进程。在使用带电荷标签的L-脯氨酸衍生的催化剂的实验中,通过碰撞诱导解离(CID)实验检测了拟议的催化循环的所有三个中间体并对其进行了表征。中间体的某些CID途径模拟了拟议的气相催化循环的单个步骤。因此,带电荷的催化剂再一次证明了其在低浓度下检测和研究反应性中间体的卓越功效。

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