Centro de Investigación de la Facultad de Ciencias Químicas, Benemérita Universidad Autónoma de Puebla (BUAP), 14 Sur Esq. San Claudio, Col. San Manuel, 72570, Puebla, México.
Chemistry. 2020 Apr 9;26(21):4671-4676. doi: 10.1002/chem.201905262. Epub 2020 Feb 21.
Remote and multiple functionalization of piperidines without the use of transition-metal catalysts and elaborate directing groups is one of the major challenges in organic synthesis. Herein is reported an unprecedented two-step protocol that enables the multiple functionalization of piperidines to either 4-substituted or trans-3,4-disubstituted 2-piperidones. First, by exploiting the duality of TEMPO reactivity, which under oxidative and thermal conditions fluctuates between cationic and persistent-radical form, a novel multiple C(sp )-H oxidation of piperidines to α,β-unsaturated 2-piperidones was developed. Second, the intrinsic low reactivity of the unsaturated piperidones toward conjugated Grignard additions was overcome by using trimethylsilyl chloride (TMSCl) as Lewis acid. Subsequently, conjugated Grignard addition/electrophilic trapping protocol provided substituted 2-piperidone intermediates, some of which were then transformed into pharmaceutical alkaloids.
无过渡金属催化剂和复杂导向基团的哌啶的远程多官能化是有机合成中的主要挑战之一。本文报道了一种前所未有的两步法,能够对哌啶进行多官能化,得到 4-取代或反式 3,4-二取代 2-哌啶酮。首先,利用 TEMPO 反应性的双重性,在氧化和热条件下,TEMPO 在阳离子和持久自由基形式之间波动,开发了一种新颖的哌啶的多 C(sp 3 )-H 氧化为α,β-不饱和 2-哌啶酮的方法。其次,通过使用三甲基氯硅烷 (TMSCl) 作为路易斯酸,克服了不饱和哌啶酮对共轭格氏试剂加成反应的固有低反应性。随后,共轭格氏加成/亲电捕获反应提供取代的 2-哌啶酮中间体,其中一些中间体随后转化为药物生物碱。