Bokale-Shivale Suvarna, Amin Mohammad A, Sawant Rajiv T, Stevens Marc Y, Turanli Lewend, Hallberg Adam, Waghmode Suresh B, Odell Luke R
Department of Medicinal Chemistry, Uppsala Biomedical Center, Uppsala University P. O. Box 574 SE-751 23 Uppsala Sweden
Department of Chemistry, Savitribai Phule Pune University (formerly Pune University) Ganeshkhind Pune 411 007 India.
RSC Adv. 2020 Dec 23;11(1):349-353. doi: 10.1039/d0ra10142g. eCollection 2020 Dec 21.
The 3,4-dihydroquinazolinone (DHQ) moiety is a highly valued scaffold in medicinal chemistry due to the vast number of biologically-active compounds based on this core structure. Current synthetic methods to access these compounds are limited in terms of diversity and flexibility and often require the use of toxic reagents or expensive transition-metal catalysts. Herein, we describe the discovery and development of a novel cascade cyclization/Leuckart-Wallach type strategy to prepare substituted DHQs in a modular and efficient process using readily-available starting materials. Notably, the reaction requires only the addition of formic acid or acetic acid/formic acid and produces HO, CO and methanol as the sole reaction byproducts. Overall, the reaction provides an attractive entry point into this important class of compounds and could even be extended to isotopic labelling the site-selective incorporation of a deuterium atom.
3,4-二氢喹唑啉酮(DHQ)部分是药物化学中一个备受重视的骨架,因为基于这种核心结构有大量具有生物活性的化合物。目前用于制备这些化合物的合成方法在多样性和灵活性方面存在局限性,并且常常需要使用有毒试剂或昂贵的过渡金属催化剂。在此,我们描述了一种新颖的级联环化/Leuckart-Wallach型策略的发现与开发,该策略使用易得的起始原料,以模块化且高效的过程制备取代的DHQ。值得注意的是,该反应仅需加入甲酸或乙酸/甲酸,并且仅产生水、一氧化碳和甲醇作为唯一的反应副产物。总体而言,该反应为这类重要化合物提供了一个有吸引力的切入点,甚至可以扩展到同位素标记(氘原子的位点选择性掺入)。