Shaaban Saad, Abdel-Wahab Bakr F
Department of Chemistry, Faculty of Science, Mansoura University, Mansoura, 23768, Egypt.
Applied Organic Chemistry Department, National Research Centre, Dokki, Giza, 12622, Egypt.
Mol Divers. 2016 Feb;20(1):233-54. doi: 10.1007/s11030-015-9602-6. Epub 2015 May 28.
The Groebke-Blackburn-Bienaymé reaction (GBBR) is used for the one-pot synthesis of therapeutically relevant fused imidazoles bridgehead nitrogen heterocyclic compounds from readily available aldehyde, isocyanide and amidine building blocks. The reaction is driven by a wide range of catalysts and can be performed either under solvent or solvent-free conditions, or under microwave irradiation as heat source. The GBBR products can be used for the synthesis of a variety of more complex scaffolds via postmodification reactions. These include cyclization and nucleophilic substitution as well as further MCRs. The GBBR reaction has seen diverse applications in combinatorial and medicinal chemistry and its products are of great use in drug discovery. In this review, we summarize the efforts of the chemistry community in the progress and applications of GBBR since 1998. This review also includes some biological profiles and synthetic scopes of GBBR products. The component variations, postmodifications and secondary transformations will also be discussed throughout this review.
格罗布克-布莱克本-比纳梅反应(GBBR)用于从易得的醛、异腈和脒构建块一锅法合成具有治疗意义的稠合咪唑桥头氮杂环化合物。该反应由多种催化剂驱动,可在有溶剂或无溶剂条件下进行,也可在微波辐射作为热源的条件下进行。GBBR产物可通过后修饰反应用于合成各种更复杂的骨架。这些反应包括环化、亲核取代以及进一步的多组分反应(MCRs)。GBBR反应在组合化学和药物化学中有着广泛的应用,其产物在药物发现中具有重要用途。在本综述中,我们总结了自1998年以来化学界在GBBR的进展和应用方面所做的努力。本综述还包括GBBR产物的一些生物学特性和合成范围。在本综述中还将讨论组分变化、后修饰和二次转化。