Key Laboratory of Plant Resources and Chemistry in Arid Regions, Xinjiang Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, 40-1 South Beijing Rd, Urumqi, 830011, PR China; Institute of the Chemistry of Plant Substances, Academy of Sciences of Uzbekistan, Mirzo Ulugbek Str. 77, Tashkent, 100170, Uzbekistan.
Key Laboratory of Plant Resources and Chemistry in Arid Regions, Xinjiang Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, 40-1 South Beijing Rd, Urumqi, 830011, PR China; University of Chinese Academy of Sciences, 19 A Yuquan Rd, Beijing, 100049, PR China.
Eur J Med Chem. 2017 Nov 10;140:465-493. doi: 10.1016/j.ejmech.2017.09.039. Epub 2017 Sep 21.
2-Aminothiophenes are important five-membered heterocyclic building blocks in organic synthesis, and the chemistry of these small molecules is still developing based on the discovery of cyclization by Gewald. Another attractive feature of 2-aminothiophene scaffolds is their ability to act as synthons for the synthesis of biological active thiophene-containing heterocycles, conjugates and hybrids. Currently, the biological actions of 2-aminothiophenes or their 2-N-substituted analogues are still being investigated because of their various mechanisms of action (e.g., pharmacophore and pharmacokinetic properties). Likewise, the 2-aminothiophene family is used as diverse promising selective inhibitors, receptors, and modulators in medicinal chemistry, and these compounds even exhibit effective pharmacological properties in the various clinical phases of appropriate diseases. In this review, major biological and pharmacological reports on 2-aminothiophenes and related compounds have been highlighted; most perspective drug-candidate hits were selected for discussion and described, along with additional synthetic pathways. In addition, we focused on the literature dedicated to 2-aminothiophenes and 2-N-substituted derivatives, which have been published from 2010 to 2017.
2-氨基噻吩是有机合成中重要的五元杂环砌块,基于 Gewald 环化反应的发现,这些小分子的化学仍在不断发展。2-氨基噻吩骨架的另一个吸引人的特点是它们能够作为合成生物活性含噻吩杂环、共轭物和杂化物的前体。目前,由于其各种作用机制(例如药效团和药代动力学特性),2-氨基噻吩或其 2-N-取代类似物的生物学作用仍在研究中。同样,2-氨基噻吩家族在药物化学中被用作各种有前途的选择性抑制剂、受体和调节剂,这些化合物甚至在适当疾病的各个临床阶段表现出有效的药理特性。在这篇综述中,突出了关于 2-氨基噻吩和相关化合物的主要生物学和药理学报告;选择了大多数有前景的候选药物进行讨论和描述,并提供了其他合成途径。此外,我们专注于 2010 年至 2017 年发表的关于 2-氨基噻吩和 2-N-取代衍生物的文献。