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Chemical Syntheses and Chemical Biology of Carboxyl Polyether Ionophores: Recent Highlights

机译:羧基聚醚离子团的化学合成和化学生物学:最近的亮点

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摘要

A central goal of chemical biology is to develop molecular probes that enable fundamental studies of cellular systems. In the hierarchy of bioactive molecules, the so-called ionophore class occupies an unflattering position in the lower branches, with typical labels being "non-specific" and "toxic". In fact, the mere possibility that a candidate molecule possesses "ionophore activity" typically prompts its removal from further studies; ionophores-from a chemical genetics perspective-are molecular outlaws. In stark contrast to this overall poor reputation of ionophores, synthetic chemistry owes some of its most amazing achievements to studies of ionophore natural products, in particular the carboxyl polyethers renowned for their intricate molecular structures. These compounds have for decades been academic battlegrounds where new synthetic methodology is tested and retrosynthetic tactics perfected. Herein, we review the most exciting recent advances in carboxyl polyether ionophore (CPI) synthesis and in addition discuss the burgeoning field of CPI chemical biology.
机译:化学生物学的核心目标是开发能够实现对细胞系统的基本研究的分子探针。在生物活性分子的层次中,所谓的离子载体阶级占据了下部分支中的不普通位置,典型标记为“非特异性”和“毒性”。事实上,候选分子具有“离子载体活性”的可能性通常促使其从进一步的研究中移除;离子群 - 来自化学遗传学的观点 - 是分子法不适。在鲜明对比离子群体的整体差异鲜明对比中,综合化学归因于对离子载体天然产物的研究,特别是用于其复杂的分子结构的羧基聚醚的研究。这些化合物几十年来是学术战场,其中测试了新的合成方法,并完善了逆转策略。在此,我们审查了羧基聚醚离子载体(CPI)合成中最激动的最新进展,并讨论了CPI化学生物学的蓬勃发展领域。

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