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An approach to 'escape from flatland': chemo-enzymatic synthesis and biological profiling of a library of bridged bicyclic compounds

机译:一种“摆脱平地”的方法:化学酶促合成和桥联双环化合物文库的生物学分析

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摘要

A major reason for the tow success rate in current drug development through chemical synthesis has been ascribed to the large fraction of quasi planar candidate molecules. Therefore, an 'escape from flatland" strategy has been recommended for the generation of bioactive chemical entities. In a first attempt to test this recommendation, we synthesized a small collection of bridged bicyclic compounds possessing a rigid spherical core structure by combining a group of cyclic dienes with a collection of dienophiles. We started from planar biphenyl analogues and, by enzymatic dioxygenation, transformed them into hydroxylated diene structures. Using a small library of newly synthesized dienophiles, the dienes were converted into bridged bicycles via the Diels-Alder reaction. The resulting collection of 78 structures was first tested for bioactivity in a generic assay based on interference with the proliferation of mammalian cells. A more mechanism-targeted bioactivity profiling method, exploiting cellular impedance monitoring, was subsequently used to obtain suggestions for the mode of action exerted by those compounds that were the most active in the proliferation assay. Proteasome inhibition could be confirmed for 8 of a series of 9 respective candidates. Whilst 7 of these molecules showed relatively weak interference with proteasome activity, one candidate exerted a moderate but distinct inhibition. This result appears remarkable in view of the small size of the compound library, which was synthesized following a few basic considerations. It encourages the application of diverse synthetic approaches to further investigate the role of spherical shape for the success of compound libraries.
机译:当前通过化学合成开发药物的拖曳成功率的主要原因归因于大部分准平面候选分子。因此,建议采用“逃离平地”的策略来产生生物活性化学实体,为了测试该建议,我们首先结合了一组环状分子,合成了一小部分具有刚性球形核结构的桥联双环化合物我们从平面联苯类似物开始,通过酶联双氧合作用将其转化为羟基化的二烯结构,然后使用Diels-Alder反应,利用新合成的小二烯的小库将其转化为桥连自行车。首先根据干扰哺乳动物细胞增殖的通用分析方法对由此形成的78个结构的集合进行生物活性测试,然后采用一种更具机制针对性的生物活性分析方法,即利用细胞阻抗监测,以寻求有关其作用方式的建议那些在增殖物中最活跃的化合物化分析。可以确认9种候选物中的8种对蛋白酶体的抑制作用。虽然这些分子中有7个对蛋白酶体的活性显示出相对较弱的干扰,但一个候选分子却具有中等但明显的抑制作用。考虑到化合物库的小尺寸,该结果是显着的,该化合物库是根据一些基本考虑而合成的。它鼓励应用各种合成方法来进一步研究球形对于化合物文库成功的作用。

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  • 来源
    《Organic & biomolecular chemistry》 |2016年第15期|3821-3837|共17页
  • 作者单位

    Department of Chemical Biology, Helmholtz Centre for Infection Research, D-38124 Braunschweig, Germany;

    Department of Chemical Biology, Helmholtz Centre for Infection Research, D-38124 Braunschweig, Germany;

    Department of Chemical Biology, Helmholtz Centre for Infection Research, D-38124 Braunschweig, Germany;

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