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Image-Guided Synthesis Reveals Potent Blood-BrainBarrier Permeable Histone Deacetylase Inhibitors

机译:图像引导的合成揭示了强大的血脑屏障屏障通透性组蛋白脱乙酰基酶抑制剂

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摘要

Recent studies have revealed that several histone deacetylase (HDAC) inhibitors, which are used to study/treat brain diseases, show low blood-brain barrier (BBB) penetration. In addition to low HDAC potency and selectivity observed, poor brain penetrance may account for the high doses needed to achieve therapeutic efficacy. Here we report the development and evaluation of highly potent and blood-brain barrier permeable HDAC inhibitors for CNS applications based on an image-guided approach involving the parallel synthesis and radiolabeling of a series of compounds based on the benzamide HDAC inhibitor, MS-275 as a template. BBB penetration was optimized by rapid carbon-11 labeling and PET imaging in the baboon model and using the imaging derived data on BBB penetration from each compound to feed back into the design process. A total of 17 compounds were evaluated, revealing molecules with both high binding affinity and BBB permeability. A key element conferring BBB penetration in this benzamide series was a basic benzylic amine. These derivatives exhibited 1–100 nM inhibitory activity againstrecombinant human HDAC1 and HDAC2. Three of the carbon-11 labeledaminomethyl benzamide derivatives showed high BBB penetration (∼0.015%ID/cc)and regional binding heterogeneity in the brain (high in thalamusand cerebellum). Taken together this approach has afforded a strategyand a predictive model for developing highly potent and BBB permeableHDAC inhibitors for CNS applications and for the discovery of novelcandidate molecules for small molecule probes and drugs.
机译:最近的研究表明,几种用于研究/治疗脑部疾病的组蛋白脱乙酰基酶(HDAC)抑制剂显示血脑屏障(BBB)渗透率低。除了观察到的低HDAC效能和选择性外,较差的脑渗透率还可能是达到治疗效果所需的高剂量。在这里,我们报告基于图像引导方法的中枢神经系统应用的高效和血脑屏障可渗透性HDAC抑制剂的开发和评估,该方法涉及基于苯甲酰胺HDAC抑制剂MS-275的一系列化合物的平行合成和放射性标记。模板。通过在狒狒模型中进行快速碳11标记和PET成像,并使用从每种化合物中获得的有关BBB渗透的图像数据,将其反馈到设计过程中来优化BBB渗透。总共评估了17种化合物,揭示了具有高结合亲和力和BBB渗透性的分子。苯甲酰胺系列中赋予BBB渗透能力的关键元素是碱性苄胺。这些衍生物表现出1-100 nM的抑制活性重组人HDAC1和HDAC2。碳11标有3个氨甲基苯甲酰胺衍生物表现出较高的BBB渗透率(〜0.015%ID / cc)和大脑中区域结合异质性(丘脑高度和小脑)。总之,这种方法提供了一种策略和开发高效且具有BBB渗透性的预测模型HDAC抑制剂,用于CNS应用和发现新型小分子探针和药物的候选分子。

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