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首页> 外文期刊>Journal of Medicinal Chemistry >Diflunisal Analogues Stabilize the Native State of Transthyretin. Potent Inhibition of Amyloidogenesis
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Diflunisal Analogues Stabilize the Native State of Transthyretin. Potent Inhibition of Amyloidogenesis

机译:Diflunisal类似物稳定运甲状腺素蛋白的天然状态。抑制淀粉样蛋白生成

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摘要

Analogues of diflunisal, an FDA-approved nonsteroidal antiinflammatory drug (NSAID), were synthesized and evaluated as inhibitors of transthyretin (TTR) aggregation, including amyloid fibril formation. High inhibitory activity was observed for 26 of the compounds. Of those, eight exhibited excellent binding selectivity for TTR in human plasma (binding stoichiometry >0.50, with a theoretical maximum of 2.0 inhibitors bound per TTR tetramer). Biophysical studies reveal that these eight inhibitors dramatically slow tetramer dissociation (the rate-determining step of amyloidogenesis) over a duration of 168 h. This appears to be achieved through ground-state stabilization, which raises the kinetic barrier for tetramer dissociation. Kinetic stabilization of WT TTR by these eight inhibitors is further substantiated by the decreasing rate of amyloid fibril formation as a function of increasing inhibitor concentration (pH 4.4). X-ray cocrystal structures of the TTR·18_2 and TTR·20_2 complexes reveal that 18 and 20 bind in opposite orientations in the TTR binding site. Moving the fluorines from the meta positions in 18 to the ortho positions in 20 reverses the binding orientation, allowing the hydrophilic aromatic ring of 20 to orient in the outer binding pocket where the carboxylate engages in favorable electrostatic interactions with the ε-ammonium groups of Lys 15 and 15'. The hydrophilic aryl ring of 18 occupies the inner binding pocket, with the carboxylate positioned to hydrogen bond to the serine 117 and 117' residues. Diflunisal itself appears to occupy both orientations based on the electron density in the TTR·1_2 structure. Structure-activity relationships reveal that para-carboxylate substitution on the hydrophilic ring and dihalogen substitution on the hydrophobic ring afford the most active TTR amyloid inhibitors.
机译:合成了FDA批准的非甾体类抗炎药diflunisal的类似物,并将其评估为转甲状腺素蛋白(TTR)聚集的抑制剂,包括淀粉样蛋白原纤维形成。对26种化合物观察到高抑制活性。在这些中,有八种在人血浆中表现出对TTR极好的结合选择性(结合化学计量> 0.50,每个TTR四聚体理论上最多结合有2.0种抑制剂)。生物物理研究表明,这八种抑制剂可在168小时的时间内显着减慢四聚体的解离(淀粉样蛋白生成的速率决定步骤)。这似乎是通过基态稳定化来实现的,这提高了四聚体解离的动力学势垒。这八种抑制剂对WT TTR的动力学稳定作用进一步得到证实,淀粉样蛋白原纤维形成的速率随抑制剂浓度(pH 4.4)的增加而降低。 TTR·18_2和TTR·20_2配合物的X射线共晶体结构表明18和20在TTR结合位点以相反的方向结合。将氟从18的间位移至20的邻位会逆转结合方向,使20的亲水性芳环在外部结合袋中取向,其中羧酸盐与Lys的ε-铵基团发生有利的静电相互作用15和15'。 18的亲水性芳基环占据内部结合袋,并且羧酸盐定位成与丝氨酸117和117'残基氢键键合。基于TTR·1_2结构中的电子密度,丁香醛本身似乎占据了两个方向。结构-活性关系表明,亲水环上的对羧酸酯取代和疏水环上的二卤素取代提供了活性最高的TTR淀粉样蛋白抑制剂。

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