Identification and study of new NF-κB-inducing kinase ligands derived from the imidazolone scaffold.

IF 4.3 3区 医学 Q2 CHEMISTRY, MEDICINAL
Francisco Maqueda-Zelaya, Lara Valiño-Rivas, Ana Milián, Sara Gutiérrez, José Luis Aceña, Javier Garcia-Marin, Mª Dolores Sánchez-Niño, Juan J Vaquero, Alberto Ortiz
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引用次数: 0

Abstract

Chronic kidney disease (CKD) is a growing health concern, projected to be a major cause of death by 2040, due to an increasing risk of acute kidney injury (AKI). Systems biology-derived data suggest that the unmet need for an orally available drug to treat AKI and improve CKD outcomes may be addressed by targeting kidney inflammation and, specifically, nuclear factor κB-inducing kinase (NIK), a key signaling molecule that activates the noncanonical nuclear factor κB (NF-κB) pathway. We have prepared and identified a small family of imidazolone derivatives that bind NIK and inhibit the noncanonical NF-κB activation pathway. The introduction of heterocyclic substituents in position 2 of the imidazolone core provides compounds with affinity against human NIK. Three candidates, with best affinity profile, were tested in phenotypic experiments of noncanonical NF-κB activation, confirming that the derivative bearing the 4-pyridyl ring can inhibit the processing of NFκB p100 to NFkB2 p52, which is NIK-dependent in cultured kidney tubular cells. Finally, exhaustive docking calculations combined with molecular dynamics studies led us to propose a theoretical binding mode and rationalize affinity measures, in which the aminopyridine motif is a key anchoring point to the hinge region thanks to several hydrogen bonds and the interaction of heterocyclic rings in position 2 with Ser476 and Lys482. Our result will pave the way for the development of potential drug candidates targeting NIK in the context of CKD.

鉴定和研究源自咪唑啉酮支架的新型 NF-κB 诱导激酶配体。
慢性肾脏病(CKD)是一个日益令人担忧的健康问题,预计到 2040 年,由于急性肾损伤(AKI)的风险不断增加,慢性肾脏病将成为导致死亡的一个主要原因。系统生物学数据表明,针对肾脏炎症,特别是核因子κB诱导激酶(NIK)--一种激活非典型核因子κB(NF-κB)通路的关键信号分子--的口服药物,可以满足治疗AKI和改善CKD预后的未满足需求。我们制备并鉴定了一小系列咪唑啉酮衍生物,它们能结合 NIK 并抑制非典型 NF-κB 激活途径。在咪唑啉酮核心的第 2 位引入杂环取代基,可使化合物对人类 NIK 具有亲和力。在非正则 NF-κB 激活的表型实验中测试了亲和性最好的三种候选化合物,证实含有 4-吡啶基环的衍生物可以抑制 NFκB p100 到 NFkB2 p52 的加工,而这在培养的肾小管细胞中是依赖于 NIK 的。最后,通过详尽的对接计算和分子动力学研究,我们提出了一种理论上的结合模式,并合理地解释了亲和力的测量方法。在这种模式中,由于几个氢键的作用以及第 2 位杂环与 Ser476 和 Lys482 的相互作用,氨基吡啶基团是铰链区的一个关键锚定点。我们的研究结果将为开发针对 CKD 的 NIK 候选药物铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Archiv der Pharmazie
Archiv der Pharmazie 医学-化学综合
CiteScore
7.90
自引率
5.90%
发文量
176
审稿时长
3.0 months
期刊介绍: Archiv der Pharmazie - Chemistry in Life Sciences is an international journal devoted to research and development in all fields of pharmaceutical and medicinal chemistry. Emphasis is put on papers combining synthetic organic chemistry, structural biology, molecular modelling, bioorganic chemistry, natural products chemistry, biochemistry or analytical methods with pharmaceutical or medicinal aspects such as biological activity. The focus of this journal is put on original research papers, but other scientifically valuable contributions (e.g. reviews, minireviews, highlights, symposia contributions, discussions, and essays) are also welcome.
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