Discovery of selective Orai channel blockers bearing an indazole or a pyrazole scaffold

IF 6 2区 医学 Q1 CHEMISTRY, MEDICINAL
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Abstract

The calcium release activated calcium (CRAC) channel is highly expressed in T lymphocytes and plays a critical role in regulating T cell proliferation and functions including activation of the transcription factor nuclear factor of activated T cells (NFAT), cytokine production and cytotoxicity. The CRAC channel consists of the Orai pore subunit and STIM (stromal interacting molecule) endoplasmic reticulum calcium sensor. Loss of CRAC channel mediated calcium signaling has been identified as an underlying cause of severe combined immunodeficiency (SCID), leading to drastically weakened immunity against infections. Gain-of-function mutations in Orai and STIM have been associated with tubular aggregated myopathy (TAM), a skeletal muscle disease. While a number of small molecules have shown activity in inhibiting the CRAC signaling pathway, the usefulness of those tool compounds is limited by their off-target activity against TRPM4 and TRPM7 ion channels, high lipophilicity, and a lack of understanding of their mechanism of action. We report structure-activity relationship (SAR) studies that resulted in the characterization of compound 4k [1-(cyclopropylmethyl)-N-(3-fluoropyridin-4-yl)-1H-indazole-3-carboxamie] as a fast onset, reversible, and selective CRAC channel blocker. 4k fully blocked the CRAC current (IC50: 4.9 μM) and the nuclear translocation of NFAT at 30 and 10 μM, respectively, without affecting the electrophysiological function of TRPM4 and TRPM7 channels. Computational modeling appears to support its direction binding to Orai proteins that form the transmembrane CRACchannel.

Abstract Image

发现带有吲唑或吡唑支架的选择性 Orai 通道阻断剂
钙释放激活钙(CRAC)通道在 T 淋巴细胞中高度表达,在调节 T 细胞增殖和功能(包括激活转录因子活化 T 细胞核因子(NFAT)、细胞因子产生和细胞毒性)方面起着关键作用。CRAC 通道由 Orai 孔亚基和 STIM(基质相互作用分子)内质网钙传感器组成。CRAC 通道介导的钙信号丢失已被确定为严重联合免疫缺陷症(SCID)的根本原因,会导致免疫力急剧下降,无法抵御感染。Orai 和 STIM 的功能增益突变与骨骼肌疾病管状聚集性肌病(TAM)有关。虽然一些小分子化合物在抑制 CRAC 信号通路方面显示出了活性,但由于它们对 TRPM4 和 TRPM7 离子通道的脱靶活性、高亲脂性以及缺乏对其作用机制的了解,这些工具化合物的实用性受到了限制。我们报告了结构-活性关系(SAR)研究,研究结果表明化合物 4k [1-(环丙基甲基)-N-(3-氟吡啶-4-基)-1H-吲唑-3-甲酰胺] 是一种起效快、可逆且具有选择性的 CRAC 通道阻断剂。4k 可完全阻断 CRAC 电流(IC50:4.9 μM),并分别在 30 μM 和 10 μM 时阻断 NFAT 的核转位,而不影响 TRPM4 和 TRPM7 通道的电生理功能。计算模型似乎支持其与形成跨膜 CRAC 通道的 Orai 蛋白的定向结合。
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来源期刊
CiteScore
11.70
自引率
9.00%
发文量
863
审稿时长
29 days
期刊介绍: The European Journal of Medicinal Chemistry is a global journal that publishes studies on all aspects of medicinal chemistry. It provides a medium for publication of original papers and also welcomes critical review papers. A typical paper would report on the organic synthesis, characterization and pharmacological evaluation of compounds. Other topics of interest are drug design, QSAR, molecular modeling, drug-receptor interactions, molecular aspects of drug metabolism, prodrug synthesis and drug targeting. The journal expects manuscripts to present the rational for a study, provide insight into the design of compounds or understanding of mechanism, or clarify the targets.
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