ent-Verticilide B1 可抑制 Casq2-/- 小鼠的 2 型雷诺丁受体通道并抗心律失常。

IF 3.2 3区 医学 Q2 PHARMACOLOGY & PHARMACY
Aaron Gochman, Tri Q Do, Kyungsoo Kim, Jacob A Schwarz, Madelaine P Thorpe, Daniel J Blackwell, Paxton A Ritschel, Abigail N Smith, Robyn T Rebbeck, Wendell S Akers, Razvan L Cornea, Derek R Laver, Jeffrey N Johnston, Bjorn C Knollmann
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引用次数: 0

摘要

心脏雷诺丁受体(RyR2)的 Ca2+ 泄漏是心脏性猝死(SCD)的既定机制,Ca2+ 处理失调会导致室性心律失常。我们之前发现了 RyR2 选择性抑制剂 ent-(+)-verticilide(ent-1),它是一种 24 元环配体去肽,是天然产物(nat-(-)-verticilide)的对映体形式。在这里,我们在单个 RyR2 通道测定、[3H]雷诺丁结合测定以及 Casq2-/- 心肌细胞和小鼠(一种 SCD 基因靶向模型)中检测了其 18 元环状大小的寡聚体(ent-verticilide B1; ent-B1)。ent-B1以低微摩尔效力抑制RyR2单通道和[3H]雷诺丁结合,以亚微摩效力抑制Casq2-/心肌细胞中RyR2-介导的自发Ca2+释放。ent-B1是一种部分RyR2抑制剂,最大抑制效力低于50%。ent-B1在血浆中稳定,小鼠腹腔注射3毫克/千克ent-B1后,10分钟时血浆浓度峰值为1460纳克/毫升,半衰期为45分钟。3毫克/千克和30毫克/千克的ent-B1都能显著减少儿茶酚胺诱发的Casq2-/-小鼠室性心律失常。因此,我们发现了一种新型化学实体--ent-B1,它既保留了热门化合物的作用机制,又显示出治疗效果。这些发现加强了 RyR2 作为抗心律失常药物靶点的地位,并凸显了研究天然产物的镜像异构体以发现新疗法的潜力。意义声明 心脏雷诺丁受体(RyR2)是抗心律失常药物开发领域中一个尚未开发的靶点。我们在小鼠心脏性猝死模型中证实了 RyR2 是抗心律失常的靶点,并展示了第二种对映体天然产物的疗效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ent-Verticilide B1 Inhibits Type 2 Ryanodine Receptor Channels and is Antiarrhythmic in Casq2 -/- Mice.

Intracellular Ca2+ leak from cardiac ryanodine receptor (RyR2) is an established mechanism of sudden cardiac death (SCD), whereby dysregulated Ca2+ handling causes ventricular arrhythmias. We previously discovered the RyR2-selective inhibitor ent-(+)-verticilide (ent-1), a 24-membered cyclooligomeric depsipeptide that is the enantiomeric form of a natural product (nat-(-)-verticilide). Here, we examined its 18-membered ring-size oligomer (ent-verticilide B1; "ent-B1") in RyR2 single channel and [3H]ryanodine binding assays, and in Casq2 -/- cardiomyocytes and mice, a gene-targeted model of SCD. ent-B1 inhibited RyR2 single channels and RyR2-mediated spontaneous Ca2+ release in Casq2 -/- cardiomyocytes with sub-micromolar potency. ent-B1 was a partial RyR2 inhibitor, with maximal inhibitory efficacy of less than 50%. ent-B1 was stable in plasma, with a peak plasma concentration of 1460 ng/ml at 10 minutes and half-life of 45 minutes after intraperitoneal administration of 3 mg/kg in mice. In vivo, ent-B1 significantly reduced catecholamine-induced ventricular arrhythmias in Casq2 -/- mice in a dose-dependent manner. Hence, we have identified a novel chemical entity - ent-B1 - that preserves the mechanism of action of a hit compound and shows therapeutic efficacy. These findings strengthen RyR2 as an antiarrhythmic drug target and highlight the potential of investigating the mirror-image isomers of natural products to discover new therapeutics. SIGNIFICANCE STATEMENT: The cardiac ryanodine receptor (RyR2) is an untapped target in the stagnant field of antiarrhythmic drug development. We have confirmed RyR2 as an antiarrhythmic target in a mouse model of sudden cardiac death and shown the therapeutic efficacy of a second enantiomeric natural product.

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来源期刊
Molecular Pharmacology
Molecular Pharmacology 医学-药学
CiteScore
7.20
自引率
2.80%
发文量
50
审稿时长
3-6 weeks
期刊介绍: Molecular Pharmacology publishes findings derived from the application of innovative structural biology, biochemistry, biophysics, physiology, genetics, and molecular biology to basic pharmacological problems that provide mechanistic insights that are broadly important for the fields of pharmacology and toxicology. Relevant topics include: Molecular Signaling / Mechanism of Drug Action Chemical Biology / Drug Discovery Structure of Drug-Receptor Complex Systems Analysis of Drug Action Drug Transport / Metabolism
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