Molecular insights into the rescue mechanism of an HERG activator against severe LQT2 mutations.

IF 9 2区 医学 Q1 CELL BIOLOGY
Amit Kumawat, Elisa Tavazzani, Giovanni Lentini, Alessandro Trancuccio, Deni Kukavica, Amanda Oldani, Marco Denegri, Silvia G Priori, Carlo Camilloni
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引用次数: 0

Abstract

Background: Mutations in the HERG potassium channel are a major cause of long QT syndrome type 2 (LQT2), which can lead to sudden cardiac death. The HERG channel plays a critical role in the repolarization of the myocardial action potential, and loss-of-function mutations prolong cardiac repolarization.

Methods: In this study, we investigated the efficacy and underlying molecular mechanism of ICA-105574, an HERG activator, in shortening the duration of cardiac repolarization in severe LQT2 variants. We characterized the efficacy of ICA-105574 in vivo, using an animal model to assess its ability to shorten the QT interval and in vitro, in cellular models mimicking severe HERG channel mutations (A561V, G628S, and L779P) to evaluate its impact in enhancing IKr current. Additionally, molecular dynamics simulations were used to investigate the molecular mechanism of ICA-105574 action.

Results: In vivo, ICA-105574 significantly shortened the QT interval. LQT2 mutations drastically reduced IKr amplitude and suppressed tail currents in cellular models. ICA-105574 restored IKr in A561V and G628S. Finally, in silico data showed that ICA-105574 stabilizes a pattern of interactions similar to gain-of-function SQT1 mutations and can reverse the G628S modifications, through an allosteric network linking the binding site to the selectivity filter and the S5P turret helix, thereby restoring its K+ ion permeability.

Conclusions: Our results support the development of HERG activators like ICA-105574 as promising pharmacological molecules against some severe LQT2 mutations and suggest that molecular dynamics simulations can be used to test the ability of molecules to modulate HERG function in silico, paving the way for the rational design of new HERG activators.

HERG激活剂对严重LQT2突变的拯救机制的分子见解。
背景:HERG钾通道突变是2型长QT综合征(LQT2)的主要原因,可导致心源性猝死。HERG通道在心肌动作电位的复极中起着关键作用,而功能丧失突变延长了心脏复极。方法:在本研究中,我们研究了HERG激活剂ICA-105574在缩短严重LQT2变异体心脏复极持续时间中的作用及其潜在的分子机制。我们在体内用动物模型评估了ICA-105574缩短QT间期的能力,在体外用模拟严重HERG通道突变(A561V、G628S和L779P)的细胞模型评估了ICA-105574增强IKr电流的作用。此外,通过分子动力学模拟研究了ICA-105574作用的分子机制。结果:在体内,ICA-105574可显著缩短QT间期。在细胞模型中,LQT2突变显著降低IKr振幅并抑制尾电流。ICA-105574恢复了A561V和G628S的IKr。最后,硅数据表明,ICA-105574稳定了一种类似于功能获得性SQT1突变的相互作用模式,并可以通过将结合位点与选择性过滤器和S5P转塔螺旋连接的变构网络逆转G628S修饰,从而恢复其K+离子渗透性。结论:我们的研究结果支持了像ICA-105574这样的HERG激活剂作为抗一些严重LQT2突变的有前途的药理分子的发展,并表明分子动力学模拟可以用来测试分子在硅上调节HERG功能的能力,为合理设计新的HERG激活剂铺平道路。
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
Journal of Biomedical Science
Journal of Biomedical Science 医学-医学:研究与实验
CiteScore
18.50
自引率
0.90%
发文量
95
审稿时长
1 months
期刊介绍: The Journal of Biomedical Science is an open access, peer-reviewed journal that focuses on fundamental and molecular aspects of basic medical sciences. It emphasizes molecular studies of biomedical problems and mechanisms. The National Science and Technology Council (NSTC), Taiwan supports the journal and covers the publication costs for accepted articles. The journal aims to provide an international platform for interdisciplinary discussions and contribute to the advancement of medicine. It benefits both readers and authors by accelerating the dissemination of research information and providing maximum access to scholarly communication. All articles published in the Journal of Biomedical Science are included in various databases such as Biological Abstracts, BIOSIS, CABI, CAS, Citebase, Current contents, DOAJ, Embase, EmBiology, and Global Health, among others.
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