Development and characterization of the mode-of-action of inhibitory and agonist peptides targeting the voltage-gated sodium channel SCN1B beta-subunit

IF 4.9 2区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Zachary J. Williams , Anita Alvarez-Laviada , Daniel Hoagland , L. Jane Jourdan , Steven Poelzing , Julia Gorelik , Robert G. Gourdie
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引用次数: 0

Abstract

Cardiac arrhythmia treatment is a clinical challenge necessitating safer and more effective therapies. Recent studies have highlighted the role of the perinexus, an intercalated disc nanodomain enriched in voltage-gated sodium channels including both Nav1.5 and β1 subunits, adjacent to gap junctions. These findings offer insights into action potential conduction in the heart. A 19-amino acid SCN1B (β1/β1B) mimetic peptide, βadp1, disrupts VGSC beta subunit-mediated adhesion in cardiac perinexii, inducing arrhythmogenic changes. We aimed to explore βadp1's mechanism and develop novel SCN1B mimetic peptides affecting β1-mediated adhesion. Using patch clamp assays in neonatal rat cardiomyocytes and electric cell substrate impedance sensing (ECIS) in β1-expressing cells, we observed βadp1 maintained inhibitory effects for up to 5 h. A shorter peptide (LQLEED) based on the carboxyl-terminus of βadp1 mimicked this inhibitory effect, while dimeric peptides containing repeated LQLEED sequences paradoxically promoted intercellular adhesion over longer time courses. Moreover, we found a link between these peptides and β1-regulated intramembrane proteolysis (RIP) - a signaling pathway effecting gene transcription including that of VGSC subunits. βadp1 increased RIP continuously over 48 h, while dimeric agonists acutely boosted RIP for up to 6 h. In the presence of DAPT, an RIP inhibitor, βadp1's effects on ECIS-measured intercellular adhesion was reduced, suggesting a relationship between RIP and the peptide's inhibitory action. In conclusion, novel SCN1B (β1/β1B) mimetic peptides are reported with the potential to modulate intercellular VGSC β1-mediated adhesion, potentially through β1 RIP. These findings suggest a path towards the development of anti-arrhythmic drugs targeting the perinexus.

Abstract Image

以电压门控钠通道 SCN1B beta 亚基为靶点的抑制肽和激动肽的作用模式的开发与表征。
心律失常治疗是一项临床挑战,需要更安全、更有效的疗法。最近的研究强调了perinexus的作用,这是一个富含电压门控钠通道(包括Nav1.5和β1亚基)的闰盘纳米结构域,毗邻间隙连接。这些发现为了解心脏的动作电位传导提供了启示。一种 19 氨基酸的 SCN1B(β1/β1B)模拟肽 βadp1 会破坏 VGSC β 亚基介导的心包粘附,从而诱发致心律失常变化。我们的目的是探索βadp1的机制,并开发影响β1介导的粘附的新型SCN1B模拟肽。通过在新生大鼠心肌细胞中进行膜片钳实验,以及在表达β1的细胞中进行电细胞基底阻抗传感(ECIS),我们观察到βadp1的抑制作用可持续长达5小时。一种基于βadp1羧基末端的短肽(LQLEED)模拟了这种抑制作用,而含有重复LQLEED序列的二聚肽却在更长的时间内促进了细胞间粘附。此外,我们还发现了这些肽与β1调节的膜内蛋白水解(RIP)之间的联系--RIP是一种影响基因转录(包括VGSC亚基基因转录)的信号通路。βadp1 可在 48 小时内持续增加 RIP,而二聚体激动剂可在长达 6 小时的时间内急性增加 RIP。在 DAPT(一种 RIP 抑制剂)存在的情况下,βadp1 对 ECIS 测量的细胞间粘附力的影响减弱,这表明 RIP 与该肽的抑制作用之间存在关系。总之,据报道,新型 SCN1B(β1/β1B)模拟肽有可能通过 β1 RIP 调节细胞间 VGSC β1 介导的粘附。这些发现为开发靶向周神经节的抗心律失常药物提供了一条途径。
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来源期刊
CiteScore
10.70
自引率
0.00%
发文量
171
审稿时长
42 days
期刊介绍: The Journal of Molecular and Cellular Cardiology publishes work advancing knowledge of the mechanisms responsible for both normal and diseased cardiovascular function. To this end papers are published in all relevant areas. These include (but are not limited to): structural biology; genetics; proteomics; morphology; stem cells; molecular biology; metabolism; biophysics; bioengineering; computational modeling and systems analysis; electrophysiology; pharmacology and physiology. Papers are encouraged with both basic and translational approaches. The journal is directed not only to basic scientists but also to clinical cardiologists who wish to follow the rapidly advancing frontiers of basic knowledge of the heart and circulation.
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