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Connexin43 silencing in myofibroblasts prevents arrhythmias in myocardial cultures: Role of maximal diastolic potential

机译:肌成纤维细胞中的连接蛋白43沉默可防止心肌培养中的心律失常:最大舒张电位的作用

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Aims: Arrhythmogenesis in cardiac fibrosis remains incompletely understood. Therefore, this study aims to investigate how heterocellular coupling between cardiomyocytes (CMCs) and myofibroblasts (MFBs) affects arrhythmogeneity of fibrotic myocardial cultures. Potentially, this may lead to the identification of novel anti-arrhythmic strategies. Methods and results: Co-cultures of neonatal rat CMCs and MFBs in a 1:1 ratio were used as a model of cardiac fibrosis, with purified CMC cultures as control. Arrhythmogeneity was studied at day 9 of culture by voltage-sensitive dye mapping. Heterocellular coupling was reduced by transducing MFBs with lentiviral vectors encoding shRNA targeting connexin43 (Cx43) or luciferase (pLuc) as control. In fibrotic cultures, conduction velocity (CV) was lowered (11.2 ± 1.6 cm/s vs. 23.9 ± 2.1 cm/s; P 0.0001), while action potential duration and ectopic activity were increased. Maximal diastolic membrane potential (MDP) of CMCs was less negative in fibrotic cultures. In fibrotic cultures, (n = 30) 30.0% showed spontaneous re-entrant tachyarrhythmias compared with 5% in controls (n 60). Cx43 silencing in MFBs made the MDP in CMCs more negative, increased excitability and CV by 51% (P 0.001), and reduced action potential duration and ectopic activity (P 0.01), thereby reducing re-entry incidence by 40% compared with pLuc-silenced controls. Anti-arrhythmic effects of Cx43 down-regulation in MFBs was reversed by depolarization of CMCs through I k1 inhibition or increasing extracellular [K +]. Conclusion: Arrhythmogeneity of fibrotic myocardial cultures is mediated by Cx43 expression in MFBs. Reduced expression of Cx43 causes a more negative MDP of CMCs. This preserves CMC excitability, limits prolongation of repolarization and thereby strongly reduces the incidence of spontaneous re-entrant tachyarrhythmias.
机译:目的:心脏纤维化中的心律失常尚不完全清楚。因此,本研究旨在研究心肌细胞(CMC)和成肌纤维细胞(MFB)之间的异源偶联如何影响纤维化心肌培养的心律失常性。潜在地,这可能导致鉴定新的抗心律不齐策略。方法和结果:新生大鼠CMC和MFB以1:1的比例共培养用作心脏纤维化模型,以纯化的CMC培养为对照。在培养的第9天通过电压敏感的染料作图研究心律不齐性。通过用编码靶向连接蛋白43(Cx43)或荧光素酶(pLuc)的shRNA的慢病毒载体转导MFB,可以减少异种细胞的偶联。在纤维化培养物中,传导速度(CV)降低(11.2±1.6 cm / s与23.9±2.1 cm / s; P <0.0001),而动作电位持续时间和异位活性增加。在纤维化培养物中,CMC的最大舒张膜电位(MDP)较小。在纤维化培养物中,(n = 30)30.0%表现为自发性折返性快速性心律失常,而对照组则为5%(n 60)。 MFB中的Cx43沉默使CMC中的MDP更阴性,兴奋性和CV增加51%(P <0.001),动作电位持续时间和异位活性降低(P <0.01),从而与2006年相比降低了再进入的发生率40%。 pLuc沉默的控件。通过Ik1抑制或增加细胞外[K +]使CMC去极化,可以逆转MFB中Cx43下调的抗心律不齐作用。结论:纤维化心肌培养的心律失常性是由MFBs中Cx43表达介导的。 Cx43的表达减少会导致CMC的MDP更加阴性。这样可以保持CMC的兴奋性,限制复极化的持续时间,从而大大降低了自发性折返性快速性心律失常的发生率。

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