AI Article Synopsis

  • The cardiac intercalated disc contains crucial structures for electrical and mechanical connections, with cardiac connexin43 (Cx43) playing a key role in these junctions.
  • Researchers created a specific mouse model with a mutation in Cx43 (Cx43D378stop) to study its effects on heart function and found that these mice suffered from severe arrhythmias and died despite having intact gap junction channel function.
  • The study concluded that the lethality in these mice is linked to disrupted sodium and potassium currents rather than the failure of intercellular communication, indicating alternative pathways for arrhythmia development.

Article Abstract

The cardiac intercalated disc harbors mechanical and electrical junctions as well as ion channel complexes mediating propagation of electrical impulses. Cardiac connexin43 (Cx43) co-localizes and interacts with several of the proteins located at intercalated discs in the ventricular myocardium. We have generated conditional Cx43D378stop mice lacking the last five C-terminal amino acid residues, representing a binding motif for zonula occludens protein-1 (ZO-1), and investigated the functional consequences of this mutation on cardiac physiology and morphology. Newborn and adult homozygous Cx43D378stop mice displayed markedly impaired and heterogeneous cardiac electrical activation properties and died from severe ventricular arrhythmias. Cx43 and ZO-1 were co-localized at intercalated discs in Cx43D378stop hearts, and the Cx43D378stop gap junction channels showed normal coupling properties. Patch clamp analyses of isolated adult Cx43D378stop cardiomyocytes revealed a significant decrease in sodium and potassium current densities. Furthermore, we also observed a significant loss of Nav1.5 protein from intercalated discs in Cx43D378stop hearts. The phenotypic lethality of the Cx43D378stop mutation was very similar to the one previously reported for adult Cx43 deficient (Cx43KO) mice. Yet, in contrast to Cx43KO mice, the Cx43 gap junction channel was still functional in the Cx43D378stop mutant. We conclude that the lethality of Cx43D378stop mice is independent of the loss of gap junctional intercellular communication, but most likely results from impaired cardiac sodium and potassium currents. The Cx43D378stop mice reveal for the first time that Cx43 dependent arrhythmias can develop by mechanisms other than impairment of gap junction channel function.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3678986PMC
http://dx.doi.org/10.1007/s00395-013-0348-yDOI Listing

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