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Contactin-2 expression in the cardiac Purkinje fiber network
Pallante, Benedetta A; Giovannone, Steven; Fang-Yu, Liu; Zhang, Jie; Liu, Nian; Kang, Guoxin; Dun, Wen; Boyden, Penelope A; Fishman, Glenn I
BACKGROUND: Purkinje cells (PCs) comprise the most distal component of the cardiac conduction system, and their unique electrophysiological properties and the anatomic complexity of the Purkinje fiber network may account for the prominent role these cells play in the genesis of various arrhythmic syndromes. METHODS AND RESULTS: Differential transcriptional profiling of murine Purkinje fibers and working ventricular myocytes was performed to identify novel genes expressed in PCs. The most highly enriched transcript in Purkinje fibers encoded Contactin-2 (Cntn2), a cell adhesion molecule critical for neuronal patterning and ion channel clustering. Endogenous expression of Cntn2 in the murine ventricle was restricted to a subendocardial network of myocytes that also express beta-galactosidase in CCS-lacZ transgenic mice and the connexin40 gap junction protein. Both Cntn2-lacZ knockin mice and Cntn2-EGFP BAC transgenic reporter mice confirmed expression of Cntn2 in the Purkinje fiber network, as did immunohistochemical staining of single canine Purkinje fibers. Whole-cell patch-clamp recordings and measurements of Ca(2+) transients in Cntn2-EGFP(+) cells revealed electrophysiological properties indicative of PCs and distinctive from those of cardiac myocytes, including prolonged action potentials and frequent afterdepolarizations. CONCLUSIONS: Cntn2 is a novel marker of the specialized cardiac conduction system. Endogenous expression of Cntn2 as well as Cntn2-dependent transcriptional reporters provides a new tool through which Purkinje cell biology and pathophysiology can now more readily be deciphered. Expression of a contactin family member within the CCS may provide a mechanistic basis for patterning of the conduction system network and the organization of ion channels within Purkinje cells
PMCID:3068837
PMID: 20110552
ISSN: 1941-3084
CID: 109201
Purkinje Cells From RyR2 Mutant Mice Are Highly Arrhythmogenic But Responsive to Targeted Therapy
Kang, Guoxin; Giovannone, Steven F; Liu, Nian; Liu, Fang-Yu; Zhang, Jie; Priori, Silvia G; Fishman, Glenn I
Rationale: The Purkinje fiber network has been proposed as the source of arrhythmogenic Ca(2+) release events in catecholaminergic polymorphic ventricular tachycardia (CPVT), yet evidence supporting this mechanism at the cellular level is lacking. Objective: We sought to determine the frequency and severity of spontaneous Ca(2+) release events and the response to the antiarrhythmic agent flecainide in Purkinje cells and ventricular myocytes from RyR2(R4496C/+) CPVT mutant mice and littermate controls. Methods and Results: We crossed RyR2(R4496C/+) knock-in mice with the newly described Cntn2-EGFP BAC transgenic mice, which express a fluorescent reporter gene in cells of the cardiac conduction system, including the distal Purkinje fiber network. Isolated ventricular myocytes (EGFP(-)) and Purkinje cells (EGFP(+)) from wild-type hearts and mutant hearts were distinguished by epifluorescence and intracellular Ca(2+) dynamics recorded by microfluorimetry. Both wild-type and RyR2(R4496C/+) mutant Purkinje cells displayed significantly slower kinetics of activation and relaxation compared to ventricular myocytes of the same genotype, and tau(decay) in the mutant Purkinje cells was significantly slower than that observed in wild-type Purkinje cells. Of the 4 groups studied, RyR2(R4496C/+) mutant Purkinje cells were also most likely to develop spontaneous Ca(2+) release events, and the number of events per cell was also significantly greater. Furthermore, with isoproterenol treatment, although all 4 groups showed increases in the frequency of arrhythmogenic Ca(2+(i)) events, the RyR2(R4496C/+) Purkinje cells responded with the most profound abnormalities in intracellular Ca(2+) handling, including a significant increase in the frequency of unstimulated Ca(2+(i)) events and the development of alternans, as well as isolated and sustained runs of triggered beats. Both Purkinje cells and ventricular myocytes from wild-type mice showed suppression of spontaneous Ca(2+) release events with flecainide, whereas in RyR2(R4496C/+) mice, the Purkinje cells were preferentially responsive to drug. In contrast, the RyR2 blocker tetracaine was equally efficacious in mutant Purkinje cells and ventricular myocytes. Conclusions: Purkinje cells display a greater propensity to develop abnormalities in intracellular Ca(2+) handling than ventricular myocytes. This proarrhythmic behavior is enhanced by disease-causing mutations in the RyR2 Ca(2+) release channel and greatly exacerbated by catecholaminergic stimulation, with the development of arrhythmogenic triggered beats. These data support the concept that Purkinje cells are critical contributors to arrhythmic triggers in animal models and humans with CPVT and suggest a broader role for the Purkinje fiber network in the genesis of ventricular arrhythmias
PMCID:2930621
PMID: 20595652
ISSN: 1524-4571
CID: 111963
Sudden cardiac death prediction and prevention: report from a National Heart, Lung, and Blood Institute and Heart Rhythm Society Workshop
Fishman, Glenn I; Chugh, Sumeet S; Dimarco, John P; Albert, Christine M; Anderson, Mark E; Bonow, Robert O; Buxton, Alfred E; Chen, Peng-Sheng; Estes, Mark; Jouven, Xavier; Kwong, Raymond; Lathrop, David A; Mascette, Alice M; Nerbonne, Jeanne M; O'Rourke, Brian; Page, Richard L; Roden, Dan M; Rosenbaum, David S; Sotoodehnia, Nona; Trayanova, Natalia A; Zheng, Zhi-Jie
PMCID:3016224
PMID: 21147730
ISSN: 1524-4539
CID: 115431
Gap junction remodeling and spironolactone-dependent reverse remodeling in the hypertrophied heart
Qu, Jiaxiang; Volpicelli, Frank M; Garcia, Luis I; Sandeep, Nefthi; Zhang, Jie; Marquez-Rosado, Lucrecia; Lampe, Paul D; Fishman, Glenn I
Pressure overload is a common pathological insult to the heart and the resulting hypertrophy is an independent risk factor for sudden cardiac death. Gap junction remodeling (GJR) has been described in hypertrophied hearts; however, a detailed understanding of the remodeling process and its effects on impulse propagation is lacking. Moreover, there has been little progress developing therapeutic strategies to diminish GJR. Accordingly, transverse aortic banding (TAC) was performed in mice to determine the effects of progressive pathological hypertrophy on connexin (Cx)43 expression, posttranslational phosphorylation, gap junction assembly, and impulse propagation. Within 2 weeks after TAC, total and phospho-Cx43 abundance was reduced and incorporation of Cx43 into gap junctional plaques was markedly diminished. These molecular changes were associated with progressive slowing of impulse propagation, as determined by optical mapping with voltage-sensitive dyes. Treatment with the aldosterone receptor antagonist spironolactone, which has been shown to diminish sudden arrhythmic death in clinical trials, was examined for its effects on GJR. We found that spironolactone blunted the development of GJR and also potently reversed established GJR, both at the molecular and functional levels, without diminishing the extent of hypertrophy. These data suggest a potential mechanism for some of the salutary electrophysiological and clinical effects of mineralocorticoid antagonists in myopathic hearts
PMCID:2652889
PMID: 19096029
ISSN: 1524-4571
CID: 96062
Connexin-43 Expression Regulates the Migration of Hematopoietic Stem Cells and Progenitors towards and From Bone Marrow [Meeting Abstract]
Gonzalez-Nieto, D; Chang, KH; Koehler, A; Arnett, J; Dunn, S; Li, L; Ghiaur, G; Sengupta, A; Fishman, G; Gutstein, D; Civitelli, R; Barrio, L; Gunzer, M; Cancelas, J
ISI:000272725800563
ISSN: 0006-4971
CID: 109972
Connexin-43 Regulates the Cell Cycle Entry of Hematopoietic Stem Cells within the Stem Cell Niche [Meeting Abstract]
Gonzalez-Nieto, D; Ghiaur, G; Li, L; Arnett, J; Dunn, S; Fishman, G; Gutstein, D; Civitelli, R; Cancelas, J
ISI:000272725801680
ISSN: 0006-4971
CID: 109978
Differential gene expression profiles between the murine cardiac conduction system and ventricular myocardium [Meeting Abstract]
See V.Y.; Wakimoto H.; Kim J.B.; Kwana M.; Moskowitz I.; Gorham J.; Wang L.; Fishman G.I.; Berul C.I.; Seidman J.G.; Seidman C.E.
Introduction: Cells of the cardiac conduction system (CCS) arise from myocardial progenitors at mouse embryonic day 1214. CCS specification is required for initiation and coordinated propagation of action potentials to maintain normal cardiac function. Only a few genes that delineate the CCS from working myocardium have been identified. To elucidate genes that specify the CCS vs. ventricular myocardium, we performed comprehensive transcriptional analyses of the CCS and the left ventricle (LV) using high-throughout sequencing. Methods: The left bundle branch (LBB) was dissected from the LV of 3-week old wildtype mice. cDNA libraries were constructed and sequenced by a next generation platform (Solexa - Illumina, San Diego, CA). RNA species were measured quantitatively using unique sequence tags. Differential gene expression between these tissues was considered significant for differences of 0.5 or 1.5 fold change with p<0.001 based on modified Chi-square test. Expression data were validated by quantitative RT- PCR. Results: Sequencing from 2.9x106 CCS and 4.2x106 LV tags were analyzed. These corresponded to >20000 unique RNAs. 2409 transcripts showed differential expression, including 3 genes expressed only in LV and 197 expressed only in CCS. Seventy-eight genes were downregulated in CCS compared to LV. Changes in previously described CCS-enriched genes (expressed as CCS vs. LV, tag counts normalized per 1x106 tags, all p<0.001) included: Tbx5 (25.9 vs. 6.4), Tbx20 (63.8 vs. 39.1), Id2 (41.7 vs. 1.9), and Gja5 (7.9 vs. 0.2). We also identified increased expression of an Endothelin signaling axis in the CCS as evidenced by increased expression of ligand, converting enzyme, and receptor: Edn1 (7.9 vs. 1.2), Ece1 (302.1 vs. 31.7), and Ednrb (115.9 vs. 24.8). Conclusions: Comprehensive transcriptional profiling of the CCS and LV, accomplished by next-generation sequencing platforms, provides unbiased assessment of differential gene expression. Genes that are selectively expressed in electrophysiologic vs. working myocytes provide new insights into the molecular basis for CCS differentiation, maturation, and function
EMBASE:70392527
ISSN: 1547-5271
CID: 131852
Electrical remodeling contributes to complex tachyarrhythmias in connexin43-deficient mouse hearts
Danik, Stephan B; Rosner, Gregg; Lader, Joshua; Gutstein, David E; Fishman, Glenn I; Morley, Gregory E
Loss of connexin43 (Cx43) gap junction channels in the heart results in a marked increase in the incidence of spontaneous and inducible polymorphic ventricular tachyarrhythmias (PVTs). The mechanisms resulting in this phenotype remain unclear. We hypothesized that uncoupling promotes regional ion channel remodeling, thereby increasing electrical heterogeneity and facilitating the development of PVT. In isolated-perfused control hearts, programmed electrical stimulation elicited infrequent monomorphic ventricular tachyarrhythmias (MVT), and dominant frequencies (DFs) during MVT were similar in the right ventricle (RV) and left ventricle (LV). Moreover, conduction properties, action potential durations (APDs), and repolarizing current densities were similar in RV and LV myocytes. In contrast, PVT was common in Cx43 conditional knockout (OCKO) hearts, and arrhythmias were characterized by significantly higher DFs in the RV compared to the LV. APDs in OCKO myocytes were significantly shorter than those from chamber-matched controls, with RV OCKO myocytes being most affected. APD shortening was associated with higher levels of sustained current in myocytes from both chambers as well as higher levels of the inward rectifier current only in RV myocytes. Thus, alterations in cell-cell coupling lead to regional changes in potassium current expression, which in this case facilitates the development of reentrant arrhythmias. We propose a new mechanistic link between electrical uncoupling and ion channel remodeling. These findings may be relevant not only in cardiac tissue but also to other organ systems where gap junction remodeling is known to occur.-Danik, S. B., Rosner, G., Lader, J., Gutstein, D. E., Fishman, G. I., Morley, G. E. Electrical remodeling contributes to complex tachyarrhythmias in connexin43-deficient mouse hearts
PMCID:2726820
PMID: 17984180
ISSN: 1530-6860
CID: 75197
Response to letters regarding article, "Abnormal conduction and morphology in the atrioventricular node of mice with atrioventricular canal targeted deletion of Alk3/Bmpr1a receptor" [Letter]
Stroud, DM; Yu, C; Fishman, GI; Morley, GE; Gaussin, V; Burch, JBE; Mishina, Y; Schneider, MD
ISI:000258192600018
ISSN: 0009-7322
CID: 86825
Ephaptic conduction in a cardiac strand model with 3D electrodiffusion
Mori, Yoichiro; Fishman, Glenn I; Peskin, Charles S
We study cardiac action potential propagation under severe reduction in gap junction conductance. We use a mathematical model of cellular electrical activity that takes into account both three-dimensional geometry and ionic concentration effects. Certain anatomical and biophysical parameters are varied to see their impact on cardiac action potential conduction velocity. This study uncovers quantitative features of ephaptic propagation that differ from previous studies based on one-dimensional models. We also identify a mode of cardiac action potential propagation in which the ephaptic and gap-junction-mediated mechanisms alternate. Our study demonstrates the usefulness of this modeling approach for electrophysiological systems especially when detailed membrane geometry plays an important role
PMCID:2359793
PMID: 18434544
ISSN: 1091-6490
CID: 96063