scholarly journals RNA Sequencing of Mouse Sinoatrial Node Reveals an Upstream Regulatory Role for Islet-1 in Cardiac Pacemaker Cells

2015 ◽  
Vol 116 (5) ◽  
pp. 797-803 ◽  
Author(s):  
Vasanth Vedantham ◽  
Giselle Galang ◽  
Melissa Evangelista ◽  
Rahul C. Deo ◽  
Deepak Srivastava
1993 ◽  
Vol 265 (6) ◽  
pp. H1983-H1987 ◽  
Author(s):  
D. J. Atchison ◽  
P. S. Pennefather ◽  
U. Ackermann

We studied whether atrial natriuretic peptide (ANP) influences sinoatrial node pacemaker activity or whether it modifies the response to activation of postsynaptic autonomic receptors. Male Sprague-Dawley rats were anesthetized with pentobarbital sodium (45 mg/kg). Their hearts were removed quickly and placed in physiological salt solution. The atria were isolated; the right intra-atrial chamber was exposed to allow intracellular recording from sinoatrial node pacemaker cells. The tissue was placed in a temperature-regulated recording chamber and superfused with warmed oxygenated physiological salt solution. With use of standard microelectrode recording techniques, action potentials were recorded from spontaneously depolarizing cells in the presence of muscarine (62.5–500 nM) or norepinephrine (0.1 and 1.0 microM). Muscarine reduced the frequency of action potentials dose dependently, whereas norepinephrine increased their frequency. The addition of ANP (0.1–100 nM) to the superfusion had no effect on the frequency of action potentials during the superfusion of physiological salt solution or in the presence of either muscarine or norepinephrine. We conclude that ANP does not act on cardiac pacemaker cells to modulate the effect of neurotransmitters.


2021 ◽  
Author(s):  
Colin H. Peters ◽  
Pin W. Liu ◽  
Stefano Morotti ◽  
Stephanie C. Gantz ◽  
Eleonora Grandi ◽  
...  

AbstractSinoatrial node myocytes (SAMs) act as cardiac pacemaker cells by firing spontaneous action potentials (APs) that initiate each heartbeat. The funny current, If, is critical for the generation of these spontaneous APs; however, its precise role during the pacemaking cycle remains unresolved. We used the AP-clamp technique to quantify If during the cardiac cycle in mouse SAMs. We found that If is persistently active throughout the sinoatrial AP, with surprisingly little voltage-dependent gating. As a consequence, it carries both inward and outward current around its reversal potential of -30 mV. Despite operating at only 2-5% of its maximal conductance, If carries a substantial fraction of both depolarizing and repolarizing net charge movement during the firing cycle. We also show that β-adrenergic receptor stimulation increases the percentage of net depolarizing charge moved by If, consistent with a contribution of If to the fight-or-flight increase in heart rate. These properties were confirmed by heterologously-expressed HCN4 channels and by mathematical models of If. Modelling further suggested that the slow activation and deactivation of the HCN4 isoform underlie the persistent activity of If during the sinoatrial AP. These results establish a new conceptual framework for the role of If in pacemaking, in which it operates at a very small fraction of maximal activation but nevertheless drives membrane potential oscillations in SAMs by providing substantial driving force in both inward and outward directions.Significance StatementCardiac pacemaker cells trigger each heartbeat by virtue of spontaneous oscillations in their membrane voltage. Although the funny current (If) is critical for these oscillations and for setting heart rate, its precise role remains an enigma because it activates mostly outside of the physiological voltage range and quite slowly relative to the pacemaker cycle. Here we show that If is persistently active in pacemaker cells; once opened, the small fraction of ion channels that conduct If do not re-close. Consequently, If flows both inward and outward to help propel the voltage oscillations and it paradoxically conducts a large fraction of the net charge movement. These results establish a new conceptual framework for the role of If in driving cardiac pacemaking.


eLife ◽  
2018 ◽  
Vol 7 ◽  
Author(s):  
Silja Barbara Burkhard ◽  
Jeroen Bakkers

Development of specialized cells and structures in the heart is regulated by spatially -restricted molecular pathways. Disruptions in these pathways can cause severe congenital cardiac malformations or functional defects. To better understand these pathways and how they regulate cardiac development we used tomo-seq, combining high-throughput RNA-sequencing with tissue-sectioning, to establish a genome-wide expression dataset with high spatial resolution for the developing zebrafish heart. Analysis of the dataset revealed over 1100 genes differentially expressed in sub-compartments. Pacemaker cells in the sinoatrial region induce heart contractions, but little is known about the mechanisms underlying their development. Using our transcriptome map, we identified spatially restricted Wnt/β-catenin signaling activity in pacemaker cells, which was controlled by Islet-1 activity. Moreover, Wnt/β-catenin signaling controls heart rate by regulating pacemaker cellular response to parasympathetic stimuli. Thus, this high-resolution transcriptome map incorporating all cell types in the embryonic heart can expose spatially restricted molecular pathways critical for specific cardiac functions.


2019 ◽  
Vol 40 (Supplement_1) ◽  
Author(s):  
T Vinogradova ◽  
K Tarasov ◽  
Y Tarasova ◽  
E Lakatta

Abstract Spontaneous firing of sinoatrial node cells (SANC) is regulated by sarcoplasmic reticulum (SR) generated local subsarcolemmal calcium releases (LCRs). LCRs appear during diastolic depolarization (DD) and activate an inward sodium-calcium exchange current to accelerate the DD rate and thus spontaneous SANC firing. Vascular endothelial growth factor (VEGF) receptors VEGFR1 and VEGFR2 activate PLC, and suppression of VEGFR-PLC signaling decreases calcium transients and contractility in ventricular myocytes. We tested the idea that VEGFR-PLC signaling may contribute to normal spontaneous beating of SANC. We observed that expression of VEGFR1 (assessed by RT-qPCR) in rabbit sinoatrial node was comparable to that of β1-adrenergic receptors, but less than that in ventricle. The pan VEGFR1/2/3 inhibitor PTK787/ZK222584 (10 μmol/L) in a time-dependent manner: (1) suppressed spontaneous SANC beating rate by ∼50% (perforated patch-clamp technique); (2) markedly decreased the LCR size and number per each spontaneous cycle (confocal microscopy, calcium indicator Fluo-3) and prolonged the LCR period (the interval between action potential-induced calcium transient and occurrence of subsequent LCR). The PTK787/ZK222584-induced increase in the LCR period (from 348.2±30.3 to 619.9±103.4 msec; P<0.05) predicted the concomitant increase in the spontaneous cycle length (from 405.6±31.1 to 702.1±105.1 msec; P<0.05), suggesting that calcium cycling could be a major target of VEGFR-dependent regulation of SANC firing. All effects of PTK787/ZK222584 were reversible upon washout. To elucidate whether signaling of VEGFR1 or VEGFR2 regulated spontaneous SANC firing, we employed a selective VEGFR2 inhibitor ZM-323881 (5 μmol/L), which suppressed spontaneous beating rate in only 2 of 10 SANC. These results indicate that VEGFR1, but not VEGFR2, is likely a key receptor that modulates automaticity in majority of SANC. To clarify downstream targets from VEGFR1 we employed PLC inhibitor U-73122, which decreased the LCR size, number and prolonged the LCR period. The inactive analog U-73343 was without effect. Because LCRs are critically dependent upon the SR calcium load, supplied by L-type calcium current (ICa,L), we examined effects of U-73122 on ICa,L. U-73122, but not U-73343, markedly suppressed ICa,L amplitude by ∼50%, leading to a decrease in the calcium influx and, as a result, to decrease in the LCR parameters, prolongation of the LCR period and spontaneous SANC cycle length. Thus, basal VEGFR1 signaling activates PLC, which modulates intracellular SR calcium cycling and LCR characteristics in SANC. We conclude that VEGFR1-PLC is a novel mechanism involved in the regulation of normal automaticity of cardiac pacemaker cells. Acknowledgement/Funding Intramural Research Program, National Institute on Aging, NIH


2021 ◽  
Vol 8 (4) ◽  
pp. 40
Author(s):  
Marietta Easterling ◽  
Simone Rossi ◽  
Anthony J Mazzella ◽  
Michael Bressan

Cardiac pacemaker cells located in the sinoatrial node initiate the electrical impulses that drive rhythmic contraction of the heart. The sinoatrial node accounts for only a small proportion of the total mass of the heart yet must produce a stimulus of sufficient strength to stimulate the entire volume of downstream cardiac tissue. This requires balancing a delicate set of electrical interactions both within the sinoatrial node and with the downstream working myocardium. Understanding the fundamental features of these interactions is critical for defining vulnerabilities that arise in human arrhythmic disease and may provide insight towards the design and implementation of the next generation of potential cellular-based cardiac therapeutics. Here, we discuss physiological conditions that influence electrical impulse generation and propagation in the sinoatrial node and describe developmental events that construct the tissue-level architecture that appears necessary for sinoatrial node function.


2020 ◽  
Vol 41 (Supplement_2) ◽  
Author(s):  
T Vinogradova ◽  
K Tarasov ◽  
D Riordon ◽  
Y Tarasova ◽  
E Lakatta

Abstract   The spontaneous beating rate of rabbit sinoatrial node cells (SANC) is regulated by local subsarcolemmal calcium releases (LCRs) from sarcoplasmic reticulum (SR). LCRs appear during diastolic depolarization (DD) and activate an inward sodium/calcium exchange current which increases DD rate and thus accelerates spontaneous SANC firing. High basal level of protein kinase A and calcium/calmodulin-dependent protein kinase II phosphorylation are required to sustain basal LCRs and normal spontaneous SANC firing. Recently we discovered that basal PKC activation is also obligatory for cardiac pacemaker function: inhibition of PKC activity by broad spectrum PKC inhibitors Bis I or calphostin C markedly suppressed SR calcium cycling and decreased or abolished spontaneous beating of freshly isolated rabbit SANC. Here we studied which PKC isoforms mediate PKC-dependent effects on cardiac pacemaker cell automaticity. The PKC superfamily consists of 3 major subgroups: conventional, novel and atypical. All PKC isoforms were detected at the RNA level (RT-qPCR) in the rabbit SA node and ventricle, and expression levels were comparable in both tissues. Expression of PKCβ, however, was markedly higher in the rabbit SA node, compared to other PKC isoenzymes in either tissue. We verified expression of conventional PKC (α, β) and novel PKC-delta at the protein level in SANC and ventricular myocytes (VM). Western blot confirmed RNA results, showing a 6-fold higher PKCβ protein abundance in SANC compared to VM. Expression of PKCα protein was similar in both cell types, while PKC-delta protein was more abundant in VM. To study whether PKCβ regulates spontaneous beating of SANC we employed selective inhibitor of conventional (α, β, gamma) PKC isoforms Go6976 (10 μmol/L), which had no effects on either LCR characteristics (confocal microscopy, calcium indicator Fluo-3AM) or spontaneous beating of freshly isolated rabbit SANC (perforated patch-clamp technique). Because selective PKC-delta inhibitors are not available, we explored effects of PKC-delta inhibition comparing effects of Go6976 (the inhibitor of conventional PKCs) and Go6983, which inhibits conventional PKCs and PKC-delta. In contrast to Go6976, Go6983 (5 μmol/L) markedly decreased the LCR size (from 7.1±0.4 to 4.5±0.3 μm) and number per each spontaneous cycle (from 1.3±0.1 to 0.8±0.1). It also markedly increased the LCR period (time from the prior AP-induced calcium transient to the subsequent LCR) which was paralleled by an increase in the spontaneous SANC cycle length. Rottlerin, another PKC-delta inhibitor, produced similar effects on LCR characteristics, and markedly and time-dependently decreased DD rate, leading to an increase in the spontaneous cycle length, and finally abrogated the spontaneous SANC firing. Thus, our data indicate that basal activity of PKC-delta, but not that of PKCβ, is essential for generation of LCRs and normal spontaneous firing of cardiac pacemaker cells. Funding Acknowledgement Type of funding source: Public grant(s) – National budget only. Main funding source(s): Intramural Research Program, National Institute on Aging, National Institute of Health, USA


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