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<article xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:mml="http://www.w3.org/1998/Math/MathML" article-type="research-article"><?properties open_access?><front><journal-meta><journal-id journal-id-type="nlm-ta">Korean J Physiol Pharmacol</journal-id><journal-id journal-id-type="iso-abbrev">Korean J. Physiol. Pharmacol</journal-id><journal-id journal-id-type="publisher-id">KJPP</journal-id><journal-title-group><journal-title>The Korean Journal of Physiology &amp; Pharmacology : Official Journal of the Korean Physiological Society and the Korean Society of Pharmacology</journal-title></journal-title-group><issn pub-type="ppub">1226-4512</issn><issn pub-type="epub">2093-3827</issn><publisher><publisher-name>The Korean Physiological Society and The Korean Society of Pharmacology</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="pmid">23118556</article-id><article-id pub-id-type="pmc">3484517</article-id><article-id pub-id-type="doi">10.4196/kjpp.2012.16.5.327</article-id><article-categories><subj-group subj-group-type="heading"><subject>Original Article</subject></subj-group></article-categories><title-group><article-title>Wide Spectrum of Inhibitory Effects of Sertraline on Cardiac Ion Channels</article-title></title-group><contrib-group><contrib contrib-type="author"><name><surname>Lee</surname><given-names>Hyang-Ae</given-names></name><xref ref-type="aff" rid="A1-kjpp-16-327">1</xref><xref ref-type="aff" rid="A2-kjpp-16-327">2</xref></contrib><contrib contrib-type="author"><name><surname>Kim</surname><given-names>Ki-Suk</given-names></name><xref ref-type="aff" rid="A1-kjpp-16-327">1</xref></contrib><contrib contrib-type="author"><name><surname>Hyun</surname><given-names>Sung-Ae</given-names></name><xref ref-type="aff" rid="A1-kjpp-16-327">1</xref></contrib><contrib contrib-type="author"><name><surname>Park</surname><given-names>Sung-Gurl</given-names></name><xref ref-type="aff" rid="A1-kjpp-16-327">1</xref></contrib><contrib contrib-type="author" corresp="yes"><name><surname>Kim</surname><given-names>Sung Joon</given-names></name><xref ref-type="aff" rid="A2-kjpp-16-327">2</xref></contrib></contrib-group><aff id="A1-kjpp-16-327"><label>1</label>Next-Generation Pharmaceutical Research Center, Korea Institute of Toxicology, Korea Research Institute of Chemical Technology, Daejeon 305-600, Korea.</aff><aff id="A2-kjpp-16-327"><label>2</label>Department of Physiology and Department of Biomedical Sciences, Seoul National University College of Medicine, Seoul 110-799, Korea.</aff><author-notes><corresp>
Corresponding to: Sung Joon Kim, Department of Physiology and Department of Biomedical Sciences, Seoul National University College of Medicine, 103, Daehakro, Jongro-gu, Seoul 110-799, Korea. (Tel) 82-2-740-8230, (Fax) 82-2-763-9667, <email>sjoonkim@snu.ac.kr</email></corresp></author-notes><pub-date pub-type="ppub"><month>10</month><year>2012</year></pub-date><pub-date pub-type="epub"><day>18</day><month>10</month><year>2012</year></pub-date><volume>16</volume><issue>5</issue><fpage>327</fpage><lpage>332</lpage><history><date date-type="received"><day>03</day><month>6</month><year>2012</year></date><date date-type="rev-recd"><day>11</day><month>9</month><year>2012</year></date><date date-type="accepted"><day>11</day><month>9</month><year>2012</year></date></history><permissions><copyright-statement>Copyright &#xA9; 2012 The Korean Physiological Society and The Korean Society of Pharmacology</copyright-statement><copyright-year>2012</copyright-year><license license-type="open-access" xlink:href="http://creativecommons.org/licenses/by-nc/3.0"><license-p>This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (<ext-link ext-link-type="uri" xlink:href="http://creativecommons.org/licenses/by-nc/3.0">http://creativecommons.org/licenses/by-nc/3.0</ext-link>) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.</license-p></license></permissions><abstract><p>Sertraline is a commonly used antidepressant of the selective serotonin reuptake inhibitors (SSRIs) class. In these experiments, we have used the whole cell patch clamp technique to examine the effects of sertraline on the major cardiac ion channels expressed in HEK293 cells and the native voltage-gated Ca<sup>2+</sup> channels in rat ventricular myocytes. According to the results, sertraline is a potent blocker of cardiac K<sup>+</sup> channels, such as <italic>hERG</italic>, <italic>I</italic><sub>Ks</sub> and <italic>I</italic><sub>K1</sub>. The rank order of inhibitory potency was <italic>hERG</italic> &gt;<italic>I</italic><sub>K1</sub>&gt; <italic>I</italic><sub>Ks</sub> with IC<sub>50</sub> values of 0.7, 10.5, and 15.2 &#xB5;M, respectively. In addition to K<sup>+</sup> channels, sertraline also inhibited <italic>I</italic><sub>Na</sub> and <italic>I</italic><sub>Ca</sub>, and the IC<sub>50</sub> values are 6.1 and 2.6 &#xB5;M, respectively. Modification of these ion channels by sertraline could induce changes of the cardiac action potential duration and QT interval, and might result in cardiac arrhythmia.</p></abstract><kwd-group><kwd>Antidepressant</kwd><kwd>Cardiac</kwd><kwd>Ion channel</kwd><kwd>Selective serotonin reuptake inhibitor</kwd><kwd>Sertraline</kwd></kwd-group></article-meta></front><body><sec><title>INTRODUCTION</title><p>The most considerable concern about the new drugs is cardiovascular toxicity including tachycardia, QT prolongation, and hypertension. Specially, QT prolongation is associated with potentially fatal, cardiac arrhythmia termed Torsade de Pointes (TdP) [<xref ref-type="bibr" rid="B1-kjpp-16-327">1</xref>,<xref ref-type="bibr" rid="B2-kjpp-16-327">2</xref>].</p><p>It is well known that some psychotropic drugs, including neuroleptics, antipsychotics, antidepressants, stimulants, and antianxiety agents, can be associated with risks of cardiac arrhythmia and sudden death [<xref ref-type="bibr" rid="B3-kjpp-16-327">3</xref>]. The common tricyclic antidepressants (TCAs) such as imipramine and amitriptyline exert a significant increase in QT variability that is associated with ventricular arrhythmia [<xref ref-type="bibr" rid="B4-kjpp-16-327">4</xref>-<xref ref-type="bibr" rid="B6-kjpp-16-327">6</xref>]. Newer compounds, such as selective serotonin reuptake inhibitors (SSRIs) have been reported to have a more benign cardiovascular profile, otherwise fluvoxamine have been reported to prolong QT, even at therapeutic doses [<xref ref-type="bibr" rid="B7-kjpp-16-327">7</xref>]. In the perfused rat hearts, SSRIs presented undesired effects on the contractility [<xref ref-type="bibr" rid="B8-kjpp-16-327">8</xref>] that may be induced by the inhibition of L-type Ca<sup>2+</sup> and transient outward K<sup>+</sup> currents of ventricular myocytes [<xref ref-type="bibr" rid="B9-kjpp-16-327">9</xref>].</p><p>Sertraline is a commonly used antidepressant of the SSRI class (<xref ref-type="fig" rid="F1-kjpp-16-327">Fig. 1</xref>). It was investigated that sertraline had no significant effect on cardiac function like as RR, PR, QRS, and QT intervals in an adult outpatient population (n=1,048) [<xref ref-type="bibr" rid="B10-kjpp-16-327">10</xref>]. Whereas previous studies did not reveal any QT prolongation as a side-effect of sertraline, some reports released recently suggests it may have this potential [<xref ref-type="bibr" rid="B11-kjpp-16-327">11</xref>]. The sudden cardiac death is also reported in patient taking clozapine and sertraline together [<xref ref-type="bibr" rid="B12-kjpp-16-327">12</xref>].</p><p>Many antidepressants, especially TCAs can modulate the cardiac action potential (AP) by blocking different cardiac ion channels present in ventricular myocytes. There are various ion channels involved in both the depolarization and repolarization of AP: the inward sodium channel current (<italic>I</italic><sub>Na</sub>), the inward Ca<sup>2+</sup> channel current (<italic>I</italic><sub>Ca</sub>), and several types of outward potassium channels, such as the rapid and slow components of outward delayed rectifier potassium channel currents (<italic>I</italic><sub>Kr</sub> and <italic>I</italic><sub>Ks</sub>, respectively), the inward rectifying potassium channel current (<italic>I</italic><sub>K1</sub>). Among these potassium channels, the human ether-a-go-go-related gene (hERG) channels conducting <italic>I</italic><sub>Kr</sub> is mainly responsible for cardiac repolarization [<xref ref-type="bibr" rid="B13-kjpp-16-327">13</xref>,<xref ref-type="bibr" rid="B14-kjpp-16-327">14</xref>].</p><p>To our knowledge, there is no report investigating the effect of sertraline on various cardiac ion channels. In the present study, we investigated the effect of sertraline on the major cardiac ion channels, such as hERG, <italic>I</italic><sub>Ks</sub>, <italic>I</italic><sub>K1</sub>, <italic>I</italic><sub>Na</sub> and <italic>I</italic><sub>Ca</sub> to evaluate the potential effects of the drug on cardiac repolarization.</p></sec><sec sec-type="methods"><title>METHODS</title><sec><title>Reagents</title><p>Sertraline and all compounds used to prepare external and internal solutions were purchased from Sigma-Aldrich (MO, USA).</p><p>The stock solutions of sertraline were prepared using ethyl alcohol (EtOH), aliquoted and stored frozen. Test concentrations were prepared fresh daily by diluting stock solutions into normal Tyrode (NT) solution. The concentration of EtOH in Tyrode's solution was always kept at 0.1%.</p></sec><sec><title>Solutions</title><p>The external solution for recording the <italic>I</italic><sub>Kr</sub>, <italic>I</italic><sub>Ks</sub> and <italic>I</italic><sub>Na</sub> channel currents was NT solution as follows (in mM):143 NaCl, 5.4 KCl, 1.8 CaCl<sub>2</sub>, 0.5 MgCl<sub>2</sub>, 5 HEPES (4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid ), 0.33 NaH<sub>2</sub>PO<sub>4</sub> and 16.6 glucose (pH adjusted to 7.4 with NaOH). The internal solution for <italic>I</italic><sub>Kr</sub> contained the following (in mM):130 KCl, 5 ethylene glycol tetraacetic (EGTA), 10 HEPES, 1 MgCl<sub>2</sub>, 5 Mg-ATP (pH adjusted 7.25 with KOH), and for <italic>I</italic><sub>Ks</sub> in the KCNQ1/KCNE1-cotransfected Human Embryonic Kidney 293 (HEK293) cells, 150 KCl, 5 EGTA, 10 HEPES, 2 MgCl<sub>2</sub>, 1 CaCl<sub>2</sub> and 5 Na<sub>2</sub>-ATP (pH adjusted 7.25 with KOH). The internal solution for <italic>I</italic><sub>K1</sub> in KCNJ2-transfected HEK293 cells contained (in mM): 130 K-Asp, 15 KCl, 10 HEPES, 1 MgCl<sub>2</sub>, 5 Na<sub>2</sub>-ATP, 5 EGTA (pH adjusted 7.25 with KOH), and for the <italic>I</italic><sub>Na</sub> in SCN5A-transfected HEK293 cells, 105 CsF, 35 NaCl, 10 EGTA, 10 HEPES (pH adjusted to 7.25 with NaOH). The <italic>I</italic><sub>Ca</sub> was measured in native rat ventricular myocytes, cells were superperfused with an external solution that consisted of (in mM):137 cholin-Cl, 5 CsCl, 0.5 MgCl<sub>2</sub>, 2, 4-Aminopyridine (4-AP), 10 HEPES, 10 glucose and 1.8 CaCl<sub>2</sub> (pH adjusted to 7.4 with NaOH), whereas the solution used to fill the pipette had the following ionic solution (in mM):20 CsCl, 100 Cs-Asp, 10 EGTA, 10 HEPES, 20 TEA-Cl, 5 Mg-ATP (pH adjusted to 7.25 with KOH). Kraft-Bruhe (KB) solution for storage of the freshly isolated rat ventricular myocytes contained (in mM):70 K-glutamate, 55 KCl, 10 HEPES, 3 MgCl<sub>2</sub>, 20 taurine, 20 KH<sub>2</sub>PO<sub>4</sub>, 0.5 EGTA (adjusted to pH 7.2 with KOH).</p></sec><sec><title>Cell preparation</title><p>For various aspects of cardiac ion channel study, HEK293 (ATCC, Manassas, VA, USA) cells were transiently transfected through the lipofectamine method [<xref ref-type="bibr" rid="B15-kjpp-16-327">15</xref>], using lipofectAmin2000 (Gibco BRL, USA) as transfection reagent according to the manufacturer's instructions. The <italic>hERG</italic> (the gene corresponding to <italic>I</italic><sub>Kr</sub>), <italic>KCNQ1/KCNE1</italic> (the gene corresponding to <italic>I</italic><sub>Ks</sub>), <italic>KCNJ2</italic> (the gene corresponding to IK1) or <italic>SCN5A</italic> (the gene corresponding to <italic>I</italic><sub>Na</sub>) cDNA was co-transfected with Green Fluorescence Protein (GFP), the surface marker protein, to allow assessment of the transfection efficiency. L-type calcium currents were recorded form acutely isolated, enzymatically dispersed rat ventricular myocytes.</p></sec><sec><title>Recording of ionic currents</title><p>The cells were placed in a recording chamber on the stage of a Nikon inverted microscope (Nikon Instruments Inc., Tokyo, Japan), and continuously perfused (5&#xB1;1 ml/min) with 37&#xB1;1&#x2103; bath solution. Ionic currents were recorded in a whole-cell configuration with a standard patch clamp technique [<xref ref-type="bibr" rid="B16-kjpp-16-327">16</xref>] using a HEKA EPC8 amplifier (Electronik, Lambrecht, Germany). Data were recorded during the approximately 5 minutes following initial application of the bath solution to verify currents stability. Test drug solutions were subsequently perfused for approximately 5 minutes to achieve steady-state blocks. To investigate the effect of sertraline on the ion channel currents, various concentrations (0.01~30 &#xB5;M) were tested. Voltage-clamp protocol generation and data acquisition were controlled by computers equipped with an A/D converter, Digidata (Axon Inc., USA) and Rclamp software developed in Seoul National University (Seoul, Korea). The patch pipettes were made from borosilicate glass capillaries (Clark Electromedical Instruments, UK) using a pipette puller (PP-830, Narishige, Japan). Their resistances were 3~4 M&#x3A9; when filled with pipette solution. The current signals were filtered at a sampling rate of 5 kHz, and they were low-pass filtered at 1 kHz and stored on computer. All experimental parameters, such as pulse generation and data acquisition, were controlled using the Rclamp software.</p></sec><sec><title>Data analysis and statistical test</title><p>Data analysis and curve fitting were carried out using GraphPad InStat (GraphPad Software, San Diego, CA) and SigmaPlot 2000 (Systat Software, Inc. San Jose, CA). All data are expressed as mean&#xB1;SEM and an n indicated number of replicates. Student's <italic>t</italic> tests or ANOVA were used for statistical comparisons when appropriate, and differences were considered significant when p&lt;0.05, or p&lt;0.01. Current amplitudes were measured before and after application of sertraline. The relative remaining currents were calculated according to the following equation: Initial current amplitude/Current amplitude in the presence of compound=Relative remaining current. Effects were calculated from the results of 4 experiments per concentration of sertraline. Concentration response relations were calculated by a non-linear least squares fit of equation [Hill equation; f=x<sup>H</sup>/(IC50<sup>H</sup>+x<sup>H</sup>); H=Hill coefficient, IC50=IC<sub>50</sub>, x=concentration, f=inhibition ratio] using the SigmaPlot 2000 program. The half-maximum inhibiting concentration (IC<sub>50</sub>) was calculated with this function.</p></sec></sec><sec sec-type="results"><title>RESULTS</title><sec><title>Effect of sertraline on hERG, <italic>I</italic><sub>Ks</sub>, and <italic>I</italic><sub>K1</sub> currents</title><p><xref ref-type="fig" rid="F2-kjpp-16-327">Fig. 2</xref> shows the effects of sertraline on hERG K<sup>+</sup> channel currents. Voltage-dependent effects of sertraline on hERG channels were determined using the protocol shown in the inset of <xref ref-type="fig" rid="F2-kjpp-16-327">Fig. 2A</xref>. Representative hERG current traces in the absence and presence of sertraline (1 &#xB5;M) are, respectively, shown in <xref ref-type="fig" rid="F2-kjpp-16-327">Fig. 2A</xref>. Both activating currents measured at the end of the depolarizing step (<xref ref-type="fig" rid="F2-kjpp-16-327">Fig. 2B</xref>) and peak tail current amplitude (<xref ref-type="fig" rid="F2-kjpp-16-327">Fig. 2C</xref>) measured following the step to -40 mV were dramatically reduced by sertraline. As demonstrated in <xref ref-type="fig" rid="F2-kjpp-16-327">Fig. 2D</xref>, sertraline concentration-dependently inhibited hERG channel currents. Sertraline at concentrations of 1, 3, 10, and 30 &#xB5;M inhibited the <italic>I</italic><sub>Kr</sub> amplitude by 7.9&#xB1;1.9%, 24.2&#xB1;1.9%, 60.1&#xB1;2.7%, and 86.4&#xB1;1.4%, respectively (n=4). A non-linear fitting of the experimental values using Hill's equation revealed the 50% inhibitory concentration (IC<sub>50</sub>) of sertraline. The IC<sub>50</sub> and Hill coefficient were 0.7&#xB1;0.01 &#xB5;M and 1.3&#xB1;0.02, respectively.</p><p><xref ref-type="fig" rid="F3-kjpp-16-327">Fig. 3</xref> shows the effects of sertraline on the slowly activating outward K<sup>+</sup> current (<italic>I</italic><sub>Ks</sub>) in <italic>KCNQ1/KCNE1</italic> cDNA-transfected HEK293 cells. Sertraline inhibited <italic>I</italic><sub>Ks</sub> concentration-dependently. Sertraline at concentrations of 1, 3, 10, and 30 &#xB5;M reduced the <italic>I</italic><sub>Ks</sub> amplitude by 1.5&#xB1;3.8%, 10.3&#xB1;2.5%, 36.6&#xB1;3.5%, and 84.0&#xB1;5.6%, respectively (n=4). The IC<sub>50</sub> value calculated from the concentration-response curve was 12.3&#xB1;1.3 &#xB5;M, and the Hill coefficient was 2.5&#xB1;0.1.</p><p>And we also investigated the effects of sertraline on <italic>I</italic><sub>K1</sub> in <italic>KCNJ2</italic> cDNA-transfected HEK293 cells (<xref ref-type="fig" rid="F4-kjpp-16-327">Fig. 4</xref>). Sertraline at concentrations of 1, 3, 10, and 30 &#xB5;M reduced the <italic>I</italic><sub>K1</sub> amplitude by 0.7&#xB1;2.7%, 9.4&#xB1;1.1%, 45.7&#xB1;3.9%, and 92.5&#xB1; 1.2%, respectively (n=4). The IC<sub>50</sub> value calculated from the concentration-response curve was 10.5&#xB1;0.5 &#xB5;M, and the Hill coefficient was 2.1&#xB1;0.2.</p></sec><sec><title>Effect of sertraline on <italic>I</italic><sub>Na</sub></title><p><xref ref-type="fig" rid="F5-kjpp-16-327">Fig. 5</xref> shows the inhibitory effect of sertraline on <italic>I</italic><sub>Na</sub> in SCN5A-transfected HEK293 cells. Sertraline at concentrations of 0.1, 1, 3, and 10 &#xB5;M reduced the <italic>I</italic><sub>Na</sub> amplitude by 12.8&#xB1;1.8%, 19.5&#xB1;3.6%, 33.9&#xB1;5.0%, and 62.0&#xB1;7.6%, respectively (n=4). The IC<sub>50</sub> value calculated from the concentration-response curve was 6.1&#xB1;1.7 &#xB5;M, and the Hill coefficient was 0.7&#xB1;0.2 (<xref ref-type="fig" rid="F5-kjpp-16-327">Fig. 5B</xref>). <xref ref-type="fig" rid="F5-kjpp-16-327">Fig. 5C</xref> demonstrated the current-voltage relationship (I-V curve) of <italic>I</italic><sub>Na</sub> in the contro1 and presence of 3 &#xB5;M sertraline. Sertraline exerted a concentration-dependent inhibition of <italic>I</italic><sub>Na</sub>. The peak amplitidude was observed similary observed at around -50 mV.</p></sec><sec><title>Effect of sertraline on <italic>I</italic><sub>Ca</sub></title><p><xref ref-type="fig" rid="F6-kjpp-16-327">Fig. 6</xref> shows the effects of sertraline on the <italic>I</italic><sub>Ca</sub> in freshly isolated rat ventricular myocytes. Sertraline at concentrations of 1, 3, 10, and 30 &#xB5;M reduced the <italic>I</italic><sub>Ca</sub> amplitude by 6.7&#xB1;3.5%, 18.6&#xB1;3.6%, 53.5&#xB1;4.1%, and 99.4&#xB1;5.2%, respectively (n=4). The IC<sub>50</sub> value calculated from the concentration-response curve was 2.6&#xB1;0.4 &#xB5;M, and the Hill coefficient was 1.9&#xB1;0.5 (<xref ref-type="fig" rid="F6-kjpp-16-327">Fig. 6B</xref>).</p></sec></sec><sec sec-type="discussion"><title>DISCUSSION</title><p>The use of SSRIs has increased dramatically [<xref ref-type="bibr" rid="B17-kjpp-16-327">17</xref>], because of their superior safety profile compared to TCAs [<xref ref-type="bibr" rid="B18-kjpp-16-327">18</xref>]. Several studies have shown that the SSRIs affected various ion channels including volume-regulated anion channels (VRAC) in endothelial cells [<xref ref-type="bibr" rid="B19-kjpp-16-327">19</xref>], rat Nav1.4 (encoded by SCN4A both in GH3 cells and heterologously expressed in HEK293) [<xref ref-type="bibr" rid="B20-kjpp-16-327">20</xref>], and G protein-activated inwardly rectifying K<sup>+</sup> (GIRK) channels expressed in Xenopus oocyte [<xref ref-type="bibr" rid="B21-kjpp-16-327">21</xref>].</p><p>In the present study, we investigated the effect of sertraline on <italic>hERG</italic> (for <italic>I</italic><sub>Kr</sub>), <italic>KCNQ1/KCNE1</italic> (for <italic>I</italic><sub>Ks</sub>), <italic>KCNJ2</italic> (for <italic>I</italic><sub>K1</sub>), and <italic>SCN5A</italic> cDNA-transfected HEK293 cells and native rat ventricular myocyte for L-type calcium currents (<italic>I</italic><sub>Ca</sub>). All potassium channel currents tested in this study were inhibited by sertraline in concentration-dependent manner. Sertraline is a potent blocker of hERG current with an IC<sub>50</sub> of 0.7 &#xB5;M (<xref ref-type="fig" rid="F2-kjpp-16-327">Fig. 2</xref>), and of <italic>I</italic><sub>Ks</sub> (<xref ref-type="fig" rid="F3-kjpp-16-327">Fig. 3</xref>) and <italic>I</italic><sub>K1</sub> (<xref ref-type="fig" rid="F4-kjpp-16-327">Fig. 4</xref>) as well. The rank order of potency was <italic>hERG</italic>&gt;<italic>I</italic><sub>K1</sub>&gt;<italic>I</italic><sub>Ks</sub> with IC<sub>50</sub> values of 0.7, 10.5, and 15.2 &#xB5;M, respectively.</p><p>It is well known that K<sup>+</sup> channels play an important role in the repolarization of mammalian cardiac action potential in different species, including human. Specially, <italic>hERG</italic> channel current, mediating the rapidly activating delayed rectifier K<sup>+</sup> current (<italic>I</italic><sub>Kr</sub>) in the heart [<xref ref-type="bibr" rid="B22-kjpp-16-327">22</xref>], has a key role in repolarization of the cardiac action potential and in controlling action potential duration. Following multiple oral once-daily doses of 200 mg, the mean peak plasma concentration (Cmax) of sertraline is 0.19 &#xB5;g/ml, approximately 0.6 &#xB5;M [<xref ref-type="bibr" rid="B23-kjpp-16-327">23</xref>]. This value is similar with the IC<sub>50</sub> value of the hERG on our study. A 30-fold margin between the effective therapeutic plasma concentration and the IC<sub>50</sub> value for <italic>I</italic><sub>Kr</sub> block has been suggested as margin of safety relative to the risk of TdP for all drugs with <italic>I</italic><sub>Kr</sub>-blocking properties [<xref ref-type="bibr" rid="B24-kjpp-16-327">24</xref>]. In this respect, potentially harmful effect of sertraline on cardiac action potential should be considered afterwards.</p><p>It is well known that the congenital dysfunction of <italic>I</italic><sub>Ks</sub> caused by genetic mutations in the KCNQ1 or KCNE1 gene is linked to congenital long QT syndrome subtype LQT1 or LQT5 [<xref ref-type="bibr" rid="B25-kjpp-16-327">25</xref>]. Electrical remodeling in the diseased hearts, like as myocardial infarction [<xref ref-type="bibr" rid="B26-kjpp-16-327">26</xref>], chronic heart failure [<xref ref-type="bibr" rid="B27-kjpp-16-327">27</xref>], and cardiac hypertrophy [<xref ref-type="bibr" rid="B28-kjpp-16-327">28</xref>], is often linked with a reduction of <italic>I</italic><sub>Ks</sub>. In case of <italic>I</italic><sub>K1</sub>, the <italic>I</italic><sub>K1</sub>-related heart rhythm disturbances also known [<xref ref-type="bibr" rid="B29-kjpp-16-327">29</xref>] but it's less prevalent than those associated with <italic>I</italic><sub>Kr</sub> or <italic>I</italic><sub>Ks</sub>.</p><p>In addition to K<sup>+</sup> channels, sertraline also inhibited <italic>I</italic><sub>Na</sub> and <italic>I</italic><sub>Ca</sub>, and the IC<sub>50</sub> value is 6.1 and 2.6 &#xB5;M, respectively. Because the voltage-gated sodium channel is important to the upstroke phase of the action potential in most excitable cells, the malfunction of the <italic>I</italic><sub>Na</sub> cause inherited arrhythmogenic syndromes including long QT syndrome subtype 3 (LQT3), Brugada syndrome, and several cardiac conduction defects (CCD) [<xref ref-type="bibr" rid="B30-kjpp-16-327">30</xref>]. Cardiac L-type calcium channel mutations can also induce severe arrhythmic disorder [<xref ref-type="bibr" rid="B31-kjpp-16-327">31</xref>].</p><p>Although SSRIs (e.g. fluoxetine, fluvoxamine, paroxetine, sertraline, citalopram, and venlafaxin) are considered to be free from the cardiotoxicity, there are increasing number of case reports on various arrhythmias and syncope associated with the use of SSRIs including sertraline [<xref ref-type="bibr" rid="B32-kjpp-16-327">32</xref>-<xref ref-type="bibr" rid="B35-kjpp-16-327">35</xref>]. The study with spontaneously beating isolated guinea-pig atria, the sertraline caused a dose-dependent decrease in the rate contractions and in the contractile force, which decreased ouabain-induced arrhythmia [<xref ref-type="bibr" rid="B36-kjpp-16-327">36</xref>]. According to our present result, this effect probably owes to the inhibition of cardiac Na<sup>+</sup> and Ca<sup>2+</sup> channels.</p><p>When ECG effects of sertraline were investigated in an adult outpatient population, sertraline had no significant effect on the parameters such as RR, PR, QRS, and QT intervals [<xref ref-type="bibr" rid="B10-kjpp-16-327">10</xref>]. However, several reports have shown clinically significant QT prolongation during sertraline therapy [<xref ref-type="bibr" rid="B37-kjpp-16-327">37</xref>,<xref ref-type="bibr" rid="B38-kjpp-16-327">38</xref>]. Recently, the case report for QT interval prolongation after an overdose of sertraline was released [<xref ref-type="bibr" rid="B31-kjpp-16-327">31</xref>]. In addition, cardiac arrest [<xref ref-type="bibr" rid="B39-kjpp-16-327">39</xref>] and tachycardia [<xref ref-type="bibr" rid="B40-kjpp-16-327">40</xref>] during sertaline therapy was also reported on several case.</p><p>According to this investigation, the QT prolongation and sudden cardiac death can be induced by the effect of sertraline on several major ion channel of involving cardiac repolarization. Cardiac action potential was made by net of the various ion channels like as K<sup>+</sup> channel terminating action potential duration and Na<sup>+</sup> or Ca<sup>2+</sup> channels prolonging the action potential duration. Some drugs modified these ion channels could induce change of the cardiac action potential duration and QT interval, resulted in cardiac arrhythmia. However, interactions with multiple cardiac ion channels can either enhance or compromise the prolongation of action potential duration and QT. Therefore, in general, an integrated assessment of in vitro and in vivo data is required in order to predict the ventricular arrhythmogenic risk of a new drug candidate in humans.</p><p>Taken together with previous <italic>in vivo</italic> data, the contribution of the inhibitory effects of sertraline on cardiac ion channels to the therapeutic action of sertraline cannot be excluded. Therefore, the patients taking sertraline especially with risks of long QT syndrome should be cautiously monitored for clinical signs of cardiac arrhythmia.</p></sec></body><back><ack><title>ACKNOWLEDGEMENTS</title><p>This research was supported by the Basic Science Research Program through the National. 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2</label><caption><p>The effect of sertraline on human ether-a-go-go-related <italic>gene</italic> (<italic>hERG</italic>) currents expressed in HEK293 cells. (A) Current responses to step voltage pulses of -80 to +50 mV in 10 mV steps from a holding potential of -80 mV (upper panel). Center: absence of sertraline, control condition; lower: in the presence of 1 &#xB5;M sertraline. (B) Voltage-relationship of the hERG current measured at the end of depolarizing pulses against the pulse potential in the control and 1 &#xB5;M sertraline. (C) Voltage-relationship of the tail current measured at its peak just after repolarization in control and after application of 1 &#xB5;M sertraline. Data were fitted using Boltzmann equation. (D) Dose-response relationship for inhibition of hERG currents by serial application of 0.1, 0.3, 1, and 3 &#xB5;M sertraline (n=4). The relationship was fitted to a Hill equation. The IC<sub>50</sub> and Hill coefficient were 0.7 &#xB5;M and 1.3, respectively.</p></caption><graphic xlink:href="kjpp-16-327-g002"/></fig><fig id="F3-kjpp-16-327" position="float"><label>Fig. 3</label><caption><p>The effect of sertraline on <italic>I</italic><sub>Ks</sub> expressed in HEK293 cells. (A) The cells were depolarized to +60 mV from a holding potential of -80 mV, followed by a 3-s repolarization back to -40 mV (upper). Representative current traces under control condition and after application of 1, 3, 10, and 30 &#xB5;M sertraline (lower). (B) Concentration response curve for inhibition of <italic>I</italic><sub>Ks</sub> by serial application of 1, 3, 10, and 30 &#xB5;M sertraline. The relationship was fitted to a Hill equation. The IC<sub>50</sub> and Hill coefficient were 12.3 &#xB5;M and 2.5, respectively (n=4). (C) Voltage-relationship of the peak <italic>I</italic><sub>Ks</sub> measured at the end of depolarizing pulses against the pulse potential in the control and 10 &#xB5;M sertraline (n=4).</p></caption><graphic xlink:href="kjpp-16-327-g003"/></fig><fig id="F4-kjpp-16-327" position="float"><label>Fig. 4</label><caption><p>The effect of sertraline on <italic>I</italic><sub>K1</sub> expressed in HEK293 cells. (A) The <italic>I</italic><sub>K1</sub> was elicited by the voltage of a one-step pulse (lasting 1 s) from -80 mV to -120 mV (upper). Representative current traces under control condition and after application of 1, 3, 10, and 30 &#xB5;M sertraline (lower). (B) Concentration response curve for inhibition of <italic>I</italic><sub>K1</sub> by serial application of 1, 3, 10, and 30 &#xB5;M sertraline. The relationship was fitted to a Hill equation. The IC<sub>50</sub> and Hill coefficient were 10.5 &#xB5;M and 2.1, respectively (n=4). (C) Voltage-relationship of the <italic>I</italic><sub>K1</sub> measured at the end of hyperpolarizing pulses against the pulse potential in the control and 10 &#xB5;M sertraline (n=4).</p></caption><graphic xlink:href="kjpp-16-327-g004"/></fig><fig id="F5-kjpp-16-327" position="float"><label>Fig. 5</label><caption><p>The effect of sertraline on <italic>I</italic><sub>Na</sub> expressed in HEK293 cells. (A) The peak inward <italic>I</italic><sub>Na</sub> was generated by pulses of 20 ms duration to -40 mV from a holding potential of -100 mV delivered at a frequency of 10 Hz (upper). Representative current traces under control condition and after application of 0.1, 1, 3, and 10 &#xB5;M sertraline (lower). (B) Concentration response curve for inhibition of <italic>I</italic><sub>Na</sub> by serial application of 0.1, 1, 3, and 10 &#xB5;M sertraline. The relationship was fitted to a Hill equation. The IC<sub>50</sub> and Hill coefficient were 6.1 &#xB5;M and 0.7, respectively (n=4). (C) Voltage-relationship of the <italic>I</italic><sub>Na</sub> measured at its peak just after depolarization pulse against the pulse potential in the control and 3 &#xB5;M sertraline.</p></caption><graphic xlink:href="kjpp-16-327-g005"/></fig><fig id="F6-kjpp-16-327" position="float"><label>Fig. 6</label><caption><p>The effect of sertraline on <italic>I</italic><sub>Ca</sub> in rat ventricular myocytes. (A) The peak of the <italic>I</italic><sub>Ca</sub> was induced by a single 500 ms voltage pulse to 0 mV from the holding potential of -80 mV (upper). Representative current traces under control condition and after application of 0.1, 1, 3, and 10 &#xB5;M sertraline (lower). (B) Concentration response curve for inhibition of <italic>I</italic><sub>Ca</sub> by serial application of 0.1, 1, 3, and 10 &#xB5;M sertraline. The relationship was fitted to a Hill equation. The IC<sub>50</sub> and Hill coefficient were 2.6 &#xB5;M and 1.9, respectively (n=4).</p></caption><graphic xlink:href="kjpp-16-327-g006"/></fig></floats-group></article>
