Publications by authors named "Bloehs R"

The transient outward current I(to) is an important determinant of the early repolarization phase. I(to) and its molecular basis Kv4.3 are regulated by adrenergic pathways including protein kinase C.

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The antidepressant amoxapine has been linked to cases of QT prolongation, acute heart failure, and sudden death. Inhibition of cardiac hERG (Kv11.1) potassium channels causes prolonged repolarization and is implicated in apoptosis.

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Two-pore-domain (K(2P)) potassium channels mediate background potassium currents, stabilizing resting membrane potential and expediting action potential repolarization. In the heart, K(2P)3.1 (TASK-1) channels are implicated in the cardiac plateau current, I ( KP ).

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The zebrafish is increasingly recognized as an animal model for the analysis of hERG-related diseases. However, functional properties of the zebrafish orthologue of hERG have not been analyzed yet. We heterologously expressed cloned ERG channels in Xenopus oocytes and analyzed biophysical properties using the voltage clamp technique.

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Background And Purpose: Atomoxetine is a selective noradrenaline reuptake inhibitor, recently approved for the treatment of attention-deficit/hyperactivity disorder. So far, atomoxetine has been shown to be well tolerated, and cardiovascular effects were found to be negligible. However, two independent cases of QT interval prolongation, associated with atomoxetine overdose, have been reported recently.

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The renal inward rectifier potassium channel Kir7.1 has been proposed to be functionally important for tubular K(+) recycling and secretion. This study investigated the regulation of Kir7.

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Article Synopsis
  • K2P channels are important for controlling electrical activity in cells by stabilizing membrane potential and influencing repolarization.
  • Recent research has shown that protein tyrosine kinases (TKs) can regulate these channels, specifically in their role in modulating potassium currents.
  • The study found that the TK inhibitor genistein inhibits specific K2P channel currents, indicating a new way to manipulate background potassium currents in cells.
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The antidepressant mianserin exhibits a tetracyclic structure that is different from typical tricyclic antidepressants (TCA) and that of selective serotonin reuptake inhibitors. In comparison to the older TCA, mianserin has been shown to have a superior risk profile regarding proarrhythmic effects, both in vitro and in vivo. However, the underlying molecular electrophysiological basis has not been elucidated to date.

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Article Synopsis
  • Doxazosin, an antihypertensive drug, is linked to a higher risk of congestive heart failure and induces apoptosis (cell death) in cardiomyocytes.
  • The drug blocks hERG K(+) channels, which are plasma membrane receptors, specifically affecting human embryonic kidney (HEK) cells that express these channels.
  • The study reveals that doxazosin's binding to hERG may initiate apoptotic processes, suggesting a new understanding of how some drugs could contribute to heart failure.
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  • The study investigates how adrenergic alpha(1) receptors inhibit I(K1) currents, which is linked to heart rhythm issues (arrhythmogenesis), particularly focusing on Kir2.x channel subunits (Kir2.1, Kir2.2, Kir2.3).
  • Significant findings indicate that while Kir2.1 remains unaffected, Kir2.2 exhibits a pronounced inhibition when activated by these receptors, with this inhibition not being impacted by common protein kinase inhibitors.
  • The mechanism behind this regulation appears to involve src kinases, as shown by the efficacy of specific inhibitors on both co-expressed channels and native cardiomyocytes, suggesting a critical pathway in cardiac function modulation.
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  • Orphenadrine, an anticholinergic drug used for Parkinson's, has been linked to serious heart issues like QT prolongation and Torsade-de-Pointes tachycardia.
  • Orphenadrine inhibits HERG channels, which play a critical role in heart rhythm, with an IC(50) of 0.85 µM, and this effect is fast and reversible.
  • The study indicates that orphenadrine's interference with HERG channels may explain its proarrhythmic side effects, providing important insights for its safety profile.
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The catechin EGCG is the main flavonoid compound of green tea and has received enormous pharmacological attention because of its putative beneficial health effects. This study investigated for the first time the effect of EGCG on hERG channels, the main pharmacological target of drugs that cause acquired long QT syndrome. Cloned hERG channels were expressed in Xenopus oocytes and in HEK293 cells.

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To elucidate the ionic mechanism of endothelin-1 (ET-1)-induced focal ventricular tachyarrhythmias, the regulation of I(K1) and its main molecular correlates, Kir2.1, Kir2.2 and Kir2.

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Ajmaline is a class Ia anti-arrhythmic drug used in several European countries and Japan as first-line treatment for ventricular tachyarrhythmia. Ajmaline has been reported to induce cardiac output (QT) prolongation and to inhibit cardiac potassium currents in guinea pig cardiomyocytes. In order to elucidate the molecular basis of these effects, we examined effects of ajmaline on human ether a-go-go related gene HERG potassium channels.

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Patients with cardiac disease typically develop life-threatening ventricular arrhythmias during physical or emotional stress, suggesting a link between adrenergic stimulation and regulation of the cardiac action potential. Human ether-a-go-go related gene (hERG) potassium channels conduct the rapid component of the repolarizing delayed rectifier potassium current, I(Kr). Previous studies have revealed that hERG channel activation is modulated by activation of the beta-adrenergic system.

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Trazodone is an atypical antidepressant that is commonly used in the treatment of affective disorders. There have repeatedly been reports of cardiac arrhythmia associated with this drug and concerns have been raised regarding the cardiac safety of trazodone. However, interaction with HERG channels as a main factor of cardiac side effects has not been studied to date.

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