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Uta C Hoppe

Publications and source records attributed to Uta C Hoppe.

At least 19 recordsLinked to original sources

Impact of testosterone on cardiac L-type calcium channels and Ca2+ sparks: acute actions antagonize chronic effects.

While androgens generally have been associated with an increased cardiovascular risk, recent studies indicate potential beneficial acute effects of testosterone. However, detailed evaluation of chronic and acute actions of testosterone on the function of cardiac I(Ca,L) and intracellular Ca2+ handling is limited. To clarify this situation we performed whole-cell and single-channel analysis of I(Ca,L), recordings of Ca2+ sparks, measurements of contractility and quantitative real-time RT-PCR in rat cardiomyocytes following testosterone pretreatment and acute testosterone application. Pretreatment with testosterone 100 nM for 24-30 h increased whole-cell I(Ca,L) from 3.8+/-0.8 pA/pF (n=10) to 10.1+/-0.31 pA/pF (n=9) at +10 mV (p<0.001). Increase of I(Ca,L) density was caused by both, increased expression levels of the alpha 1C subunit of L-type calcium channel and a pronounced increment of the single-channel activity (availability 81.8+/-3.15% versus 37.1+/-7.01%; open probability 12.8+/-3.09% versus 1.0+/-0.62%, p<0.01). Moreover, testosterone pretreatment significantly increased the frequency of Ca2+ sparks and improved myocytes contractility without altering SR Ca2+ load. All chronic effects could be inhibited by flutamide. In contrast acute testosterone administration significantly reduced I(Ca,L) density. Indeed, on the single-channel level acute testosterone application completely reversed the chronic testosterone-mediated effects, and antagonized the chronic testosterone effects on Ca2+ spark frequency, which was unaffected by flutamide. Thus, testosterone pretreatment activates I(Ca,L) via nuclear receptor-mediated pathways, while testosterone acutely blocks I(Ca,L) in a direct manner. Thus, testosterone chronically affects the basal level of intracellular Ca2+ handling, which in addition rapidly may be modulated by acute changes of hormone levels.

Animals↗

Long-term and immediate effect of testosterone on single T-type calcium channel in neonatal rat cardiomyocytes.

In the cardiovascular system, T-type calcium channels play an important role for the intracellular calcium homeostasis and spontaneous pacemaker activity and are involved in the progression of structural heart diseases. Androgens influence the cardiovascular physiology and pathophysiology. However, their effect on native T-type calcium currents (I(Ca,T)) remains unclear. To test the chronic effect of testosterone on the cardiac I(Ca,T), cultured neonatal rat ventricular cardiomyocytes were treated with testosterone (1 nM-10 microM) for 24-30 h. Current measurements were performed after testosterone washout to exclude any acute testosterone effects. Testosterone (100 nm) pretreatment significantly increased whole-cell I(Ca,T) density from 1.26 +/- 0.48 pA/pF (n = 8) to 5.06 +/- 1.75 pA/pF (n = 7; P < 0.05) and accelerated beating rate. This was attributed to both increased expression levels of the pore-forming subunits Ca(v)3.1 and Ca(v)3.2 and increased T-type single-channel activity. On single-channel level, the increase of the ensemble average current by testosterone vs. time-matched controls was due to an increased availability (58.1 +/- 4.2 vs. 21.5 +/- 4.0%, P < 0.01) and open probability (2.78 +/- 0.29 vs. 0.85 +/- 0.23%, P < 0.01). Cotreatment with the selective testosterone receptor antagonist flutamide (10 mum) prevented these chronic testosterone-induced effects. Conversely, acute application of testosterone (10 microM) decreased T-type single-channel activity in testosterone pretreated cells by reducing the open probability (0.78 +/- 0.13 vs. 2.91 +/- 0.38%, P < 0.01), availability (23.6 +/- 3.3 vs. 57.6 +/- 4.5%, P < 0.01), and peak current (-20 +/- 4 vs. -58 +/- 4 fA, P < 0.01). Flutamide (10 microM) did not abolish the testosterone-induced acute block of T-type calcium channels. Our results indicate that long-term testosterone treatment increases, whereas acute testosterone decreases neonatal rat T-type calcium currents. These effects seem to be mediated by a genomic chronic stimulation and a nongenomic acute inhibitory action.

Animals↗

Effect of cardiac resynchronization on the incidence of atrial fibrillation in patients with severe heart failure.

BACKGROUND: Atrial fibrillation/flutter (AF) and heart failure often coexist; however, the effect of cardiac resynchronization therapy (CRT) on the incidence of AF and on the outcome of patients with new-onset AF remains undefined. METHODS AND RESULTS: In the CArdiac REsynchronisation in Heart Failure (CARE-HF) trial, 813 patients with moderate or severe heart failure were randomly assigned to pharmacological therapy alone or with the addition of CRT. The incidence of AF was assessed by adverse event reporting and by ECGs during follow-up, and the impact of new-onset AF on the outcome and efficacy of CRT was evaluated. By the end of the study (mean duration of follow-up 29.4 months), AF had been documented in 66 patients in the CRT group compared with 58 who received medical therapy only (16.1% versus 14.4%; hazard ratio 1.05; 95% confidence interval, 0.73 to 1.50; P=0.79). There was no difference in the time until first onset of AF between groups. Mortality was higher in patients who developed AF, but AF was not a predictor in the multivariable model (hazard ratio 1.17; 95% confidence interval, 0.82 to 1.67; P=0.37). In patients with new-onset AF, CRT significantly reduced the risk for all-cause mortality and all other predefined end points and improved ejection fraction and symptoms (no interaction between AF and CRT; all P>0.2). CONCLUSIONS: Although CRT did not reduce the incidence of AF, CRT improved the outcome regardless of whether AF developed.

Aged↗

Correlation between serial measurements of N-terminal pro brain natriuretic peptide and ambulatory cardiac filling pressures in outpatients with chronic heart failure.

BACKGROUND: Serial measurements of N-terminal pro brain natriuretic peptide (NT-proBNP) have been suggested for the management of outpatients with chronic heart failure (CHF). The relationship between NT-proBNP plasma levels and central haemodynamic parameters in this setting is not known. METHODS: In 19 outpatients with CHF, NT-proBNP was related to central haemodynamic information, continuously measured with an implanted haemodynamic monitor (IHM) during 24 h of daily living activities ("24 h") and during supine rest ("rest"). In 13 patients, three to seven serial measurements were obtained with a mean time interval of 39 days (range 19-113). RESULTS: At the first visit (n=19), NT-proBNP plasma levels were dispersed over a wide range of filling pressures and not correlated with the 24 h median of the right ventricular systolic pressure (RVSP) and the estimated pulmonary artery pressure (ePAD). However, in the individual patient, serial measurements yielded significant positive correlations between NT-proBNP and RVSP (p=0.006) and ePAD (p=0.001). During "24 h" compared with "rest", the median RVSP and ePAD were elevated by 20+/-16% and 32+/-18%, respectively, and corresponded better with NT-proBNP (p<0.05). CONCLUSION: In outpatients with CHF, single measurements of NT-proBNP are not correlated with cardiac filling pressures. However, serial measurements of NT-proBNP in each individual patient show a significant positive correlation with central haemodynamic parameters and reflect changes in the haemodynamic state over time.

Adult↗

[Cardiac disease in patients with tumors and tumor therapy].

Cardiac disease may occur as direct complications of heart tumors or indirect complications of malignancies related to antineoplastic therapy. While primary cardiac neoplasias are rare, metastases to various cardiac structures are common. Cardiac tumors may cause a wide variety of clinical signs and symptoms. Benign myxomas are the most common primary tumors and often can be cured by total excision. Nearly all primary cardiac malignancies are sarcomas with a poor prognosis. The cardiotoxicity of anticancer agents can lead to significant complications that can affect patients being treated for various noncardiac neoplasias. Cancer treatment, most frequently anthracyclines, but also trastuzumab, cyclophosphamide and others may compromise cardiac function. The severity of such toxicity depends on many factors such as the molecular site of action, the immediate and cumulative dose, the method of administration, the presence of any underlying cardiac condition, and the patient's demographics. Moreover, toxicity can be affected by current or previous treatment with other antineoplastic agents or by concomitant irrradiation. Cardiotoxic effects can occur immediately during administration of the drug, or they may not manifest themselves until months or years after the patient has been treated. Radiation ports that include the heart may produce late coronary artery disease or constrictive pericarditis. Since cardiovascular disease and cancer are both common, precise knowledge of therapeutic interactions and complications is warranted.

Antineoplastic Agents↗

Angiotensin II-induced changes of calcium sparks and ionic currents in human atrial myocytes: potential role for early remodeling in atrial fibrillation.

AIMS: Atrial angiotensin II (ANG II) levels have been shown to be increased in atrial fibrillation (AF). The purpose of the study was to evaluate a potential role of ANG II in the early remodeling and susceptibility to chronicization of AF. METHODS AND RESULTS: Isolated human atrial myocytes were incubated in ANG II and/or angiotensin type 1 receptor blocker candesartan. ANG II markedly increased the frequency of spontaneous Ca(2+) sparks, spark full duration, time to peak Ca(2+) fluorescence and decay time measured by confocal imaging. Sarcoplasmic reticulum calcium content estimated by caffeine-evoked calcium release did not differ between ANG II-treated cells and controls. Patch-clamp recordings revealed that ANG II significantly decreased I(to) and increased I(Ca,L) current densities. Candesartan blocked these ANG II-mediated alterations. ANG II exhibited no effect on I(K1), I(Kur) and I(f) current size. Expression of connexin 40 and connexin 43 was not significantly changed by ANG II as assessed by immunohistochemistry and Western blot analysis. CONCLUSION: ANG II-induced alterations of calcium handling and electrophysiological changes in human atrial cells similar to those previously observed in the onset of AF. Prevention of these alterations by candesartan might constitute a useful pharmacological strategy for the treatment of AF.

Aged↗

Single-channel properties support a potential contribution of hyperpolarization-activated cyclic nucleotide-gated channels and If to cardiac arrhythmias.

BACKGROUND: The pacemaker current I(f) is present in atrial and ventricular myocytes. However, it remains controversial whether I(f) overexpression in diseased states might play a role for arrhythmogenesis, because first I(f) activation in whole-cell recordings hardly overlapped the diastolic voltage of working myocardium. METHODS AND RESULTS: To obtain further insight into I(HCN) and I(f) properties, we provide for the first time detailed single-channel analysis of heterologously expressed hyperpolarization-activated cyclic nucleotide-gated (HCN) isoforms and native human I(f). HCN subtypes differed significantly in single-channel amplitude, conductance, and activation kinetics. Interestingly, threshold potentials of HCN isoforms were more positive than would have been expected from whole-cell measurements. Single-channel properties of cells cotransfected with HCN2 and HCN4 were distinct from cells expressing HCN2 or HCN4 alone, demonstrating that different HCN isoforms can influence current properties of a single HCN channel complex, thus providing direct functional evidence for HCN heteromerization. Pooled data of homomeric and heteromeric HCN channels and of native I(f) extrapolated from maximum likelihood fits indicated a multistate gating scheme comprising 5 closed- and 4 open-channel states. Single-channel characteristics of I(f) in human atrial myocytes closely resembled those of HCN4 or HCN2+HCN4, supporting the hypothesis that native I(f) channels in atrial myocardium are heteromeric complexes composed of HCN4 and/or HCN2. Most interestingly, half-maximal activation of single-channel atrial I(f) (-68.3+/-4.9 mV; k=-9.9+/-1.5; n=8) was well within the diastolic voltage range of human atrial myocardium. CONCLUSIONS: These observations support a potential contribution of HCN/I(f) to the arrhythmogenesis of working myocardium under pathological conditions.

4-Aminopyridine↗

Testosterone induces cytoprotection by activating ATP-sensitive K+ channels in the cardiac mitochondrial inner membrane.

BACKGROUND: Whereas in the past, androgens were mainly believed to exert adverse effects on the cardiovascular system, recent experimental data postulate a benefit of testosterone for recovery of myocardial function after ischemia/reperfusion injury. Thus, we examined whether testosterone might improve myocardial tolerance to ischemia due to activation of mitochondrial (mitoK(ATP)) and/or sarcoplasmatic (sarcK(ATP)) K(ATP) channels. METHODS AND RESULTS: In a cellular model of ischemia, testosterone significantly decreased the rate of ischemia-induced death of cardiomyocytes that could be prevented by 5-hydroxydecainoic acid but was unaffected by the sarcK(ATP) blocker HMR1098 and the testosterone receptor antagonist flutamide. To index mitoK(ATP), mitochondrial flavoprotein fluorescence was measured. Testosterone induced a highly significant increase in mitochondrial flavoprotein fluorescence in intact myocytes and isolated mitoplasts that could be abolished by 5-hydroxydecainoic acid. Testosterone-mediated flavoprotein oxidation of mitoplasts was K+ dependent and ATP sensitive. In mitoplast-attached single-channel recordings, testosterone directly activated an ATP-sensitive K+ channel of the inner mitochondrial membrane. Addition of the K(ATP) channel opener diazoxide and pinacidil to the cytosolic solution activated the ATP-sensitive K+ current comparable to testosterone, whereas 5-hydroxydecainoic acid and glibenclamide inhibited the testosterone-induced current. Patch-clamp experiments of intact myocytes in whole-cell configuration did not demonstrate any effect of testosterone on sarcK(ATP) channels. CONCLUSIONS: Our results provide direct evidence for the existence of cardiac mitoK(ATP) and a link between testosterone-induced cytoprotection and activation of mitoK(ATP). Endogenous testosterone might play a more important role in recovery after myocardial infarction than is currently assumed.

Adenosine Triphosphate↗

Endothelin induces differentiation of ANP-EGFP expressing embryonic stem cells towards a pacemaker phenotype.

Currently, only limited insight into mechanisms promoting the differentiation and specification of the mammalian cardiac conduction system is available. Therefore, we established a murine embryonic stem (ES) cell line stably expressing the enhanced green fluorescent protein (EGFP) under the transcriptional control of the human atrial natriuretic peptide (ANP) promoter to further characterize the development of very early stages of the mammalian cardiac conduction tissue. The cardiac nature of ANP-EGFP positive cells was confirmed by immunostaining. In ANP-EGFP expressing ES cell-derived cardiomyocytes, a distinct sublineage of pacemaker cells could be identified. Pacemaker cells displayed a spindle shape and exhibited a higher spontaneous beating rate, faster If current activation and larger If current densities compared with triangular atrial-like cardiocytes. Exposure to endothelin-1 significantly increased the percentage of pacemaker-like cells without affecting their electrophysiological properties. These findings were corroborated by immunostaining with antibodies against connexin 40 and connexin 45, known markers for cardiac conduction tissue. Conversely, treatment of ANP-EGFP expressing ES cells with neuregulin-1 exhibited no effect on differentiation. These results indicate that ANP-EGFP expression enables the identification of ES cell-derived pacemaker cells by their fluorescence and morphology and that endothelin-1 promotes the development of ANP-EGFP positive cardiomyocytes to a pacemaker-like phenotype.

Animals↗

Andersen mutations of KCNJ2 suppress the native inward rectifier current IK1 in a dominant-negative fashion.

OBJECTIVE: The Andersen's syndrome is a hereditary disease, which is characterized by cardiac arrhythmias, periodic paralysis and dysmorphic features. Recently, mutations of the KCNJ2 gene, which encodes the inward rectifying potassium channel subunit Kir2.1, have been identified in affected individuals. However, the functional effects of these mutations have not yet been fully elucidated. METHODS AND RESULTS: To clarify this situation we generated known Andersen disease mutants of KCNJ2 which did not yield any measurable K(+) currents in CHO cells indicating that the Andersen mutants failed to form functional homomultimeric complexes. EGFP-tagged KCNJ2 wild-type and mutant channels distributed in a similar homogeneous pattern in the cell membrane suggesting that protein trafficking was not altered by the Andersen mutations but rather implicating that the mutations rendered the KCNJ2 channel non-functional. In heterologous coexpression experiments the Andersen mutants exerted a dominant-negative effect on wild-type KCNJ2. However, the extent of suppression varied between the different KCNJ2 mutants. Given our results in CHO cells, we expressed the disease mutant KCNJ2-S136F in neonate rat cardiomyocytes using adenoviral gene transfer to test the effect of Andersen mutants on native I(K1). I(K1) density was indeed significantly reduced in KCNJ2-S136F-infected cells (n=9) compared to control cells (n=9) over a voltage range from -70 to -150 mV (P<0.05). CONCLUSION: These results support that Kir2.x channels are a critical component of native I(K1) in neonate rat cardiomyocytes and that a dominant-negative suppression of I(K1) in native cells is the pathophysiological correlate of the Andersen's syndrome.

Animals↗

Dominant-negative suppression of HCN channels markedly reduces the native pacemaker current I(f) and undermines spontaneous beating of neonatal cardiomyocytes.

BACKGROUND: The pacemaker current I(f) contributes to spontaneous diastolic depolarization of cardiac autonomic cells. In heterologous expression, HCN channels exhibit a hyperpolarization-activated inward current similar to I(f). However, the links between HCN genes and native I(f) are largely inferential, and it remains unknown whether I(f) is essential for cardiac pacing. METHODS AND RESULTS: To clarify this situation, we generated a GYG(402-404)AYA pore mutation of HCN2, which rendered the channel nonfunctional and suppressed wild-type HCN2 in a dominant-negative manner in Chinese hamster ovary cells. In addition, HCN2-AYA suppressed I(HCN4) in a dominant-negative manner when coexpressed with wild-type HCN4, indicating that the 2 isoforms HCN2 and HCN4 are able to coassemble to form heteromultimeric complexes. Given that HCN2 and HCN4 are the dominant HCN mRNA transcripts in neonatal rat ventricle, we expressed HCN2-AYA in neonatal cardiocytes using adenoviral gene transfer to test the effect of HCN suppression on native I(f). I(f) density was indeed reduced markedly, from 7.8+/-1.6 pA/pF (n=13) in control cells to 0.3+/-0.2 pA/pF (n=11) in HCN2-AYA-infected cells when measured at -130 mV (P<0.001). To probe the effect of HCN on cardiac pacing, we infected spontaneously beating neonatal monolayers with adenoviral vectors expressing wild-type and mutant HCN channels. Infection with HCN2 and HCN4 accelerated the beating rate significantly, to 230.5+/-8.6 bpm (n=12) and 223.5+/-12.3 bpm (n=10), respectively, compared with control cultures (83.4+/-4.5 bpm, n=13, P<0.001). Conversely, HCN2-AYA completely undermined spontaneous pacing of neonatal cardiocytes. CONCLUSIONS: HCN channels are the major molecular component of native I(f) and are critical for spontaneous beating of neonatal cardiomyocytes.

Adenoviridae↗

[Pharmacotherapy of chronic heart failure].

In recent years improvement of pharmacotherapy has led to a reduction of morbidity and mortality of heart failure patients. According to current evidence therapy of chronic heart failure should include ACE inhibitors and beta-Blockers to relieve symptoms and improve prognosis. In patients with fluid overload diuretics should be added. If symptoms persist or in patients with atrial fibrillation cardiac glycosides are indicated. Additional spironolactone can reduce mortality in patients with NYHA class III-IV. If ACE inhibitors are not tolerated or contraindicated AT1 receptor blockers should be considered as second line drugs. Evidence-based management strategies can improve prognosis in heart failure but medication has to be individualized for every patient depending on the presence of comorbid conditions.

Adrenergic beta-Antagonists↗