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Biomedical subjects

Hugo A Katus

Publications and source records attributed to Hugo A Katus.

At least 73 records · Page 4Linked to original sources

Usefulness of real-time myocardial perfusion imaging to evaluate alterations of myocardial blood flow in patients with stable angina pectoris undergoing elective percutaneous coronary interventions.

Release of cardiac enzymes has been reported in patients with stable angina who undergo elective percutaneous coronary intervention (PCI) and has been associated with adverse clinical outcomes. The aim of the present study was to investigate whether impaired microvascular integrity can be detected using myocardial contrast echocardiography in patients undergoing elective PCI, and whether it is related to the extent of postprocedural troponin T elevation. We investigated consecutive patients with stable angina (n = 19) who were scheduled for elective angioplasty with stent placement. Myocardial contrast echocardiography was performed before and 2 to 4 hours and 24 hours after coronary intervention. Contrast images were analyzed visually and quantitatively measuring the peak signal intensity (A) and the slope of the signal intensity rise (beta) in 16 myocardial segments. The product of A x beta was calculated in each segment to estimate the regional myocardial blood flow. Troponin T was collected serially before and 2 to 4 hours and 24 hours after PCI. Five patients (26%) had elevated troponin T 24 hours after PCI (range 0.03 to 0.46 microg/L). Eight patients (42%), including all 5 patients with elevated troponin T levels, demonstrated impaired microvascular integrity 2 to 4 hours after PCI in >or=2 myocardial segments (range 2 to 4) within the perfusion territory of the target vessel. Of the 11 patients without evidence of impaired myocardial perfusion by myocardial contrast echocardiography, none had elevated troponin T levels at follow-up. Quantitative analysis of myocardial blood flow showed that impaired perfusion after PCI was partially reversible. Thus, A x beta had decreased significantly at 2 to 4 hours after PCI (3.4 +/- 1.6 vs 8.8 +/- 3.4 dB/s baseline, p <0.01), reincreased after 24 hours (6.4 +/- 2.3 dB/s at 24 hours vs 3.4 +/- 1.6 dB/s at 2 to 4 hours, p <0.01), but did not return to baseline (8.8 +/- 3.4 dB/s at baseline vs 6.4 +/- 2.3 dB/s at 24 hours, p <0.01). The perfusion defect size 2 to 4 hours after PCI was closely related to the troponin T levels after 24 hours (r(2) = 0.80, p <0.0001). In conclusion, impaired microvascular integrity is partially present in patients with stable angina who undergo elective PCI, is partially reversible, and is closely related to the release of troponin T. Because judgment of interventional success has shifted downstream to tissue level perfusion, myocardial contrast echocardiography may be useful to monitor such alterations in myocardial tissue perfusion.

Aged↗

Risk stratification in cardiac amyloidosis: novel approaches.

Amyloidosis is a term for diseases with extracellular deposition of insoluble beta-fibrillar proteins in different organs. The heart is primarily involved in more than half of patients with immunoglobulin light-chain amyloidosis or hereditary amyloidosis and associated with poor prognosis. Different traditional diagnostic tools that have been described for risk stratification lack of sufficient sensitivity and specificity for patient survival. Until November 2004 in 50 consecutive patients with light chain amyloidosis and 15 patients with hereditary amyloidosis electrocardiography, echocardiography, Holter monitoring, cardiopulmonary exercise test, lung function testing, tilt-test, and laboratory investigations have been performed at our department. Cardiac amyloidosis was found in 32 patients. Interventricular septum (14.3+/-0.5 mm vs. 12.3+/-0.7 mm, P<0.05), plasma NT-proBNP (7154+/-2122 ng/l vs. 380+/-113 ng/l; P<0.01), cardiac Troponin T (0.105+/-0.030 vs. 0.019+/-0.010 microg/l; P<0.05) were increased in patients with cardiac amyloidosis as compared to patients light chain amyloidosis but no cardiac involvement. Maximal inspiratory (Pimax) and expiratory (Pemax) mouth pressure were decreased with CA compared to controls. Correlation of NT-proBNP and interventricular septum thickness (r=0.53, P=0.029) as well as and Pimax (r=0.72, P<0.01) or Pemax (r=0.69; P<0.01) was noticed. A correlation of grade of arrhythmias in Holter monitoring and syncopes was not observed. Cardiac involvement of amyloid disease carries a poor prognosis and is not well characterized by classic heart failure determinants. Heart transplantation based on novel risk markers including NT-proBNP might be a suitable therapeutic approach for patients with manifest cardiac amyloidosis, but will require alternative patient selection and listing criteria.

Amyloidosis↗

S100A1 gene therapy preserves in vivo cardiac function after myocardial infarction.

Myocardial infarction (MI) represents an enormous clinical challenge as loss of myocardium due to ischemic injury is associated with compromised left ventricular (LV) function often leading to acute cardiac decompensation or chronic heart failure. S100A1 was recently identified as a positive inotropic regulator of myocardial contractility in vitro and in vivo. Here, we explore the strategy of myocardial S100A1 gene therapy either at the time of, or 2 h after, MI to preserve global heart function. Rats underwent cryothermia-induced MI and in vivo intracoronary delivery of adenoviral transgenes (4 x 10(10) pfu). Animals received saline (MI), the S100A1 adenovirus (MI/AdS100A1), a control adenovirus (MI/AdGFP), or a sham operation. S100A1 gene delivery preserved global in vivo LV function 1 week after MI. Preservation of LV function was due mainly to S100A1-mediated gain of contractility of the remaining, viable myocardium since contractile parameters and Ca(2+) transients of isolated MI/AdS100A1 myocytes were significantly enhanced compared to myocytes isolated from both MI/AdGFP and sham groups. Moreover, S100A1 gene therapy preserved the cardiac beta-adrenergic inotropic reserve, which was associated with the attenuation of GRK2 up-regulation. Also, S100A1 overexpression reduced cardiac hypertrophy 1 week post-MI. Overall, our data indicate that S100A1 gene therapy provides a potential novel treatment strategy to maintain contractile performance of the post-MI heart.

Adenoviridae↗

Dominant-negative I(Ks) suppression by KCNQ1-deltaF339 potassium channels linked to Romano-Ward syndrome.

OBJECTIVE: Hereditary long QT syndrome (LQTS) is a genetically heterogeneous disease characterized by prolonged QT intervals and an increased risk for ventricular arrhythmias and sudden cardiac death. Mutations in the voltage-gated potassium channel subunit KCNQ1 induce the most common form of LQTS. KCNQ1 is associated with two different entities of LQTS, the autosomal-dominant Romano-Ward syndrome (RWS), and the autosomal-recessive Jervell and Lange-Nielsen syndrome (JLNS) characterized by bilateral deafness in addition to cardiac arrhythmias. In this study, we investigate and discuss dominant-negative I(Ks) current reduction by a KCNQ1 deletion mutation identified in a RWS family. METHODS: Single-strand conformation polymorphism analysis and direct sequencing were used to screen LQTS genes for mutations. Mutant KCNQ1 channels were heterologously expressed in Xenopus oocytes, and potassium currents were recorded using the two-microelectrode voltage clamp technique. RESULTS: A heterozygous deletion of three nucleotides (CTT) identified in the KCNQ1 gene caused the loss of a single phenylalanine residue at position 339 (KCNQ1-deltaF339). Electrophysiological measurements in the presence and absence of the regulatory beta-subunit KCNE1 revealed that mutant and wild type forms of an N-terminal truncated KCNQ1 subunit (isoform 2) caused much stronger dominant-negative current reduction than the mutant form of the full-length KCNQ1 subunit (isoform 1). CONCLUSION: This study highlights the functional relevance of the truncated KCNQ1 splice variant (isoform 2) in establishment and mode of inheritance in long QT syndrome. In the RWS family presented here, the autosomal-dominant trait is caused by multiple dominant-negative effects provoked by heteromultimeric channels formed by wild type and mutant KCNQ1-isoforms in combination with KCNE1.

Adult↗

Angiotensin II stimulates matrix metalloproteinase secretion in human vascular smooth muscle cells via nuclear factor-kappaB and activator protein 1 in a redox-sensitive manner.

The renin-angiotensin system contributes to atherogenesis. Matrix metalloproteinases (MMP) are thought to participate in plaque destabilization through degradation of extracellular matrix. This study tested whether angiotensin II (ANG II) induces MMP in human vascular smooth muscle cells (SMC). ANG II induced expression of MMP-1, -3, and -9, but not of MMP-2 in SMC. The expression of MMP-1, a key enzyme for collagen degradation, was studied in detail. SMC stimulated with ANG II concentration-dependently released enzymatically active MMP-1. The ANG II type 1 receptor antagonists losartan and candesartan blocked ANG-II-induced MMP-1 release. Inhibition experiments with actinomycin D suggest ANG-II-induced MMP-1 mRNA regulation at the transcriptional level. Decoy oligodeoxynucleotides against nuclear factor-kappaB and activator protein 1 inhibited MMP-1 secretion, demonstrating participation of these transcription factors in MMP-1 transcription. Stimulation of MMP-1 by ANG II depended on cyclooxygenase 2. The antioxidants pyrrolidine dithiocarbamate and N-acetylcysteine, the flavin protein inhibitor diphenylene iodonium, and the NADP(H) oxidase inhibitor apocynin blocked MMP-1 release, suggesting a redox-sensitive mechanism involving NADP(H) oxidase. The reactive oxygen species (ROS) donor 2,3-dimethoxy-1,4-naphthoquinone induced MMP-1 secretion and enhanced ANG-II-stimulated MMP-1 expression. These findings indicate that ROS may increase their own production by activation of NADP(H) oxidase. The capability of ANG II to induce functionally active MMP in human SMC may contribute to the altered plaque composition seen in complicated stages of atherosclerosis.

Angiotensin II↗

Interleukin-10 suppresses tissue factor expression in lipopolysaccharide-stimulated macrophages via inhibition of Egr-1 and a serum response element/MEK-ERK1/2 pathway.

Atherosclerosis is considered to be an inflammatory disease. Tissue factor (TF), a prothrombotic molecule expressed by various cell types within atherosclerotic plaques, is thought to play an essential role in thrombus formation after atherosclerotic plaque rupture. Recent studies suggest that the antiinflammatory cytokine interleukin-10 (IL-10) has many antiatherosclerotic properties. Therefore, the effects of IL-10 on TF expression in response to inflammation were investigated. Mouse macrophages were stimulated with lipopolysaccharide (LPS) in the presence or absence of IL-10. Pretreatment with IL-10 resulted in a 50% decrease in TF mRNA expression and TF promoter activity. Binding of early growth response gene-1 (Egr-1) to the consensus DNA sequence, a key transcriptional activator of TF expression in response to inflammation, and the expression of Egr-1 mRNA were also inhibited by IL-10. This inhibition was independent of the induction of suppressor of cytokine signaling protein-3 by IL-10. Macrophages that had been transfected with luciferase reporter constructs containing the murine Egr-1 5'-flanking sequence exhibited reduced reporter gene activity in response to LPS stimulation with IL-10 pretreatment. Studies with deletion constructs of the Egr-1 promoter identified the proximal serum response element SRE3 as a potential regulatory site for the IL-10 mediated suppression of Egr-1 expression. Furthermore, activation of the upstream signal-transduction elements, such as mitogen-activated protein kinase kinase (MEK) 1/2, extracellular signal-regulated kinase 1/2, and Elk-1 were also inhibited by IL-10 pretreatment. Taken together, these results demonstrate a pathway for the IL-10 mediated inhibition of TF expression during inflammation and may explain the antiatherosclerotic effects of IL-10.

Animals↗

Inhibition of cardiac HERG channels by grapefruit flavonoid naringenin: implications for the influence of dietary compounds on cardiac repolarisation.

Flavonoids are naturally occurring food ingredients that have been associated with reduced cardiovascular mortality in epidemiological studies. In a previous study, we demonstrated for the first time that flavonoids are inhibitors of cardiac human ether-à-go-go-related gene (HERG) channels. Furthermore, we observed that grapefruit juice induced mild QTc prolongation in healthy subjects. HERG blockade by grapefruit flavonoid naringenin is most likely to be the mechanism underlying this effect. Therefore, the electrophysiological properties of HERG blockade by naringenin were analysed in detail. HERG potassium currents expressed in Xenopus oocytes were measured with a two-microelectrode voltage clamp. Naringenin blocked HERG potassium channels with an IC50 value of 102.6 microM in Xenopus oocytes. The onset of blockade was fast. The effect was completely reversible upon wash-out. Naringenin binding to HERG required aromatic residue F656 in the putative pore binding site. Channels were blocked in the open and inactivated states but not in the closed states. Naringenin did not affect HERG current activation. However, the half maximal inactivation voltage was shifted by 14.9 mV towards more negative potentials and current inactivation at negative potentials was accelerated. No frequency dependence of blockade was observed. Naringenin inhibits HERG channels with pharmacological characteristics similar to those of well-known HERG antagonists. From a clinical point of view, this effect could have both proarrhythmic and antiarrhythmic consequences. This may have important implications for phytotherapy and for dietary recommendations for cardiologic patients. Therefore, electrophysiological effects of flavonoids deserve further investigation.

Animals↗

VEGF-PLCgamma1 pathway controls cardiac contractility in the embryonic heart.

The strength of the heart beat can accommodate in seconds to changes in blood pressure or flow. The mechanism for such homeostatic adaptation is unknown. We sought the cause of poor contractility in the heart of the embryonic zebrafish with the mutation dead beat. We find through cloning that this is due to a mutation in the phospholipase C gamma1 (plcgamma1) gene. In mutant embryos, contractile function can be restored by PLCgamma1 expression directed selectively to cardiac myocytes. In other situations, PLCgamma1 is known to transduce the signal from vascular endothelial growth factor (VEGF), and we show here that abrogation of VEGF also interferes with cardiac contractility. Somewhat unexpectedly, FLT-1 is the responsible VEGF receptor. We show that the same system functions in the rat. Blockage of VEGF-PLCgamma1 signaling decreases calcium transients in rat ventricular cardiomyocytes, whereas VEGF imposes a positive inotropic effect on cardiomyocytes by increasing calcium transients. Thus, the muscle of the heart uses the VEGF-PLCgamma1 cascade to control the strength of the heart beat. We speculate that this paracrine system may contribute to normal and pathological regulation of cardiac contractility.

Animals↗

The new selective I(Ks)-blocking agent HMR 1556 restores sinus rhythm and prevents heart failure in pigs with persistent atrial fibrillation.

BACKGROUND: Antiarrhythmic drugs for treatment of atrial fibrillation in patients with heart failure are limited by proarrhythmia and low efficacy. Experimental studies indicate that the pure I(Ks) blocking agents chromanol 293b and HMR 1556 prolong repolarization more markedly at fast than at slow heart rates and during beta-adrenergic stimulation. These properties may overcome some of the above quoted limitations. METHODS AND RESULTS: Ten domestic swine underwent pacemaker implantation (PM) and atrial burst pacing to induce persistent AF. Four days after onset of persistent AF, pigs were randomized to HMR 1556 (30 mg/kg, p.o., 10 days) or placebo. All animals receiving HMR 1556 converted to SR (5.2 +/- 1.9 days), whereas placebo pigs remained in AF. Pigs treated with placebo developed high ventricular rates (297 +/- 5 bpm) and severe heart failure, whereas pigs treated with HMR 1556 remained hemodynamically stable. Left ventricular ejection fraction on the day of euthanization was significantly lower in the placebo compared to the HMR 1556 group (30 +/- 4% vs. 69 +/- 5%, p < 0.005). Similar results were seen with epinephrine levels (placebo 1563 +/- 193 pmol/l vs. HMR 613 +/-196 pmol/l, p < 0.05). Right atrial monophasic action potentials were significantly longer in the HMR 1556 compared to the placebo group (230 +/- 7 ms vs. 174 +/- 13 ms, p < 0.05). CONCLUSIONS: The new I(Ks) blocker HMR 1556 efficiently and safely restores SR and prevents CHF in a model of persistent AF. Restoration of SR is most likely linked to a marked prolongation of atrial repolarization even at high heart rates.

Action Potentials↗

QTc prolongation by grapefruit juice and its potential pharmacological basis: HERG channel blockade by flavonoids.

BACKGROUND: A high intake of dietary flavonoids, which are abundant in fruits, vegetables, tea, and wine, is known to reduce cardiovascular mortality. The effects of flavonoids on cardiac electrophysiology, which theoretically may have both antiarrhythmic and proarrhythmic consequences, have not been studied systematically to date. METHODS AND RESULTS: We screened a broad spectrum of flavonoids for their inhibitory activity on HERG channels by using heterologous expression in Xenopus oocytes. At a concentration of 1 mmol/L, 10 compounds caused a significant inhibition of HERG currents, whereas 11 other flavonoids had no effect. The IC50 value for HERG block by naringenin, the most potent inhibitor, was 102.3 micromol/L in Xenopus oocytes and 36.5 micromol/L in HEK cells. To demonstrate the physiological relevance of these findings, we studied the effects of pink grapefruit juice, which contains large amounts of naringenin glycosides (>1000 micromol/L), in human volunteers. In 10 persons, we observed a peak QTc prolongation of 12.5+/-4.2 ms 5 hours after oral ingestion of 1 L of grapefruit juice. This effect was significant (P=0.02). CONCLUSIONS: We found a significant QTc prolongation by grapefruit juice in healthy volunteers, probably caused by block of HERG channels by flavonoids. These findings reveal new perspectives on the potential for dietary modification of cardiac electrophysiology.

Adult↗

Central role of PKCbeta in neointimal expansion triggered by acute arterial injury.

We tested the hypothesis that PKCbeta contributes to vascular smooth muscle cell (SMC) migration and proliferation; processes central to the pathogenesis of restenosis consequent to vascular injury. Homozygous PKCbeta null (-/-) mice or wild-type mice fed the PKCbeta inhibitor, ruboxistaurin, displayed significantly decreased neointimal expansion in response to acute femoral artery endothelial denudation injury compared with controls. In vivo and in vitro analyses demonstrated that PKCbetaII is critically linked to SMC activation, at least in part via regulation of ERK1/2 MAP kinase and early growth response-1. These data highlight novel roles for PKCbeta in the SMC response to acute arterial injury and suggest that blockade of PKCbeta may represent a therapeutic strategy to limit restenosis.

Animals↗

Distinct subcellular location of the Ca2+-binding protein S100A1 differentially modulates Ca2+-cycling in ventricular rat cardiomyocytes.

Calcium is a key regulator of cardiac function and is modulated through the Ca2+-sensor protein S100A1. S100 proteins are considered to exert both intracellular and extracellular functions on their target cells. Here we report the impact of an increased intracellular S100A1 protein level on Ca2+-homeostasis in neonatal ventricular cardiomyocytes in vitro. Specifically, we compare the effects of exogenously added recombinant S100A1 to those resulting from the overexpression of a transduced S100A1 gene. Extracellularly added S100A1 enhanced the Ca2+-transient amplitude in neonatal ventricular cardiomyocytes (NVCMs) through a marked decrease in intracellular diastolic Ca2+-concentrations ([Ca2+]i). The decrease in [Ca2+]i was independent of sarcoplasmic reticulum Ca2+-ATPase (SERCA2a) activity and was probably the result of an increased sarcolemmal Ca2+-extrusion through the sodium-calcium exchanger (NCX). At the same time the Ca2+-content of the sarcoplasmic reticulum (SR) decreased. These effects were dependent on the uptake of extracellularly added S100A1 protein and its subsequent routing to the endosomal compartment. Phospholipase C and protein kinase C, which are tightly associated with this subcellular compartment, were found to be activated by endocytosed S100A1. By contrast, adenoviral-mediated intracellular S100A1 overexpression enhanced the Ca2+-transient amplitude in NVCMs mainly through an increase in systolic [Ca2+]i. The increased Ca2+-load in the SR was based on an enhanced SERCA2a activity while NCX function was unaltered. Overexpressed S100A1 colocalized with SERCA2a and other Ca2+-regulatory proteins at the SR, whereas recombinant S100A1 protein that had been endocytosed did not colocalize with SR proteins. This study provides the first evidence that intracellular S100A1, depending on its subcellular location, modulates cardiac Ca2+-turnover via different Ca2+-regulatory proteins.

Animals↗

Endothelial inducible costimulator ligand expression is increased during human cardiac allograft rejection and regulates endothelial cell-dependent allo-activation of CD8+ T cells in vitro.

The role of costimulatory molecules other than CD80/CD86 in endothelial cell (EC)-dependent CD8(+) T cell activation including the generation of a distinct subset of endothelium-specific CTL (EC-CTL) remains unclear. Inducible costimulator (ICOS) and its ligand (ICOSL) are new members of the CD28 family mediating effector T cell differentiation and graft rejection in animal models. In this study endothelial ICOSL expression/regulation and effects on CD8(+) T cell allo-activation were analyzed. Constitutive expression of ICOSL was found on human EC. IL-1alpha and TNF-alpha induced ICOSL in an NF-kappaB-dependent manner on human umbilical vein endothelial cells (HUVEC). ICOS receptor was not detected on resting CD8(+) T cells but was induced in co-cultures with HUVEC. ICOSL blockade reduced CD8(+) T cell proliferation by 70% along with a marked decrease of IL-2 and IFN-gamma production in co-cultures with HUVEC. IL-2 supplementation of co-cultures could overcome the effect of ICOSL blockade; similarly the generation of EC-CTL was not impaired by ICOSL blockade in an IL-2-containing system. In vivo, weak constitutive ICOSL expression was found on coronary microvessels, which was significantly up-regulated during acute cardiac allograft rejection (p=0.04). Our data indicate a distinct role for ICOSL in EC-mediated CD8(+) T cell costimulation with implications for human cardiac allograft rejection.

Acute Disease↗

Myocardial energy metabolism in ischemic preconditioning and cardioplegia: a metabolic control analysis.

For both, cardioplegia (CP) and ischemic preconditioning (IP), increased ischemic tolerance with reduction in infarct size is well documented. These cardioprotective effects are related to a limitation of high energy phosphate (HEP) depletion. As CP and IP have to be assumed to act by different mechanisms, their effects on myocardial HEP metabolism cannot be assumed to be identical. Therefore, a systematic analysis of myocardial HEP metabolism for both procedures and their combination was performed, addressing the question whether there are different effects on myocardial HEP metabolism by IP and CP. In this study, metabolic control analysis was used to analyze the regulation of HEP metabolism. In open chest pigs subjected to 45 min LAD occlusion (index ischemia), CP and IP preserved myocardial ATP (control (C) 0.14 +/- 0.05 micromol/g wwt; CP: 0.95 +/- 0.14, IP: 0.61 +/- 0.12; p<0.05 C vs. CP and IP) and reduced myocardial necrosis (infarct size IA/RA: C: 90.0 +/- 3.0%; CP: 0.0 +/- 0.0% but patchy necroses; IP: 5.05 +/- 2.1%; p<0.05 C vs. CP and IP). The effects on HEP metabolism, however, were different: CP acted predominantly by slowing down the breakdown of phosphocreatine (PCr) during early phases of ischemia (C: DeltaPCr 0-2 min: 5.24 +/- 0.32 micromol/g wwt; CP: DeltaPCr 0-2 min: 3.38 +/- 0.23 micromol/g wwt, p<0.05 vs. C), leaving ATP breakdown during later stages unaffected (C: DeltaATP 5-45 min: 1.77 +/- 0.11 micromol/g wwt CP: DeltaATP 5-45 min: 1.59 +/- 0.28 micromol/g wwt, n.s. vs. C). In contrast to CP, in IP PCr breakdown was even increased (IP: DeltaPCr 0-2 min: 7.06 +/- 0.34 micromol/g wwt, p<0.05 vs. C), but ATP depletion greatly attenuated (IP: DeltaATP 5-45 min: 0.48 +/- 0.10 micromol/g wwt, p<0.05 vs. C and CP). Combining IP and CP yielded an additive effect with slowing down the breakdown of both PCr (IP+CP: DeltaPCr 0-2 min: 5.09+/- 0.35 micromol/g wwt, p<0.05 vs. C and IP) and ATP (IP+CP: DeltaATP 5-45 min: 0.56 +/- 0.48 micromol/g wwt, p<0.05 vs. C and CP), resulting in a higher ATP content at the end of index ischemia (1.86 +/- 0.46 micromol/g wwt, p<0.05 vs. C, CP and IP). Compared to IP, combining IP+CP achieved also a further reduction in infarct size (IA/RA: 0.0 +/- 0.0%, p<0.05 vs IP) and--compared to CP--a disappearance of the patchy necroses. The concept of major differences in myocardial HEP metabolism during CP and IP is further supported at a molecular level by metabolic control analysis. CP but not IP slowed down the CK reaction velocity at high PCr levels. In contrast to CP exerting a continuous decline in vATPase for any given ATP level, in IP myocardium ATPase reaction velocity was even increased at higher ATP contents, whereas a marked decrease in ATPase reaction velocity was found if ATP levels decreased. The equilibrium of the CK-reaction remained unchanged following CP, whereas IP induced a changing CK equilibrium, which was the more shifted towards PCr the more myocardial HEP content decreased. The data demonstrate different effects of CP and IP on myocardial HEP metabolism, i.e. PCr and ATP breakdown as well as the apparent equilibrium of the creatine kinase (CK)-reaction. For these reasons the combination of the two protective interventions has an additive effect.

Adenosine Triphosphatases↗

Very early cardiac magnetic resonance imaging for quantification of myocardial tissue perfusion in patients receiving tirofiban before percutaneous coronary intervention for ST-elevation myocardial infarction.

BACKGROUND: Assessment of myocardial blood flow is important for identification and monitoring of microvascular effects of glycoprotein IIb/IIIa inhibitors. Magnetic resonance imaging is a novel noninvasive method providing complementary information on myocardial blood flow and cardiac function. METHODS AND RESULTS: Patients (n = 53) admitted within 12 (mean, 5.8) hours after onset of symptoms were randomized to tirofiban or standard therapy before primary percutaneous coronary intervention (PCI) with stenting. Myocardial blood flow was graded by measurement of corrected Thrombolysis in Myocardial Infarction frame counts and by semiquantitative analysis of signal intensity curves from first-pass contrast-enhanced magnetic resonance perfusion. Pretreatment with tirofiban proved safe and resulted in a significantly lower corrected Thrombolysis in Myocardial Infarction frame counts (21 vs 34, P = .008) indicating improved myocardial blood flow. Magnetic resonance imaging revealed higher normalized peak signal intensities (2.19 vs 1.63, P = .046) and a trend to steeper upslopes (0.79 vs 0.48, P = .1). Cardiac left ventricular wall motion analysis resulted in a significantly lower number of myocardial segments with abnormal wall thickening (6.4 vs 8.5, P = .025). CONCLUSIONS: Pretreatment with tirofiban appears safe and improves myocardial flow after primary PCI with stenting. Magnetic resonance imaging proved useful as a complementary method for noninvasive assessment of myocardial blood flow and cardiac function in patients with ST-segment elevation myocardial infarction undergoing primary PCI.

Aged↗

What is the "optimal" follow-up schedule for ICD patients?

BACKGROUND: In the absence of comparative studies, recommended routine follow-up (FU) intervals for implantable cardioverter defibrillator (ICD) patients range from 1 to 6 months; most patients are followed at 3 month intervals. METHODS: Six hundred and eighteen ICD patients were routinely seen 4 weeks after implant and then every 3 months. Unplanned visits (UPV) were either patient initiated or due to manufacturer recalls. FU visits included patient history/examination, ICD interrogation, pacing/sensing threshold and pacing/shock impedance. Chest X-rays were performed every 6 months. To validate FU interval recommendations, a comparative analysis on the detection of complications was performed, relying either on the information of every, or of every other FU visit, i.e., on 3 or 6 month intervals. RESULTS: During 3.3+/-2.8 years, 137 complications occurred in 110 patients (17%). However, identification of only 34% was dependent on the FU schedule, since the mode of detection was ICD interrogation in 38 and history/physical examination in nine patients. The remainder was diagnosed by UPV in 47, manufacturer recall in seven, accidental discovery during device replacement in two, and routine X-ray in 34 patients. Complication free survival at 2 years was 86.4% for patients implanted before 1999, and 89.2% thereafter (P=0.003). Regarding 6 rather than 3 month FU intervals, a theoretical maximum delay of 3 months in the detection of potentially life-threatening complications would have occurred in 1.7% of all patients. For those implanted after 1999, this related to only 0.9%. CONCLUSIONS: ICD-related complications detected during routine FU visits are relatively rare, particularly with newer generation ICD systems. Thus, 6 month FU intervals appear to be safe. With new developments such as patient alert features and telemedical data transmission, FU intervals in ICD clinics might even be further extended.

Defibrillators, Implantable↗

Impact of pre-operative diabetes mellitus upon early and late survival after heart transplantation: a possible era effect.

BACKGROUND: The effect of pre- or post-operatively acquired diabetes mellitus on survival after heart transplantation remains controversial. The influence of transplant era on diabetes-associated survival is unknown. METHODS: A retrospective database analysis was performed on all cardiac transplant recipients followed up at our institution between 1986 and 2003. Diabetes mellitus was diagnosed based on oral glucose tolerance testing. RESULTS: Survival was analyzed in 243 patients (80% male, mean age 52.2 years, mean follow-up 5.22 years). Kaplan-Meier survival analysis demonstrated significantly worse (p = 0.0001) survival both early (months 0 to 12) and late (>5 years) after transplantation in pre-operative diabetics (n = 53) compared with non-diabetics (n = 190). Pre-operative diabetes was identified as the only independent risk factor for decreased long-term (>1 year) survival (p = 0.004). In contrast, no effect on survival (p = 0.5) was demonstrated in patients becoming diabetic only after heart transplantation (n = 39). At 12 months post-transplant renal function was significantly impaired in diabetics (p = 0.025); acute rejection, cytomegalovirus (CMV) infection and transplant vasculopathy occurred with similar frequency. Causes of death were similar in diabetics and non-diabetics. Reduced long-term survival in pre-operative diabetics was seen in the early transplant era (1986 to 1994) (p < 0.0001), but not in the more recent era (1995 to 2003) (p = 0.5). CONCLUSIONS: Pre-transplant but not post-transplant diabetes confers an adverse risk for survival (short and long term). Diabetes-associated long-term survival appears to have improved in the recent era, supporting continued transplantation in diabetics under close surveillance and aggressive medical management.

Biopsy↗