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Biomedical subjects

Andreas M Zeiher

Publications and source records attributed to Andreas M Zeiher.

At least 19 recordsLinked to original sources

High-mobility group box 1 activates integrin-dependent homing of endothelial progenitor cells.

Endothelial progenitor cells (EPCs) are recruited to ischemic regions and improve neovascularization. Integrins contribute to EPC homing. High-mobility group box 1 (HMGB1) is a nuclear protein that is released extracellularly on cell necrosis and tissue damage, eliciting a proinflammatory response and stimulating tissue repair. In the present study, we investigated the effects of HMGB1 on EPC homing. EPCs express the HMGB1 receptors RAGE (receptor for advanced glycation end products) and TLR2 (Toll-like receptor 2). EPC migration was stimulated by HMGB1 in a RAGE-dependent manner. In addition, the HMGB1-induced migration of EPCs on fibronectin and fibrinogen was significantly inhibited by antibodies against beta1 and beta2 integrins, respectively. Short-term prestimulation of EPCs with HMGB1 also increased EPC adhesion to endothelial cell monolayers, and this effect was blocked by antibodies to beta2 integrins or RAGE. HMGB1 increased EPC adhesion to the immobilized integrin ligands intercellular adhesion molecule-1 and fibronectin in a RAGE-dependent manner. Strikingly, HMGB1 rapidly increased integrin affinity and induced integrin polarization. Using intravital microscopy in a tumor model of neovascularization, prestimulation of EPCs with HMGB1 enhanced the initial in vivo adhesion of EPCs to microvessels and the recruitment of EPCs in the tumor tissue. In addition, prestimulation of EPCs with HMGB1 increased the homing of EPCs to ischemic muscles. In conclusion, these data represent a link between HMGB1 and integrin functions of EPCs and demonstrate that HMGB1 stimulates EPC homing to ischemic tissues. These results may provide a platform for the development of novel therapeutic approaches to improve EPC homing.

Animals↗

Cell-enhancement strategies for the treatment of ischemic heart disease.

Cell therapy is a promising option for the treatment of ischemic diseases. Infusion or injection of stem or progenitor cells has improved neovascularization and heart function after ischemia in various experimental studies and clinical phase II and III trials. One potential limitation for cell therapy is a low rate of engraftment and persistence of cells in the ischemic tissue. Moreover, impairment of the number and function of patient-derived progenitor cells might limit the efficiency of autologous stem cell therapy. Therefore, strategies to augment cell function, survival, and homing could be crucial to improve success rates for cell therapy. Experimental studies have provided novel options for improving survival and function by transduction of stem or progenitor cells with prosurvival genes (e.g. Akt or telomerase). Pretreatment of cells with small molecules, such as statins, p38 inhibitors, or endothelial nitric oxide synthase enhancers, has been used to augment cell homing, integration, and functional recovery after induction of ischemia. Priming of the tissue by mechanical activation or application of growth factors might further improve recruitment and incorporation of cells. In this article we summarize the experimental studies providing novel concepts for cell-enhancement strategies to aid the treatment of peripheral artery occlusive and ischemic heart disease.

Endothelial Cells↗

Sphingosine-1-phosphate stimulates the functional capacity of progenitor cells by activation of the CXCR4-dependent signaling pathway via the S1P3 receptor.

OBJECTIVE: Sphingosine-1-phosphate (S1P) is a bioactive lipid, which influences migration and proliferation of endothelial cells through activation of S1P receptors and has been shown to support SDF-1 induced migration and bone marrow homing of CD34+ progenitors. METHODS AND RESULTS: Here, we show that incubation of patient-derived endothelial progenitor cells (EPCs) with S1P or its synthetic analog FTY720 improved blood flow recovery in ischemic hind limbs. Likewise, recovery of blood flow was dramatically reduced after induction of hindlimb ischemia in mice deficient for the S1P receptor 3 (S1P3). S1P3-/- bone marrow-derived mononuclear cells (BMCs) failed to augment neovascularization after hind limb ischemia. Of note, treatment of BMCs derived from S1P3-/- mice with S1P did not rescue blood flow recovery. Mechanistically, S1P and FTY720 induced phosphorylation of CXCR4, activated the Src kinase, and stimulated phosphorylation of JAK2. The contribution of CXCR4 for S1P-mediated effects was further supported by the findings that S1P preincubation failed to stimulate invasion capacity and in vivo blood flow recovery of BMCs from CXCR4+/- mice. The activation of CXCR4 was dependent on the Src kinase family as demonstrated by preincubation with the Src inhibitor PP2. The activation of the CXCR4 signaling by S1P is mediated via the S1P3 receptor, since S1P-induced Src phosphorylation was abrogated in EPC from S1P3-/- mice. CONCLUSIONS: S1P agonists might serve as sensitizers of CXCR4-mediated signaling and may be applied in clinical progenitor cell therapy to improve EPC or BMC function in patients with coronary artery disease.

Animals↗

Low-energy shock wave for enhancing recruitment of endothelial progenitor cells: a new modality to increase efficacy of cell therapy in chronic hind limb ischemia.

BACKGROUND: Stem and progenitor cell therapy is a novel approach to improve neovascularization and function of ischemic tissue. Enhanced tissue expression of chemoattractant factors such as stromal cell-derived factor 1 and vascular endothelial growth factor is crucial for the recruitment of circulating endothelial progenitor cells (EPCs) during acute ischemia. In chronic ischemia, however, expression of these chemoattractants is less pronounced, which results in insufficient EPC recruitment into the target tissue. Therefore, we investigated the effect of targeted extracorporeal shock wave (SW) application in order to facilitate EPC recruitment into nonischemic and chronic ischemic tissue. METHODS AND RESULTS: Hind limb adductor muscles of nude rats were treated with 500, 1000, and 2000 impulses of focused low-energy SW (flux density level: 0.05 mJ/mm2). Twenty-four hours later, mRNA expression of the chemoattractant stromal cell-derived factor 1 was significantly increased with 1000 impulses (stromal cell-derived factor 1/GAPDH: 0.95+/-0.09) and 2000 impulses (stromal cell-derived factor 1/GAPDH: 1.17+/-0.24; both P<0.05 versus untreated). Histologically, the number of vascular endothelial growth factor-positive endothelial cells per myocyte was significantly increased with 2000 impulses (0.24+/-0.05 versus 0.09+/-0.02; P<0.01). This preconditioning effect resulted in significantly enhanced recruitment and homing of EPCs that were intravenously infused 24 hours after SW treatment (P<0.05). In a rat model of chronic hind limb ischemia, SW-facilitated EPC treatment resulted in a significant increase in relative blood flow recovery as assessed by laser Doppler imaging (P<0.05). CONCLUSIONS: Preconditioning of both nonischemic and chronic ischemic tissue with low-energy SW improves recruitment of circulating EPCs via enhanced expression of chemoattractant factors. Thus, SW-facilitated cell therapy may improve the efficacy of EPC treatment in patients with chronic ischemia.

Animals↗

Accuracy of anthropometric indicators of obesity to predict cardiovascular risk.

CONTEXT: Obesity is associated with various cardiovascular risk factors. The body mass index (BMI) is the standard measure of overweight and obesity. However, more recently, waist to hip ratio (WHR) or waist circumference (WC) as more sensitive measures for visceral obesity have been proposed to be more indicative of cardiovascular risk. OBJECTIVE: This study was performed to test the predictive value of anthropometric parameters for the presence of several cardiovascular risk conditions. DESIGN: The DETECT (Diabetes Cardiovascular Risk-Evaluation: Targets and Essential Data for Commitment of Treatment) study is a cross-sectional, clinical-epidemiological study. PARTICIPANTS: We studied 5377 unselected subjects (2016 men, 3361 women) without arteriosclerotic disease, aged 20-79 yr, from the DETECT laboratory sample. SETTING: This study was conducted by primary care physicians. INTERVENTION: We measured anthropometric parameters and assessed cardiovascular risk by clinical examination, patient history, and a standardized laboratory program. MAIN OUTCOME MEASURES: We assessed the associations of BMI, WC, hip circumference, WHR, and waist to height ratio (WHtR) to cardiovascular risk by calculating the area under the receiver-operating characteristic curve and adjusted odds ratios for metabolic syndrome, dyslipidemia, and type 2 diabetes. RESULTS: The area under the receiver-operating characteristic curve for WHtR was significantly higher than for all other anthropometric parameters with respect to all risk conditions in women and to dyslipidemia and type 2 diabetes in men. The odds ratios for the presence of risk conditions with 1 sd increase of each anthropometric parameter were highest for WHtR or WC. CONCLUSIONS: There are some indications that WHtR or WC may predict prevalent cardiovascular risk better than BMI or WHR, even though the differences are small.

Adolescent↗

Improved clinical outcome after intracoronary administration of bone-marrow-derived progenitor cells in acute myocardial infarction: final 1-year results of the REPAIR-AMI trial.

AIMS: To investigate the clinical outcome after intracoronary administration of autologous progenitor cells in patients with acute myocardial infarction (AMI). METHODS AND RESULTS: Using a double-blind, placebo-controlled multicentre trial design, we randomized 204 patients with successfully reperfused AMI to receive intracoronary infusion of bone-marrow-derived progenitor cells (BMCs) or placebo medium into the infarct artery 3-7 days after successful infarct reperfusion therapy. At 12 months, the pre-specified cumulative endpoint of death, myocardial infarction, or necessity for revascularization was significantly reduced in the BMC group compared with placebo (P=0.009). Likewise, the combined endpoint death, recurrence of myocardial infarction, and rehospitalization for heart failure was significantly (P=0.006) reduced in patients receiving intracoronary BMC administration. Intracoronary administration of BMC remained a significant predictor of a favourable clinical outcome by Cox regression analysis, adjusting for classical predictors of poor outcome after AMI. CONCLUSION: Intracoronary administration of BMCs is associated with a significant reduction of the occurrence of major adverse cardiovascular events after AMI. Large-scale studies are warranted to confirm the effects of BMC administration on mortality and morbidity in patients with AMIs.

Adolescent↗

Intracoronary infusion of progenitor cells is not associated with aggravated restenosis development or atherosclerotic disease progression in patients with acute myocardial infarction.

AIMS: Experimental and clinical pilot studies suggest that intracoronary progenitor cell infusion can improve left ventricular function and remodelling after acute myocardial infarction (AMI). Since progenitor cells are also known to be involved in restenosis development and atherosclerosis progression, an increased restenosis rate may be a risk of intracoronary cell therapy. METHODS: We performed a retrospective study to compare quantitative angiographic measurements of the infarct target vessel in 83 patients with AMI treated with bare metal stent PCI (matched control) and in 83 patients receiving additional intracoronary progenitor cell infusion at a mean of 5 days post-AMI stent PCI and after 4 months. RESULTS: The late loss as a measure of neointima formation was similar between the control and the cell-treated group at follow-up (0.9+/-0.8 vs. 0.9+/-0.7 mm, P=0.9). Moreover, restenosis rate was comparable in both groups (35% control vs. 27% cell-treated group, P=0.2). Multivariable analysis excluded cell therapy as an independent significant predictor of increased late loss (P=0.4), whereas acute gain (P=0.012) and diabetes mellitus (P=0.002) were independent predictors of late loss. Finally, in the cell-treated group, target vessel revascularization rate remained at 28.9% during a median of >3 years of follow-up, thus excluding an effect on atherosclerotic disease progression. CONCLUSION: In patients with AMI successfully treated with bare metal stent PCI, additional intracoronary progenitor cell infusion does not lead to an increased neointima formation within the implanted stent within 4 months or aggravation of atherosclerotic disease progression.

Case-Control Studies↗

The histone methyltransferase MLL is an upstream regulator of endothelial-cell sprout formation.

Posttranslational histone modification by acetylation or methylation regulates gene expression. Here, we investigated the role of the histone lysine methyltransferase MLL for angiogenic functions in human umbilical vein endothelial cells. Suppression of MLL expression by siRNA or incubation with the pharmacologic methyltransferase inhibitor 5'-deoxy-5'-(methylthio)adenosine significantly decreased endothelial-cell migration and capillary sprout formation, indicating that methyltransferase activity is required for proangiogenic endothelial-cell functions. Because the expression of homeodomain transcription factors (Hox) is regulated by MLL, we elucidated the role of Hox gene expression. MLL silencing was associated with reduced mRNA and protein expression of HoxA9 and HoxD3, whereas HoxB3, HoxB4, HoxB5, and HoxB9 were not altered. Overexpression of HoxA9 or HoxD3 partially compensated for impaired migration in MLL siRNA-transfected endothelial cells, suggesting that HoxA9 and HoxD3 both contribute to MLL-dependent migration. As a potential underlying mechanism, MLL siRNA down-regulated mRNA and protein levels of the HoxA9-dependent axon guidance factor EphB4. In contrast, MLL knockdown effects on capillary sprouting were not rescued by HoxA9 or HoxD3 overexpression, indicating that MLL affects additional targets required for 3-dimensional sprout formation. We conclude that MLL regulates endothelial-cell migration via HoxA9 and EphB4, whereas sprout formation requires MLL-dependent signals beyond HoxA9 and HoxD3.

Cell Movement↗

Transcoronary transplantation of progenitor cells after myocardial infarction.

BACKGROUND: Pilot studies suggest that intracoronary transplantation of progenitor cells derived from bone marrow (BMC) or circulating blood (CPC) may improve left ventricular function after acute myocardial infarction. The effects of cell transplantation in patients with healed myocardial infarction are unknown. METHODS: After an initial pilot trial involving 17 patients, we randomly assigned, in a controlled crossover study, 75 patients with stable ischemic heart disease who had had a myocardial infarction at least 3 months previously to receive either no cell infusion (23 patients) or infusion of CPC (24 patients) or BMC (28 patients) into the patent coronary artery supplying the most dyskinetic left ventricular area. The patients in the control group were subsequently randomly assigned to receive CPC or BMC, and the patients who initially received BMC or CPC crossed over to receive CPC or BMC, respectively, at 3 months' follow-up. RESULTS: The absolute change in left ventricular ejection fraction was significantly greater among patients receiving BMC (+2.9 percentage points) than among those receiving CPC (-0.4 percentage point, P=0.003) or no infusion (-1.2 percentage points, P<0.001). The increase in global cardiac function was related to significantly enhanced regional contractility in the area targeted by intracoronary infusion of BMC. The crossover phase of the study revealed that intracoronary infusion of BMC was associated with a significant increase in global and regional left ventricular function, regardless of whether patients crossed over from control to BMC or from CPC to BMC. CONCLUSIONS: Intracoronary infusion of progenitor cells is safe and feasible in patients with healed myocardial infarction. Transplantation of BMC is associated with moderate but significant improvement in the left ventricular ejection fraction after 3 months.

Aged↗

Intracoronary bone marrow-derived progenitor cells in acute myocardial infarction.

BACKGROUND: Pilot trials suggest that the intracoronary administration of autologous progenitor cells may improve left ventricular function after acute myocardial infarction. METHODS: In a multicenter trial, we randomly assigned 204 patients with acute myocardial infarction to receive an intracoronary infusion of progenitor cells derived from bone marrow (BMC) or placebo medium into the infarct artery 3 to 7 days after successful reperfusion therapy. RESULTS: At 4 months, the absolute improvement in the global left ventricular ejection fraction (LVEF) was significantly greater in the BMC group than in the placebo group (mean [+/-SD] increase, 5.5+/-7.3% vs. 3.0+/-6.5%; P=0.01). Patients with a baseline LVEF at or below the median value of 48.9% derived the most benefit (absolute improvement in LVEF, 5.0%; 95% confidence interval, 2.0 to 8.1). At 1 year, intracoronary infusion of BMC was associated with a reduction in the prespecified combined clinical end point of death, recurrence of myocardial infarction, and any revascularization procedure (P=0.01). CONCLUSIONS: Intracoronary administration of BMC is associated with improved recovery of left ventricular contractile function in patients with acute myocardial infarction. Large-scale studies are warranted to examine the potential effects of progenitor-cell administration on morbidity and mortality.

Aged↗

Ex vivo pretreatment of bone marrow mononuclear cells with endothelial NO synthase enhancer AVE9488 enhances their functional activity for cell therapy.

Bone marrow mononuclear cells (BMC) from patients with ischemic cardiomyopathy (ICMP) show a reduced neovascularization capacity in vivo. NO plays an important role in neovascularization, and NO bioavailability is typically reduced in patients with ICMP. We investigated whether the impaired neovascularization capacity of ICMP patient-derived progenitor cells can be restored by pretreatment with the novel endothelial NO synthase (eNOS) transcription enhancer AVE9488 (AVE). Ex vivo pretreatment of BMC from patients with ICMP with AVE significantly increased eNOS mRNA expression by 2.1-fold (P < 0.05) and eNOS activity as assessed by ESR by >3-fold (P < 0.05). The increased eNOS expression was associated with an enhanced migratory capacity in vitro (P < 0.01) and improved neovascularization capacity of the infused BMC in an ischemic hind limb model in vivo (P < 0.001). The improvement in ischemic limb perfusion after infusion of AVE-pretreated BMC resulted in an increase in swimming time (P < 0.05). The enhancement of limb perfusion by AVE-treated BMC was abrogated by ex vivo pretreatment with the eNOS inhibitor N(G)-nitro-l-arginine methyl ester. Consistently, AVE showed no effect on the impaired migratory capacity of BMC derived from eNOS-deficient mice, documenting the specific involvement of NO. The reduced neovascularization capacity of BMC from patients with ICMP may limit their therapeutic potential in cell therapy studies. Here, we show that pharmacological enhancement of eNOS expression with AVE at least partially reverses the impaired functional activity of BMC from ICMP patients, highlighting the critical role of NO for progenitor cell function.

Animals↗

[Prevalence, drug treatment and metabolic control of diabetes mellitus in primary care].

BACKGROUND AND PURPOSE: The primary care sector is of key importance for the management of patients with diabetes mellitus. The authors investigated (a) the prevalence of diabetes mellitus type 1 and type 2, (b) the type and frequency of non-drug and drug treatment and its association with the presence of diabetic complications, and (c) the quality of metabolic control by HbA1c. METHODS: Using a nationwide probability sample of 3,188 general practices (response rate [RR] 50.6%), a total of 55,518 (RR 93.5%) patients were assessed in a prospective cross-sectional study by their physicians in September 2003 in a standardized manner using questionnaires, physician interview, and laboratory assessments. In addition to diabetes mellitus, 28 diseases were explicitly screened for, among them typical macrovascular (coronary heart disease, cerebrovascular disease, peripheral arterial disease) and microvascular disease (neuropathy, nephropathy, retinopathy, diabetic foot) complications. RESULTS: The prevalence of diabetes mellitus was 0.5% (type 1) and 14.7% (type 2), respectively. 49.5% (type 1) and 50.2% (type 2) of patients had micro- or macrovascular complications. 6.8% did not receive any treatment, 13.5% received non-drug treatment, and 75.3% received oral antidiabetic drugs and/or insulin (26.6% a combination of two or more). Compared to diabetics without any complications, treatment intensity was significantly higher in patients with microvascular complications (odds ratio [OR] 3.02), but not in those with macrovascular complications only (OR 0.98). An HbA1c value>or=7.0% was recorded in 39.6% of patients. CONCLUSION: Compared to previous studies in this setting, the proportion of diabetics with drug treatment has increased. More patients receive antidiabetic drug combinations. Quality of blood sugar control appears to have improved as well.

Adolescent↗

Effects of granulocyte colony simulating factor on functional activities of endothelial progenitor cells in patients with chronic ischemic heart disease.

OBJECTIVE: Bone marrow-derived circulating endothelial progenitor cells (EPCs) may contribute to regeneration of infarcted myocardium and enhance neovascularization. Granulocyte colony-stimulating factor (G-CSF) is well-established to mobilize hematopoietic stem cells (HSCs) and might, thereby, also increase the pool of endogenously circulating EPC. Therefore, we investigated the effects of G-CSF administration on mobilization and functional activities of blood-derived EPC in patients with chronic ischemic heart disease (CIHD). METHODS AND RESULTS: Sixteen patients with CIHD received 10 microg/kg per day subcutaneous G-CSF injection for 5 days. Leukocyte counts, the number of HSCs and EPCs, and the migratory response to VEGF and SDF-1 were analyzed before and after G-CSF-therapy. At day 5 of G-CSF treatment, the number of circulating leukocytes, CD34+ CD45+ and CD34+ CD133+ cells was significantly increased. Likewise, G-CSF treatment augmented the numbers of colony forming units with endothelial cell morphology (EC-CFU). However, the functional activity of the EPC as assessed by the migratory response to VEGF and SDF-1 was significantly reduced after G-CSF treatment (P<0.01). Because G-CSF was previously shown to cleave the CXCR4 receptor, we determined the surface expression of the 6H8 epitope of the CXCR4 receptor by fluorescence-activated cell sorter (FACS) analysis. Consistent with the reduced migratory capacity, the surface expression of the functionally active CXCR4 receptor was significantly reduced. To test the functional activity of the cultivated EPCs in vivo, cells were intravenously infused in nude mice after hind limb ischemia. EPCs, which were cultivated before G-CSF administration, increased blood flow recovery and prevented limb necrosis. However, infusion of EPCs, which were isolated 5 days after G-CSF treatment from the same patient, showed a reduced capacity to augment blood flow recovery and to prevent necrosis by 27%. CONCLUSIONS: G-CSF treatment effectively mobilizes HSCs and EPCs. However, the migratory response to SDF-1 and in vivo capacity of G-CSF-mobilized EPCs was significantly reduced.

Aged↗

Differential effects of short-term lipid lowering with ezetimibe and statins on endothelial function in patients with CAD: clinical evidence for 'pleiotropic' functions of statin therapy.

AIMS: Statin therapy is associated with improved endothelial vasodilator function. The clinical availability of ezetimibe, a potent novel cholesterol absorption inhibitor, enables to differentiate lipid-lowering effects from potential non-lipid-lowering (pleiotropic) mechanisms of statins. METHODS AND RESULTS: Forearm blood flow (FBF) responses to acetylcholine (ACH) and sodium nitroprusside (SNP) were measured by venous occlusion plethysmography in four prospectively defined groups of patients with stable coronary artery disease (CAD) before and after 4 weeks of lipid-lowering therapy. Group A (n=15): de novo monotherapy with 10 mg/day ezetimibe; Group B (n=15): 10 mg/day ezetimibe as an add-on to chronic simvastatin therapy with 20 mg/day; Group C (n=15): dose escalation from chronic 10 to 40 mg/day atorvastatin; and Group D (n=15): de novo monotherapy with 40 mg/day atorvastatin. After 4 weeks of therapy, LDL cholesterol levels were significantly reduced in all four groups. Neither ezetimibe monotherapy (Group A) nor ezetimibe combined with 20 mg simvastatin (Group B) was associated with an increase in ACH-mediated FBF responses after 4 weeks. In contrast, dose escalation of atorvastatin from 10 to 40 mg/day (Group C) or de novo therapy with 40 mg atorvastatin/day (Group D) was associated with a significant increase in ACH-mediated FBF responses (P<0.013). CONCLUSION: Thus, both statins and ezetimibe effectively lower LDL-levels within 4 weeks of therapy. However, only statin therapy is associated with improved endothelial vasodilator function, disclosing the relevance of pleiotropic effects of statins during short-term treatment of patients with CAD.

Acetylcholine↗

Elevated placental growth factor levels are associated with adverse outcomes at four-year follow-up in patients with acute coronary syndromes.

OBJECTIVES: This study sought to evaluate the predictive value of baseline placental growth factor (PlGF) for long-term cardiovascular events in acute coronary syndromes (ACS). BACKGROUND: A biomarker of vascular inflammation, PlGF is identified as a powerful predictor for short-term outcome in patients with ACS. METHODS: In 544 patients who were enrolled in the placebo arm of the c7E3 Fab Anti Platelet Therapy in Unstable REfractory angina (CAPTURE) trial, PlGF levels were determined as well as markers of myocardial necrosis (troponin T [TnT]), general inflammation (high-sensitivity C-reactive protein [hsCRP]), and platelet activation (soluble CD40 ligand [sCD40L]). Cox proportional hazard regression analyses were applied to evaluate the relationship between biomarkers and the occurrence of all-cause death or non-fatal myocardial infarction during a median follow-up period of four years. RESULTS: Patients with PlGF levels in the fourth and fifth quintile (>27 ng/l) had higher mortality than those with lower levels (10.8% vs. 3.2%; hazard ratio [HR], 3.3; 95% confidence interval [CI], 1.6 to 7.1), as well as a higher incidence of the composite end point of death or myocardial infarction (27.6% vs. 11.3% events; HR, 2.6; 95% CI, 1.7 to 3.9). The relationship between PlGF and the composite end point remained significant after adjustment for TnT, sCD40L, and hsCRP (adjusted HR, 3.3; 95% CI, 2.0 to 5.4). CONCLUSIONS: In patients with ACS, elevated plasma levels of PlGF are associated with adverse cardiac outcomes during long-term follow-up. These data suggest that PlGF as a more specific marker of vascular inflammation should be considered for risk stratification of patients with ACS rather than general markers of inflammation.

Abciximab↗

[Stem cells after myocardial infarction].

Loss of contractile myocardial tissue after myocardial infarction is followed by a remodeling of the left ventricle and clinical manifestation of heart failure, associated with a reduced life expectancy. One possibility to counteract the remodeling process would be to regenerate cardiomyocytes and to improve neovascularization in the infarct area. Indeed, experimental studies demonstrate that transplantation of adult stem or progenitor cells such as circulating, endothelial progenitor cells (CPCs) or progenitor cells derived from the bone marrow, is a therapeutic strategy to improve neovascularization and left ventricular (LV) function after myocardial infarction. First clinical trials in patients after an acute myocardial infarction indicate that intracoronary transplantation of adult progenitor cells is feasible and safe. Furthermore, patients treated with progenitor cells experienced an unexpectedly large improvement of LV function and geometry as well as vascularization, indicating a beneficial effect of the progenitor cell treatment on the postinfarction course. Randomized trials have obtained mixed results with respect to improvement of LV function after intracoronary infusion of progenitor cells, which may be due to methodological differences. However, in the largest trial, REPAIR-AMI, LV function significantly improved in progenitor cell-treated patients compared to a double-blind, randomized placebo-control group. Of note, that trial used a previously validated processing of progenitor cells with respect to in vitro and in vivo progenitor capacity of the cells. The data available, therefore, encourage assessing the efficacy of intracoronary infusion of progenitor cells-established to be efficient in previous trials-after acute myocardial infarction in larger, randomized controlled trials in order to assess the effect on mortality and morbidity.

Animals↗

Bone-marrow-derived progenitor cell therapy in need of proof of concept: design of the REPAIR-AMI trial.

Early reperfusion of occluded coronary arteries has significantly reduced early mortality and improved the long-term prognosis of patients with an acute myocardial infarction. However, the development of postinfarction heart failure remains a major challenge. Initial experimental studies indicated that mononuclear progenitor cells derived from the bone marrow may contribute to the functional regeneration of freshly infarcted myocardium and increase neovascularization of ischemic areas. A number of clinical pilot trials have now transferred the experimental approach into the clinical arena, aiming at regenerating myocardial function with infusion of bone-marrow-derived progenitor cells in patients after an acute myocardial infarction. While these initial trials using intracoronary infusion of bone-marrow-derived progenitor cells indeed suggested that such a strategy appears to be feasible and safe in patients with an acute myocardial infarction, there is definitely a pressing need for a proof-of-concept study documenting a potentially beneficial effect of progenitor cell therapy on cardiac function.

Bone Marrow Transplantation↗

Cathepsin D and H2O2 stimulate degradation of thioredoxin-1: implication for endothelial cell apoptosis.

Cathepsin D (CatD) is a lysosomal aspartic proteinase and plays an important role in the degradation of proteins and in apoptotic processes induced by oxidative stress, cytokines, and aging. All of these stimuli are potent inducers of endothelial cell apoptosis. Therefore, we investigated the role of CatD in endothelial cell apoptosis and determined the underlying mechanisms. Incubation with 100-500 microm H2O2 for 12 h induced apoptosis in endothelial cells. To determine a role for CatD, we co-incubated endothelial cells with the CatD inhibitor pepstatin A. Pepstatin A as well as genetic knock down of CatD abolished H2O2-induced apoptosis. In contrast, overexpression of CatD wild type but not a catalytically inactive mutant of CatD (CatDD295N) induced apoptosis under basal conditions. To gain insights into the underlying mechanisms, we investigated the effect of CatD on reactive oxygen species (ROS) formation. Indeed, knocking down CatD expression reduced H2O2-induced ROS formation and apoptosis. The major redox regulator in endothelial cells is thioredoxin-1 (Trx), which plays a crucial role in apoptosis inhibition. Thus, we hypothesized that CatD may alter Trx protein levels and thereby promote formation of ROS and apoptosis. Incubation with 100 microm H2O2 for 6 h decreased Trx protein levels, whereas Trx mRNA was not altered. H2O2-induced Trx degradation was inhibited by pepstatin A and genetic knock down of CatD but not by other protease inhibitors. Incubation of unstimulated cell lysates with recombinant CatD significantly reduced Trx protein levels in vitro, which was completely blocked by pepstatin A pre-incubation. Overexpression of CatD reduced Trx protein in cells. Moreover, H2O2 incubation led to a translocation of Trx to the lysosomes prior to the induction of apoptosis. Taken together, CatD induces apoptosis via degradation of Trx protein, which is an essential anti-apoptotic and reactive oxygen species scavenging protein in endothelial cells.

Aging↗