Objective In Parkinson's disease, striatal dopamine transporter (DAT) binding and cardiac sympathetic function are disturbed. In addition, heart rate (HR)-corrected cardiac repolarisation time (QTc interval), which is partly under autonomic control, is prolonged. Whether there is physiological coupling between striatal DAT binding and QTc time (QTc-DAT relation) is not known. The purpose of this study is to evaluate QTc-DAT relation in healthy young adults.Methods Thirty-five participants (18 women, age 26.4 +/- 1.8 years; mean +/- SD) were studied with iodine-123 labelled 2 beta-carbomethoxy-3 beta-(4-iodophenyl) nortropane single photon emission tomography. Signal-averaged ECG was recorded at rest from each participant. QTc interval was computed with Bazett's correction and with the approach by Karjalainen, getting QTc and QTk intervals, respectively.Results Mean striatal DAT binding, as (striatum-cerebellum)/cerebellum, was 2.63 +/- 0.31. Mean HR, QT, QTc and QTk intervals were 66 +/- 9 bpm, 340 +/- 25 ms, 354 18 ms and 351 +/- 16 ms, respectively. HR-QT correlation was -0.63, P value of less than 0.001. HR was not related to striatal DAT binding. QTc-DAT and QTk-DAT relations were significant, r = -0.50, P = 0.004 and r = -0.59, P = 0.0002, respectively. In linear regression model, striatal DAT binding explained 35% of the variance of QTk interval (95% confidence interval: -46.9 to -13.0, P = 0.0002).Conclusion This study suggests significant physiological QTc-DAT relation in young healthy adults. QTc interval measurements might carry diagnostically important information in clinical conditions, which have an effect on both striatal DAT binding and cardiac sympathetic function. Nucl Med Commun 30:713-717 (C) 2009 Wolters Kluwer Health | Lippincott Williams & Wilkins.
Background—Catheter-based intracoronary vascular endothelial growth factor (VEGF) gene transfer is a potential treatment for coronary heart disease. However, only limited data are available about local VEGF gene transfer given during angioplasty (PTCA) and stenting. Methods and Results—Patients with coronary heart disease (n=103; Canadian Cardiovascular Society class II to III; mean age, 58±6 years) were recruited in this randomized, placebo-controlled, double-blind phase II study. PTCA was performed with standard methods, followed by gene transfer with a perfusion-infusion catheter. Ninety percent of the patients were given stents; 37 patients received VEGF adenovirus (VEGF-Adv, 2×1010 pfu), 28 patients received VEGF plasmid liposome (VEGF-P/L; 2000 &mgr;g of DNA with 2000 &mgr;L of DOTMA:DOPE [1:1 wt/wt]), and 38 control patients received Ringer’s lactate. Follow-up time was 6 months. Gene transfer to coronary arteries was feasible and well tolerated. The overall clinical restenosis rate was 6%. In quantitative coronary angiography analysis, the minimal lumen diameter and percent of diameter stenosis did not significantly differ between the study groups. However, myocardial perfusion showed a significant improvement in the VEGF-Adv-treated patients after the 6-month follow-up. Some inflammatory responses were transiently present in the VEGF-Adv group, but no increases were detected in the incidences of serious adverse events in any of the study groups. Conclusions—Gene transfer with VEGF-Adv or VEGF-P/L during PTCA and stenting shows that (1) intracoronary gene transfer can be performed safely (no major gene transfer-related adverse effects were detected), (2) no differences in clinical restenosis rate or minimal lumen diameter were present after the 6-month follow-up, and (3) a significant increase was detected in myocardial perfusion in the VEGF-Adv-treated patients.