Clinical outcome after myocardial infarction depends on the extent of irreversibly damaged myocardium. Implantation of bone marrow-/circulating blood-derived progenitor cells has been shown to improve contractile cardiac function after myocardial infarction in both experimental and initial clinical studies. In the present study, first observations of the effect of local intracoronary progenitor cell infusion on the regeneration of infarcted cardiac tissue after acute myocardial infarction was evaluated by means of 18F-fluorodeoxyglucose positron emission tomography (PET) and 201Tl single-photon emission computed tomography (SPECT). Twenty-six patients underwent intracoronary infusion of bone marrow-derived (BMCs) (15 patients) or circulating blood-derived endothelial progenitor cells (EPCs) (11 patients) 4±2 days after acute myocardial infarction. Based on a left ventricular segmentation model (17 segments), mean signal intensities as a parameter of viability and perfusion in the infarct zone and non-infarct areas were calculated quantitatively by PET and SPECT at baseline and at 4 months of follow-up. Transplantation of progenitor cells was associated with a significant increase in the mean signal intensity (MSI) in the infarct zone from 54.5% (25th and 75th percentiles: 47.7%, 60.0%) to 58.0% (52.7%, 66.7%) on PET (P=0.013) and from 58.0% (49.5%, 63.0%) to 61.5% (52.5%, 70.2%) on SPECT (P=0.005). Global left ventricular ejection fraction (LVEF) increased from 53.5% (42.6%, 60.0%) to 58.0% (53.0%, 65.8%) (P<0.001). In the five patients without an increase in MSI on PET, LVEF changed from 60.0% (50.0%, 64.0%) to 72.0% (64.0%, 75.5%) at follow-up. PET and SPECT did not show any significant changes in MSI in the non-infarct areas [from 73% (68.5%, 76.2%) to 73% (69.7%, 78.0%) for PET and from 72.0% (66.5%, 77.6%) to 73.0% (67.5%, 78.2%) for SPECT]. There were no significant differences in myocardial viability and perfusion between BMC and EPC infusion. These preliminary results show that coronary stenting and transplantation of progenitor cells result in a significant increase in myocardial viability and perfusion. Therapeutic effects can be reliably measured by PET and SPECT.
The follow-up of epithelial ovarian cancer (OCA) consists of clinical investigation, sonography, and tumor markers (TMs), especially CA 125. If tumor recurrence is suspected, other imaging modalities including positron emission tomography (PET) with 18F-deoxyglucose (FDG) are often used. While there is still no consensus about the method of choice and the timing of its application, this study aims to find a TM threshold at which a PET would be appropriate.
We report the case of a woman who developed an early relapse of a squamous cell carcinoma (SCC) and was thus restaged twice within a year using [ 18 F]fluorodeoxyglucose (FDG) positron emission tomography (PET). While there was no evidence of metastatic tumor outspread, focally increased FDG uptake was visible in numerous nodes but showed no change during the period between the two PET scans. These nodes, predominantly located at the proximal extremities, ranged in size from about 1 cm to over 6 cm. They were located subcutaneously, showed a red/bluish livid color and were of stout consistency. These nodes occurred first after radiochemotherapy for a non-Hodgkin’s lymphoma (NHL) about 6 years earlier and slowly increased in size and number. One node of the right forearm was resected and ex-vivo beta-imaging, directly measuring the positron emission of the intranodal FDG distribution, was done and showed an overall increased glucose utilization with distinct spots of high metabolism. Histopathological work-up of the tumor showed widespread granulomatous tissue with lymphocyte follicles. Immunostaining showed the tumor to be positive for S100, CD68 and vimentin. Rosai-Dorfman disease (RDD) was diagnosed and no evidence of a potential relapse of the previous NHL was detected. RDD is a rare disease that is associated with the multifocal growth of benign tumors. The lesions are metabolically highly active. The correlation of the beta-imaging and histopathological results showed a high metabolism within granulomatous tissue with more intense metabolism within lymphocyte follicles.
A woman was referred for fluorodeoxyglucose positron emission tomography for the staging of a malignant melanoma. Although no signs of metastatic melanoma were evident on the whole-body scan, focally increased uptake within the femoral metaphysis was noted. Radiographic and magnetic resonance examinations revealed an enchondroma as the cause of the increased uptake. Histopathologic verification was obtained. The final diagnosis was actively proliferating enchondroma. A grade I chondrosarcoma could be ruled out. Enchondromas may be responsible for focally increased FDG uptake in bone lesions and must be considered when positron emission tomographic scans obtained with FDG are evaluated in cancer staging.