Myocardial viability--what is the definition?
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Biomedical subjects
Publications and source records attributed to S R Bergmann.
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Two techniques for labeling of albumin with copper-67 (67Cu) and 62Cu were investigated; one using the native Cu(II) binding site of the protein and the other employing a bifunctional chelate, 6-bromoacetamidobenzyl-1,4,8,11-tetraazacyclotetradecane- N,N'N",N"'-tetraacetic acid (Br-benzyl-TETA or BAT), conjugated to the protein. Rat biodistribution experiments with 67Cu demonstrated retention of i.v. 67Cu-benzyl-TETA-albumin in the blood pool identical to co-injected 125I-albumin. By contrast, i.v. administration of either [67Cu]-Cu-acetate or [67Cu]-Cu-acetate pre-mixed with albumin results in relatively rapid clearance of blood-pool radioactivity as the tracer is excreted into the urine. The 62Cu-benzyl-TETA-albumin radiopharmaceutical was obtained in ca. 17% radiochemical yield (end of synthesis, without decay correction) following a procedure that can be completed in 15-18 min. In PET experiments with a baboon, myocardial blood volume images with 62Cu-benzyl-TETA-albumin were identical to those obtained with C15O. Use of the 62Cu-benzyl-TETA-albumin image for blood-pool subtraction of a 62Cu-PTSM myocardial perfusion image is illustrated. Copper-62-benzyl-TETA-HSA should be a useful, generator-produced radiotracer for the detection of the vascular pool at PET facilities without cyclotrons.
A number of hybrid plasminogen activator genes were constructed from the t-PA and u-PA cDNAs and expressed using a bovine papilloma virus vector and mouse C-127 cells. Hybrid A was constructed by replacing the finger (F) and EGF domains of t-PA with the EGF and Ku domains of u-PA, while hybrids B and C had an extra Ku inserted before or after the double kringle (K1-K2) region of t-PA respectively. While all the hybrids showed comparable enzymatic activities towards a small substrate (S-2288), they had different activities in binding to fibrin clots as well in the fibrin-dependent plasminogen activation, the order of activities being: t-PA greater than or equal to hybrid B greater than hybrid C greater than hybrid A. Carbohydrate analysis showed that while hybrid C, like rt-PA, had at least one high-mannose type sugar chain (probably at residue 117 in K1), the other hybrids had only complex-type carbohydrates suggesting that domain interaction in t-PA might influence glycan processing. Pharmacokinetic studies in dog showed that hybrid B had a significantly longer plasma half-life than rt-PA. Thrombolytic efficacies of hybrid B and rt-PA were compared in dog model using an artificially induced coronary thrombus. Complete thrombolysis was achieved with 18 mg and 50 mg dosages for hybrid B and rt-PA respectively. These data show the superior pharmacokinetic and thrombolytic properties of hybrid B compared to rt-PA.
Effects of coronary angioplasty on myocardial flow reserve have been difficult to characterize noninvasively because conventional imaging techniques cannot quantitate blood flow in absolute terms. The effects of coronary angioplasty on myocardial perfusion and perfusion reserve were delineated with positron emission tomography and oxygen-15-labeled water (H2(15)O) in 13 patients before and after single vessel angioplasty. In 11 patients, angioplasty was successful (minimal cross-sectional area increased from 0.60 +/- 0.59 to 3.45 +/- 1.09 mm2, p less than 0.001). In these patients, regional H2(15)O radioactivity (the ratio of nutritional perfusion in regions distal to the stenosis compared with regions supplied by angiographically normal arteries) at rest before angioplasty was 55 +/- 22% of peak myocardial radioactivity and did not increase significantly afterward (70 +/- 16%, p = NS). However, after administration of intravenous dipyridamole, hyperemic perfusion in regions distal to a stenosis averaged only 39 +/- 18% of peak myocardial counts before angioplasty, but increased to 66 +/- 22% after angioplasty (p less than 0.02). Perfusion reserve in the two patients in whom angioplasty was angiographically unsuccessful showed no change. Quantitative estimates of perfusion in absolute rather than relative terms were obtained with positron emission tomographic data from seven of the patients with successful angioplasty. At rest, perfusion in regions distal to a stenosis was not different from the values in regions supplied by normal coronary arteries (1.54 +/- 0.54 compared with 1.46 +/- 0.38 ml/g per min, p = NS).(ABSTRACT TRUNCATED AT 250 WORDS)
Angiographically normal coronary arteries are found in a substantial number of patients evaluated for angina pectoris. One third to one half of such patients demonstrate abnormalities of myocardial perfusion or metabolism when evaluated with invasive techniques. This study was designed to determine whether angina in such patients is attributable to abnormalities of perfusion at rest, maximal perfusion or vasodilator reserve and whether any identified abnormalities were global or regional in nature. Positron emission tomography was performed with oxygen-15-labeled water (H2(15)O) and oxygen-15-labeled carbon monoxide (C15O) before and after intravenous dipyridamole to assess regional myocardial perfusion and perfusion reserve in absolute terms in 16 normal subjects and 17 patients with chest pain and angiographically normal coronary arteries. Eight of the 17 patients had a myocardial perfusion reserve less than 2.5 (the lower limit of normal in studies with positron emission tomography, as well as with other techniques) and 9 of 17 patients had a normal response. In the patients with an impaired perfusion reserve, perfusion at rest was significantly higher than that measured in normal subjects (1.61 +/- 0.38 versus 1.25 +/- 0.28 ml/g per min, p less than 0.02) and maximal flow and perfusion reserve were significantly reduced (2.26 +/- 0.92 versus 4.62 +/- 1.58 ml/g per min and 1.4 +/- 0.5 versus 3.8 +/- 1.1, respectively; p less than 0.001 for both comparisons). Abnormalities of perfusion and perfusion reserve were spatially homogeneous without detectable regional disparities. Thus, nearly half of patients with chest pain and normal coronary arteries have abnormalities of myocardial perfusion that are detectable noninvasively with positron emission tomography and H2(15)O.
Previous studies have demonstrated that the positron-emitting fluorine-18 (18F)-labeled fluoromisonidazole is a specific tracer of myocardial hypoxia. Its fractional extraction is enhanced in ischemic or hypoxic myocardium but returns to baseline levels on reperfusion and recovery of normal function. Thus, this agent might be useful in delineating acutely hypoxic but potentially salvageable myocardium. Accordingly, to delineate the relation between the myocardial extraction of 18F-fluoromisonidazole after intravenous administration and the time of antecedent ischemia in vivo, uptake of tracer was measured with positron emission tomography and direct postmortem tissue analysis in 14 dogs in which tracer was administered within 3 h of coronary occlusion (a time associated with marked potential for salvage on reperfusion); in 4 dogs after 6 h of coronary occlusion (a time associated with minimal salvage of myocardium on reperfusion); and in 8 dogs after greater than 24 h of coronary occlusion (to delineate uptake in tissue that is irreversibly damaged). The residual fraction (that is, the amount of tracer extracted and retained in a region) in ischemic myocardium in the dogs in which 18F-fluoromisonidazole was administered within 3 h after occlusion averaged (+/- standard deviation) 23 +/- 18%, which was higher than the residual fraction in myocardium subjected to ischemia for either 6 or greater than 24 h before tracer administration (12 +/- 7% and 5 +/- 2%, respectively, p less than 0.01 for both). Retention of tracer in remote normal myocardium averaged 2 +/- 1%.(ABSTRACT TRUNCATED AT 250 WORDS)
We recently demonstrated in isolated, perfused hearts that radiolabeled pyruvaldehyde bis(N4-methylthiosemicarbazonato)copper(II) (Cu-PTSM) is well extracted throughout a range of conditions including ischemia, hypoxia, and hyperemia. Once extracted, binding of radioactivity by the isolated heart was essentially irreversible, giving this tracer microspherelike qualities. Because Cu-PTSM can be readily prepared with the generator-produced positron-emitting copper 62 and other gamma- or positron-emitting copper radionuclides, we evaluated its usefulness for measuring regional myocardial and renal blood flow in vivo in intact dogs at rest, after ischemia, or after coronary hyperemia was induced by intravenous administration of dipyridamole. After intravenous administration of radiolabeled Cu-PTSM, the tracer cleared rapidly from the blood. Myocardial uptake of single photon-emitting 67Cu-labeled Cu-PTSM was measured directly in myocardial samples 15 minutes after tracer administration, and it increased proportionally with blood flow throughout the flow range (estimated concomitantly with radiolabeled microspheres) of 0.0-6.0 ml/g/min (n = 340 samples from 17 dogs, r = 0.99, Ycopper radioactivity = 85Xmicrosphere flow -7 chi 2 + 17). Renal uptake of radiolabeled Cu-PTSM was also proportional to blood flow. Positron emission tomography was performed in four intact dogs after intravenous administration of 64Cu-labeled Cu-PTSM (19% positron decay, t1/2 = 12.8 hours). High-quality images of heart and kidney were obtained. Accordingly, radiolabeled Cu-PTSM should be a useful, generator-produced tracer for estimating regional myocardial and renal blood flow with positron emission tomography.
Positron emission tomography (PET) centers without cyclotrons use generator-produced rubidium-82 (82Rb) for assessment of myocardial perfusion. The aim of the present study was to determine whether myocardial blood flow could be assessed quantitatively with 82Rb and PET. Because the myocardial extraction fraction of 82Rb varies inversely and nonlinearly with flow and cannot be measured conveniently with PET, we used an experimentally derived mathematical function defining the relation between single-pass extraction fraction of 82Rb and flow to obviate the necessity of measuring the extraction fraction directly. Myocardial blood flow in absolute terms (ml/g/min) was estimated from dynamic PET scans after intravenous administration of 82Rb in intact dogs and compared with flows measured with radiolabeled microspheres. In 36 comparisons in 13 dogs studied at rest, or after coronary occlusion, reperfusion, or after coronary hyperemia induced with intravenous dipyridamole, over the flow range from 0.2 to 2.0 ml/g/min, estimates of perfusion with rubidium correlated well with flows measured concomitantly with microspheres, although there was a slight underestimation of flow with rubidium (flow by 82Rb = 0.92 x flow by microspheres-0.021, r = 0.83). In general, estimates of flow in ischemic regions were less reliable than estimates for regions with normal flow. Thus, although the relation between myocardial extraction and retention of 82Rb and flow can vary under a variety of physiological and pathophysiological conditions, this study demonstrates the ability to obtain quantitative estimates of myocardial blood flow with 82Rb and PET under carefully defined conditions without measuring the extraction fraction directly.
In initial studies using fluorine-18-fluorodeoxyglucose (FDG) in normal fasted subjects, we observed disparities in the regional myocardial accumulation of this tracer. Accordingly, we systematically evaluated regional myocardial FDG accumulation in comparison with regional myocardial perfusion assessed with oxygen-15-water and oxidative metabolism assessed with carbon-11-acetate in nine normal subjects (four studied after a 5-hr fast and five studied both fasted and following glucose loading). Under fasting conditions, myocardial accumulation of FDG in the septum and anterior wall averaged 80% of that in the lateral and posterior walls (p less than 0.03). In contrast, after glucose loading the regional distribution of myocardial FDG accumulation became more homogeneous. Regional myocardial perfusion, oxidative metabolism, and accumulation of carbon-11-acetate were homogeneous under both conditions. Thus, under fasting conditions there are regional variations in myocardial accumulation of FDG, which are visually apparent, are not associated with concomitant changes in oxidative metabolism or perfusion, and cannot be attributed to partial-volume effects. This significant heterogeneity may limit the specificity of PET with FDG for detecting myocardial ischemia in fasting subjects.
Generator produced positron-emitting radionuclides could potentially expand the application of positron emission tomography (PET) to centers that do not have access to a local cyclotron. The zinc-62/copper-62 radionuclide generator system could serve as a source of positron-emitting copper-62 (62Cu) (t1/2 = 9.74 min) for physiologic imaging. Accordingly, we have prepared zinc-62/copper-62 generators capable of high output (greater than 300 mCi) and used the no-carrier-added eluate in a rapid high yield synthesis of [62Cu] Cu(PTSM) that provides the radiopharmaceutical in a form suitable for intravenous injection (where Cu(PTSM) = pyruvaldehyde bis(N4-methylthiosemicarbazonato) copper(II]. We then demonstrated in pilot studies that [62Cu]Cu(PTSM) provides high quality brain and heart images with PET, accurately delineating cerebral and myocardial perfusion in both experimental animals and in humans (corroborating results of previous experimental studies utilizing longer-lived copper isotopes). The results of this work demonstrate that 62Cu can be conveniently obtained from high-level generators and, when used to label Cu(PTSM), provides a generator-produced radiopharmaceutical capable of providing estimates of cerebral and myocardial perfusion independent of cyclotron-produced radionuclides.
Images from positron emission tomography (PET) are usually presented as transaxial slices portraying tissue radioactivity. Studies can be difficult to interpret from transaxial images, and the temporal changes in tissue tracer concentrations which permit quantitative determinations of metabolism and perfusion are not displayed. We have developed a method to give quantitatively accurate three-dimensional images of myocardial oxygen consumption from serial images of the myocardial washout of carbon-11-acetate. Following i.v. bolus injection, data are collected for 20-30 min. The time-activity curves for each pixel in the transaxial slices are fit to a monoexponential function to determine the washout rate, which is directly related to the rate of myocardial oxygen utilization. Thus, functional images of myocardial oxygen consumption are produced for all seven slices of PET data. A previously developed method is then used to generate realistic and quantitatively accurate three-dimensional images.
Coronary angiography permits identification of stenotic lesions but underestimates their severity and does not provide information regarding their physiologic significance. Evaluation of coronary flow reserve by means of selective coronary artery Doppler flow catheters or quantitative arteriography has been proposed to obtain this information. However, these techniques may not accurately reflect transmural gradients in flow. We evaluated the relationship between flow reserve defined with an epicardial Doppler flow probe and the transmural gradient of flow measured with radiolabeled microspheres in 21 dogs with graded stenoses and correlated results with coronary artery geometry measured morphometrically. Four groups of dogs were studied. In five control dogs without stenosis, reactive hyperemia after 20 seconds of complete coronary occlusion was 4.5 +/- 1.5 (mean +/- SD) times resting flow with an endocardial/epicardial flow ratio at peak flow of 1.0 +/- 0.2. When reactive hyperemia was blunted (without affecting resting flow) by 50% (n = 6), 75% (n = 5), or was abolished completely (n = 5) by coronary stenosis, the endocardial/epicardial flow ratio at peak flow was 1.0 +/- 0.3, 0.7 +/- 0.2, and 0.5 +/- 0.1, respectively. Cross-sectional area of the stenosed segment was reduced by 85.6 +/- 3.5%, 91.1 +/- 2.2%, and 92.8 +/- 4.3% in these groups, respectively. Thus in dogs with stenoses exceeding 86% of the cross-sectional area, endocardial flow reserve is compromised disproportionately compared with epicardial flow reserve, suggesting that clinical measurements of coronary flow reserve may underestimate the physiologic significance of coronary stenoses.
Noninvasive measurement of myocardial blood flow in absolute terms (i.e., milliliters per gram per min) has been difficult to accomplish despite the intrinsically quantitative power of positron emission tomography because of the nonphysiologic nature of tracers that have been employed conventionally as well as the limited spatial resolution of currently available instruments. It was previously demonstrated that myocardial blood flow in animals can be quantitated accurately with the diffusible tracer oxygen-15-labeled water (H2(15)O) when the arterial input function and myocardial radiotracer concentration were measured directly. To extend the approach for completely noninvasive measurement of blood flow, a parameter estimation procedure was developed whereby effects of limited tomographic spatial resolution and cardiac motion were compensated for within the operational flow model. In validation studies in 18 dogs, myocardial blood flow measured with positron emission tomography after intravenously administered H2(15)O correlated closely with flow measured with concomitantly administered radiolabeled microspheres over the range of 0.29 to 5.04 ml/g per min (r = 0.95). Although regional ischemia was clearly identifiable tomographically, absolute flow could not be determined accurately in ischemic regions in four dogs because of poor count statistics related to wall thinning. Subsequently, myocardial blood flow was measured in 11 normal human subjects. Flow was homogeneous throughout the myocardium, averaged 0.90 +/- 0.22 ml/g per min at rest and increased to 3.55 +/- 1.15 ml/g per min after intravenous administration of dipyridamole. Therefore, positron emission tomography with H2 15O and the approach developed permits noninvasive measurement of myocardial blood flow in absolute terms in humans and should facilitate objective assessment of interventions designed to enhance nutritive perfusion.
Potent pharmacological agents that rapidly induce coronary thrombolysis reduce morbidity and mortality from evolving myocardial infarction especially when administered early after the onset of ischemia. However, recanalization frequently unmasks residual, high-grade stenoses that can impair reflow, predispose to reocclusion, and limit salvage of myocardium. Coronary angioplasty performed immediately after recanalization induced by thrombolysis reduces the severity of stenosis and can enhance salvage. Unfortunately, complication rates are higher with emergency compared with delayed angioplasty. Thus, mechanical recanalization early after thrombolysis should be reserved for patients with signs or symptoms of recurrent ischemia or for those in whom pharmacological recanalization has failed but a large amount of myocardium remains at risk.
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The calcium-channel inhibiting agent, diltiazem, has been shown to enhance salvage of reperfused myocardium independent of effects on coronary blood flow or myocardial work. Because lipid peroxidation may be a mediator of reperfusion injury and modifiable by calcium-sensitive pathways, we evaluated the effects of diltiazem on the formation of malondialdehyde (MDA), a product of lipid peroxidation, in isolated rabbit hearts perfused with buffer under control conditions or after 60 minutes of ischemia with or without 3 minutes of reperfusion. Diltiazem (5 x 10(-7)M) reduced tissue MDA content in seven reperfused hearts compared with levels measured in 14 hearts reperfused without drug (1.54 +/- 1.09 [SD] compared with 3.57 +/- 1.88 nmol/g, p less than 0.05). Superoxide dismutase and catalase were ineffective in reducing tissue MDA content in reperfused hearts (n = 8; MDA concentration, 3.88 +/- 2.82 nmol/g) although they were effective in preventing lipid peroxidation in separate studies in which oxygen-centered free radicals were generated directly by an infusion of xanthine oxidase and hypoxanthine. These results suggest that the salutary effects of diltiazem in the setting of reperfusion may be mediated by reduction of lipid peroxidation at a locus not accessible to scavengers of oxygen-centered free radicals or by a mechanism not mediated by free radical pathways.
Fluoromisonidazole, a member of a class of compounds referred to as "hypoxic sensitizers," accumulates in hypoxic, viable tumor cells. We hypothesized that it might therefore accumulate also in ischemic, but non-necrotic myocardium potentially salvageable by interventional therapy. To evaluate the myocardial kinetics of [18F]fluoromisonidazole (FM), 20 isolated perfused rabbit hearts were used to characterize the uptake and binding of tracer under control conditions (n = 6), or with ischemia (flow 10% of control, n = 5), hypoxia without low flow (control flow rates with hypoxic medium, n = 5), or with reperfusion (n = 4). Myocardial retention of tracer detected externally with gamma scintillation probes after 20 min of constant [18F]FM infusion followed by 20 min of washout with nonradioactive buffer was 41 +/- 7% and 46 +/- 8% of peak activity in hearts subjected to ischemia or hypoxia, respectively, and significantly higher than in hearts subjected to either control perfusion or to ischemia followed by reperfusion (18 +/- 6 and 16 +/- 5% of peak activity, respectively, p less than 0.01). The biologic half-time of retained tracer was 40 hr in all hearts indicating essentially irreversible binding. Based on these findings, we measured uptake of [18F]FM using positron emission tomography in five dogs subjected to acute coronary occlusion. Five to thirteen millicuries of tracer were injected within 3 hr of occlusion. Within 30 min after administration of tracer, 18F accumulation in ischemic myocardium was greater than that observed in normal myocardium. The results indicate that [18F]FM accumulates in ischemic myocardium in relation to diminished tissue oxygen content and not simply because of diminished flow. Thus, this class of compounds may be potentially useful to help identify hypoxic myocardium.
We recently demonstrated that the myocardial turnover rate constant (k) measured noninvasively with positron emission tomography (PET) after intravenous administration of [11C]acetate provides a reliable index of myocardial oxidative metabolism (MVO2) theoretically independent of the pattern of myocardial substrate use. However, because estimates of metabolism with other metabolic tracers are sensitive to substrate use, we measured k in 12 dogs during baseline conditions and again after infusion of either glucose (n = 8) or Intralipid (n = 4), interventions that raised arterial glucose or fatty acids by more than fivefold with concomitant changes in myocardial substrate use. Following glucose administration k increased, but no difference was detected after compensation for changes in hemodynamics and myocardial work induced by the infusion (0.18 +/- 0.03 min-1 (t1/2 = 3.9 min) at baseline compared with 0.22 +/- 0.06 min-1 (t1/2 = 3.2 min, p = N.S.). k was not affected by Intralipid infusion (k = 0.15 +/- 0.06 min-1 at baseline and 0.14 +/- 0.04 min-1 during infusion), and correlated closely with MVO2 measured directly (n = 19 comparisons, r = 0.89). The results indicate that estimates of MVO2 using [11C]acetate and PET are valid despite changes in the pattern of myocardial substrate utilization.