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Biomedical subjects

Y Takeishi

Publications and source records attributed to Y Takeishi.

At least 37 records · Page 2Linked to original sources

In vivo phosphorylation of cardiac troponin I by protein kinase Cbeta2 decreases cardiomyocyte calcium responsiveness and contractility in transgenic mouse hearts.

Recently, it has been reported that the protein kinase C (PKC) beta isoform plays a critical role in the development of hypertrophy and heart failure. The purpose of the present study was to clarify the mechanism by which activation of PKCbeta led to depressed cardiac function. Thus, we used a PKCbeta2 overexpressing mouse, an animal model of heart failure, to examine mechanical properties and Ca2+ signals of isolated left ventricular cardiomyocytes. The percentage of shortening, rate of shortening, and rate of relengthening of cardiomyocytes were markedly reduced in PKCbeta2 overexpression mice compared to wild-type control mice, although the baseline level and amplitude of Ca2+ signals were similar. These findings suggested a decreased myofilament responsiveness to Ca2+ in transgenic hearts. Therefore, the incorporation of [32P] inorganic phosphate into cardiac myofibrillar proteins was studied in Langendorff-perfused hearts. There was a significant increase in the degree of phosphorylation of troponin I in PKCbeta2-overexpressing transgenic mice. The depressed cardiomyocyte function improved after the superfusion of a PKCbeta selective inhibitor. These findings indicate that in vivo PKCbeta2-mediated phosphorylation of troponin I may decrease myofilament Ca2+ responsiveness, and thus causes cardiomyocyte dysfunction. Since chronic and excess activation of PKCbeta2 plays a direct and contributory role in the progression of cardiac dysfunction, the PKCbeta selective inhibitor may provide a new therapeutic modality in the setting of heart failure.

Animals↗

Cardiac sympathetic nervous disintegrity is related to exercise intolerance in patients with chronic heart failure.

The aim of this study was to clarify the relationship between cardiac sympathetic nervous activity assessed by 123I-MIBG imaging and exercise capacity in patients with congestive heart failure. The subjects were 24 patients with heart failure (NYHA class II to III) and 7 normal controls. A dose of 148 MBq of 123I-MIBG was administered intravenously, and 5-min anterior planar images were obtained 20 min (early) and 4 h (delayed) after the injection of 123I-MIBG. Regions of interest were placed over the left ventricle and mediastinum, and the heart-to-mediastinum ratio (H/M ratio) was calculated as a fraction of the mean counts per pixel in the heart divided by those in the mediastinum. The washout rate from the myocardium was determined by: (early counts delayed counts) x 100/early counts (%). Treadmill exercise tests were performed using a ramp method within 1 week of the 123I-MIBG studies. During exercise, expired gas was analysed, and peak VO2 and VO2 at the anaerobic threshold (ATVO2) were measured. A significant linear correlation was found between the H/M ratio on delayed 123I-MIBG images and exercise duration (r = 0.48, P < 0.05), peak VO2 (r = 0.49, P < 0.05) and ATVO2 (r = 0.56, P < 0.01). The washout rate of 123I-MIBG was inversely correlated with exercise duration (r = -0.45, P < 0.05), peak VO2 (r = -0.51, P < 0.01), and ATVO2 (r = -0.50, P < 0.05). In conclusion, enhanced cardiac sympathetic nervous activity relates to exercise intolerance in patients with congestive heart failure. The non-invasive assessment of cardiac sympathetic nervous activity by 123I-MIBG can predict exercise capacity in human heart failure.

3-Iodobenzylguanidine↗

Quantitative assessment of myocardial 99mTc-sestamibi uptake during exercise: usefulness of response rate for assessing severity of coronary artery disease.

An increase of 99mTc-sestamibi uptake in the myocardium during exercise was defined as a response rate, and the feasibility of a response rate for detecting coronary artery disease (CAD) was tested. Eighty-seven patients with suspected CAD had myocardial perfusion imaging with 99mTc-sestamibi during exercise and at rest. A dose of 370 MBq of 99mTc-sestamibi was injected at the maximal level of exercise, and a myocardial image was obtained 90 min later (exercise image). Then, 740 MBq of 99mTc-sestamibi was administered at rest, and myocardial imaging was repeated (rest image). The exercise and rest images were corrected for physical decay and injected doses, and the exercise image was subtracted from the rest image to obtain the corrected rest image. A response rate was calculated as follows: (exercise image-corrected rest image)x100/corrected rest image (%). The global response rates of 20 patients without significant coronary stenosis (< or =50%) were higher than those of 67 patients with significant coronary stenosis (81+/-33% and 50+/-28%, p<0.01). Global response rates were correlated with the maximal rate pressure products during exercise (r=0.56, p<0.01) and delta rate pressure products (r=0.53, p<0.01). Regional response rates in myocardial areas perfused by stenotic coronary arteries of < or =50%, 75%, 90% and 99-100% were 60+/-24%,* 56+/-33%,* 40+/-23%* and 30+/-23%,* respectively, (*p<0.01 vs without significant coronary stenosis). The response rates decreased as the severity of coronary artery stenosis advanced, and distinguished between coronary stenoses of graded severity. Accordingly, the response rate from myocardial perfusion imaging with 99mTc-sestamibi may provide complementary information to the conventional inspection with myocardial tomography regarding the severity of CAD.

Coronary Disease↗

Myocardial tomography with technetium-99m-tetrofosmin during intravenous infusion of adenosine triphosphate.

UNLABELLED: The purpose of this study was to determine the biodistribution of 99mTc-tetrofosmin during intravenous infusion of adenosine triphosphate (ATP) and to evaluate the potential diagnostic value of myocardial tomography with 99mTc-tetrofosmin during ATP infusion for the detection of coronary artery disease. METHODS: Myocardial 99mTc-tetrofosmin imaging with ATP infusion and coronary arteriography were performed on 65 patients with suspected coronary artery disease. ATP was infused intravenously at a rate of 0.16 mg/kg/min for 5 min, and 370 MBq of 99mTc-tetrofosmin was injected 3 min after the start of ATP infusion. Myocardial SPECT imags were obtained 60 min later. Then, 740 MBq of 99mTc-tetrofosmin was administered at rest, and myocardial SPECT was repeated. Regional uptakes of 99mTc-tetrofosmin were scored from 4, normal, to 0, no activity. Serial 5-min planar images were obtained in the anterior projection at 15, 30, 45 and 60 min after the 99mTc-tetrofosmin injection in 10 patients. Heart-to-lung and heart-to-liver count ratios were defined from the serial planar images. RESULTS: Adverse effects of ATP infusion were mild and transient. A heart-to-lung ratio after ATP infusion was high even at 15 min (3.40 +/- 0.33) and gradually increased with time. A heart-to-liver ratio after ATP was 0.53 +/- 0.40 at 15 min and increased with time. A heart-to-liver ratio reached 0.99 +/- 0.25 (p < 0.01) after 45 min and 1.32 +/- 0.36 (p < 0.01) after 60 min. The sensitivity and specificity for detecting coronary artery disease by myocardial SPECT with ATP were 89% (39/44) and 86% (18/21), respectively. CONCLUSION: This study shows the favorable biodistribution of 99mTc-tetrofosmin after intravenous infusion of ATP. A one-day imaging protocol of 99mTc-tetrofosmin tomography with ATP is feasible and has high diagnostic accuracy for coronary artery disease.

Adenosine Triphosphate↗

Visualisation of exercise-induced ischaemia of the right ventricle by thallium-201 single photon emission computed tomography.

OBJECTIVE: Exercise thallium-201 (201T1) single photon emission computed tomography (SPECT) has been used to detect potential ischaemia in the left ventricular myocardium but not in the right ventricle. The purpose of this study was to establish the clinical usefulness of a right ventricular polar map of 201T1 SPECT for visualisation of exercise-induced right ventricular ischaemia. METHODS: Myocardial 201T1 SPECT was obtained immediately after treadmill exercise in 97 patients with suspected coronary artery disease. A region of interest was placed over the right ventricle (RV) on post-stress transaxial images. Short axis images of this region were generated and reconstructed as a bull's eye polar map. Normal ranges of RV 201T1 uptake were determined in 12 patients with normal coronary arteries. Scintigraphic criteria for identifying RV perfusion abnormality were derived from 25 patients with right coronary artery (RCA) stenosis greater than 75%. These criteria were applied to 60 consecutive patients with suspected coronary artery disease. RESULTS: Perfusion defects in the RV were larger in patients with proximal RCA stenosis than in those with distal RCA stenosis (mean (SD) 28 (16)% v 6 (5)%, P < 0.001). The sensitivity and specificity of the RV polar map for the detection of proximal RCA stenosis were 67% (8/12) and 98% (47/48), respectively. RV perfusion defects became undetectable in 9 patients who had successful percutaneous transluminal coronary angioplasty to a proximal RCA lesion. CONCLUSIONS: A right ventricular polar map display was useful for visualising exercise-induced right ventricular ischaemia.

Adult↗

Fatty acid metabolic imaging with iodine-123-BMIPP for the diagnosis of coronary artery disease.

UNLABELLED: Iodine-123-BMIPP kinetics under high glucose levels were examined. The feasibility of 123I-BMIPP imaging after oral glucose loading for the detection of impaired fatty acid metabolism was tested in patients with coronary artery disease. METHODS: Fatty acid metabolic imaging with 123I-BMIPP was performed on 29 patients in the fasting state and repeated after oral glucose loading. Myocardial SPECT images were obtained 20 min and 4 hr after the injection of 123I-BMIPP. Myocardial uptake of 123I-BMIPP was calculated by a Ishii-Macintyre method and the clearance of 123I-BMIPP from the myocardium was determined as (early counts-delayed counts) x 100/early counts. Regional accumulation of 123I-BMIPP was scored semiquantitatively from 0 (normal) to 4 (no activity), and the sum of regional scores in each patient was defined as a total defect score (TDS). RESULTS: Total myocardial uptake of 123I-BMIPP was 1.7% +/- 0.4% in the fasting state and 1.6% +/- 0.3% after oral glucose loading (p < 0.05). Iodine-123-BMIPP clearance from the myocardium was faster after glucose loading than in the fasting state (27% +/- 8% versus 11% +/- 6%, p < 0.01). After glucose loading, 123I-BMIPP clearance was faster in the ischemic myocardium (defined as areas perfused by stenosed coronary artery exceeding 90%) than in the nonischemic myocardium (33% +/- 8% versus 25% +/- 9%, p < 0.05). TDS in the ischemic myocardium increased from 1.8 +/- 0.4 in the fasting state to 2.1 +/- 0.4 after glucose loading (p < 0.01). The sensitivity for detecting coronary stenosis exceeding 90% increased from 55% (11/20) in the fasting state to 75% (15/20) after glucose loading without a loss of specificity (78%, 7/9). CONCLUSION: Oral glucose loading enhanced the detection of areas with impaired fatty acid metabolism due to coronary artery narrowing. Iodine-123-BMIPP imaging with oral glucose loading may be a new approach for the noninvasive diagnosis of coronary artery disease.

Adult↗

ACE inhibition reduces cardiac iodine-123-MIBG release in heart failure.

UNLABELLED: Radioiodinated metaiodobenzylguanidine (123I-MIBG), an analog of norepinephrine, has been used to assess cardiac sympathetic nerve activity. Decreased myocardial accumulation and enhanced washout of 123I-MIBG have been reported in patients with congestive heart failure (CHF). The purpose of this study was to determine whether angiotensin converting enzyme (ACE) inhibition reduced 123I-MIBG release and improved cardiac 123I-MIBG accumulation in patients with CHF. METHODS: Twenty-nine patients receiving conventional treatment for CHF, New York Heart Association (NYHA) functional class 2-3, were studied. Nineteen patients received additional treatment with enalapril, an ACE inhibitor, and 10 patients who were treated with conventional therapy alone were defined as a control group. Iodine-123-MIBG imaging and echocardiography were performed on all patients before treatment and repeated after 9.1 +/- 3.0 mo of treatment. Images were obtained 30 min and 4 hr after injection of 123I-MIBG, and a heart to mediastinum (H/M) ratio was defined to quantify cardiac 123I-MIBG uptake as a fraction of the mean counts per pixel in the heart divided by those in the mediastinum. The washout rate of 123I-MIBG from the heart was calculated as follows: (early counts - delayed counts)/early counts x 100(%). RESULTS: In patients with enalapril group, the H/M ratio of 123I-MIBG was increased after treatment (early image: 1.60 +/- 0.22 vs. 1.73 +/- 0.28, p < 0.05, delayed image: 1.63 +/- 0.28 vs. 1.82 +/- 0.33, p < 0.01). The washout rate of 123I-MIBG was reduced from 38% +/- 11% to 30% +/- 12% after treatment (p < 0.01). However in the conventional therapy group, the H/M ratios in the early and delayed images (early image: 1.58 +/- 0.31 vs. 1.52 +/- 0.23, delayed image: 1.49 +/- 0.27 vs. 1.49 +/- 0.25) and the washout rate (34% +/- 8% vs. 33% +/- 7%) remained unchanged after treatment. In patients with an increased H/M ratio of enalapril group (n = 13), a left ventricular ejection fraction increased from 48% +/- 12% to 55% +/- 9% (p < 0.01) after treatment. CONCLUSION: ACE inhibition reduces cardiac 123I-MIBG release and thus lowers cardiac sympathetic nerve activity. Iodine-123-MIBG may be helpful in evaluating the therapeutic effects of ACE inhibition on the cardiac sympathetic nervous system in patients with CHF.

3-Iodobenzylguanidine↗

Iodine-123-BMIPP imaging in unstable angina: a guide for interventional strategy.

UNLABELLED: The aim of this study was to clarify the clinical implications of decreased myocardial uptakes of 123I-labeled beta-methyl-p-iodophenyl-pentadecanoic acid (123I-BMIPP) in patients with unstable angina. METHODS: Fatty acid metabolic imaging with 123I-BMIPP was performed in 20 patients with unstable angina during the pain-free state. Regional uptakes of 123I-BMIPP were scored semiquantitatively, and clinical characteristics and angiographic findings were compared between the patients with the normal and abnormal 123I-BMIPP images. RESULTS: There were 9 patients with normal and 11 patients with abnormal 123I-BMIPP images. Severe coronary stenosis exceeding 90% (91% compared with 44%, p < 0.05) and 99% (82% compared with 0%, p < 0.01) and collateral opacification (36% compared with 0%, p < 0.05) were more frequently observed in patients with abnormal 123I-BMIPP images than in those with normal images. Percutaneous transluminal coronary angioplasty or coronary artery bypass grafting was performed in 22% of patients with normal 123I-BMIPP images and in 82% of patients with abnormal 123I-BMIPP images (p < 0.01). CONCLUSION: Fatty acid metabolic imaging with 123I-BMIPP can determine the functional severity of coronary artery disease and is helpful for a clinical judgment in interventional treatment.

Aged↗

Fatty acid metabolic imaging with 123I-BMIPP for the diagnosis of coronary artery disease: application to patients with diabetes mellitus and hyperlipidaemia.

The aim of this study was to assess the relation of plasma substrate concentration to 123I-beta-methyliodophenyl-pentadecanoic acid (123I-BMIPP) kinetics in the myocardium and to test the application of 123I-BMIPP imaging to patients with diabetes mellitus (DM) and/or hyperlipidemia (HL). 123I-BMIPP imaging was performed on 78 patients with suspected coronary artery disease, 22 with HL, 11 with DM, 12 with HL and DM, and 33 with neither HL or DM. Significant coronary stenosis (defined as > or = 50% of luminal diameter) was documented in 49 patients. After an overnight fast, blood samples were drawn for blood glucose, insulin, cholesterol, triglycerides and free fatty acid levels. Then, 148 MBq 123I-BMIPP was injected intravenously and flushed rapidly with saline. Data were obtained for 60s in a standard anterior projection in list mode, at a rate of 1 frame per second. Myocardial single photon emission tomographic (SPET) images were obtained 20 min and 4 h post-injection. The myocardial uptake of 123I-BMIPP was calculated using the Ishii-MacIntyre method. Regional accumulation of 123I-BMIPP was scored semi-quantitatively from 0 (normal) to 4 (no activity), and the sum of regional scores in each patient was defined as the total defect score (TDS). Myocardial uptake and clearance of 123I-BMIPP had no relation to the levels of blood glucose, insulin, cholesterol, triglycerides or free fatty acids. Myocardial uptake and clearance of 123I-BMIPP, TDS and the sensitivity of detecting significant coronary stenosis were not significantly different between the four groups of patients. We conclude that 123I-BMIPP can be used to detect impaired fatty acid metabolism in patients with diabetes mellitus and/or hyperlipidaemia.

Biological Transport, Active↗

Reverse redistribution of technetium-99m-sestamibi following direct PTCA in acute myocardial infarction.

UNLABELLED: A pattern of reverse redistribution (RR) has not been documented in myocardial 99mTc-sestamibi imaging. The purpose of the study was to clarify the time-related changes in myocardial distribution of 99mTc-sestamibi in patients with acute myocardial infarction. METHODS: Myocardial SPECT with 99mTc-sestamibi was performed in 27 patients with acute myocardial infarction within 1 wk after the onset. Twenty-three patients received direct percutaneous transluminal coronary angioplasty (PTCA) and 4 patients did not. Myocardial images were obtained 1 hr (early) and 3 hr (delayed) after the injection of 99mTc-sestamibi. Regional myocardial uptake of 99mTc-sestamibi was scored from 4 (normal) to 0 (no activity), and the RR pattern was defined as a decrease of more than 1 in the regional score at the 3-hr delayed images. Regional myocardial uptake and clearance of 99mTc-sestamibi was also assessed quantitatively. Coronary arteriography and left ventriculography were performed 1 mo later. RESULTS: Out of 22 patients with successful PTCA, RR of 99mTc-sestamibi was observed in 15 patients (68%). Persistent defects (PD) were seen in 12 patients (7 patients with successful PTCA, 1 patient with unsuccessful PTCA, and 4 patients who did not receive angioplasty). In patients with RR, regional uptake of 99mTc-sestamibi in the area of myocardial infarction decreased from 54% +/- 10% in the early images to 43% +/- 8% in the delayed images (p < 0.01). Technetium-99m-sestamibi clearance from the myocardium was faster in the infarct area than in the normal area (26% +/- 7% versus 9% +/- 6%, p < 0.01). Coronary arteriography performed 1 mo later revealed that the patency of the infarct related artery was 100% (15/15) in patients with RR and 50% (6/12) in those with PD (p < 0.01). The extent and severity of a wall motion abnormality were less in patients with RR than in those with PD (extent: 24 +/- 10 versus 36 +/- 9 chord, p < 0.01; severity: -2.7 +/- 0.4 versus -3.4 +/- 0.6 s.d./chord, p < 0.01). CONCLUSION: The RR of 99mTc-sestamibi was observed in 68% of patients after successful direct PTCA and was associated with the accelerated clearance of 99mTc-sestamibi from the myocardium. The presence of RR in 99mTc-sestamibi imaging indicates the patency of the infarct-related artery and predicts the preserved left ventricular function.

Aged↗

Delayed metabolic recovery of hibernating myocardium after percutaneous transluminal coronary angioplasty: assessment with iodine-123-betamethyl-p-iodophenyl-pentadecanoic acid imaging.

The time course of improvement in fatty acid metabolism after percutaneous transluminal coronary angioplasty (PTCA) was investigated using echocardiography and fatty acid metabolic imaging with iodine-123-betamethyl-p-iodophenyl-pentadecanoic acid (123I-BMIPP) before, 1 week and 3 months after PTCA in 31 patients with angina pectoris. Decreased left ventricular wall motion before PTCA improved 1 week after PTCA in 13 of 31 patients. 123I-BMIPP uptake was reduced in these 13 patients before PTCA, and did not improve 1 week after PTCA. Decreased myocardial uptake of 123I-BMIPP improved 1 week after PTCA in eight of 23 patients (group A). Thirteen patients in whom 123I-BMIPP uptake had not improved 1 week after PTCA showed a delayed recovery of 3 months after PTCA (group B). All patients in groups A and B showed improvement in wall motion 1 week after PTCA. Patients in group B had a higher incidence of unstable angina (77% vs 25%, p < 0.01), 99% or 100% stenosis (62% vs 13%, p < 0.01) and collateral vessels (46% vs 13%, p < 0.05) than those in group A. Serial fatty acid metabolic imaging with 123I-BMIPP after PTCA showed delayed metabolic recovery after improvement in wall motion in 13 of 23 patients. The presence of severe myocardial ischemia before PTCA enhanced the chronological discrepancies between the recovery of wall motion and fatty acid metabolism.

Aged↗

[Quantitative assessment of an increase of myocardial 99mTc-MIBI accumulation during exercise--usefulness of response rate].

The increase of myocardial 99mTc-MIBI accumulation during exercise was evaluated quantitatively, and the feasibility of response rate as a noninvasive marker of coronary stenosis was tested. Myocardial perfusion imaging with 99mTc-MIBI during exercise and at rest was performed in patients with suspected coronary artery disease. A dose of 296 MBq of 99mTc-MIBI was injected intravenously at maximal treadmill exercise, and myocardial image was obtained 90 min later (1st image). Then, 740 MBq of 99mTc-MIBI was administered at rest, and myocardial image was repeated (2nd image). These images were corrected for a decay and injected dose, and the 1st image was subtracted from the 2nd image to obtain the rest image. An increase of myocardial accumulation of 99mTc-MIBI during exercise was defined as (exercise image-rest image) x 100/rest image (response rate). A response rate of a patient with normal coronary artery was 102%, whereas a response rate in the area of severe coronary stenosis was 21% in a patients with angina pectoris. After successful PTCA to a stenosed coronary artery, a response rate increased to 75% in this patient. Coronary perfusion reserve during exercise can be assessed noninvasively by 99mTc-MIBI. Response rate of 99mTc-MIBI provides additional information to conventional perfusion imaging and may be a new marker of severity of coronary artery disease.

Biomarkers↗

Impaired myocardial fatty acid metabolism detected by 123I-BMIPP in patients with unstable angina pectoris: comparison with perfusion imaging by 99mTc-sestamibi.

The present study was undertaken to determine the potential diagnostic value of 123I-BMIPP scintigraphy for the detection of altered myocardial fatty acid metabolism in patients with unstable angina. Both myocardial metabolic imaging with 123I-BMIPP and perfusion imaging with 99mTc-sestamibi were performed at rest in 28 patients with unstable angina in the pain-free state. The regional uptakes of 123I-BMIPP or 99mTc-sestamibi were scored semiquantitatively (0 = normal, 4 = no activity) and compared with the coronary arteriographic findings. Decreased uptakes of 123I-BMIPP were observed in 18 patients, and 11 patients had abnormal 99mTc-sestamibi images. Defect scores of 123I-BMIPP were larger than those of 99mTc-sestamibi (7.8 +/- 2.1 vs. 5.2 +/- 1.9, p < 0.01). The sensitivity for the detection of patients with unstable angina was higher in 123I-BMIPP than in 99mTc-sestamibi (77% vs. 45%, p < 0.01). The site of the decreased 123I-BMIPP uptake corresponded to the most stenotic coronary artery lesion in all patients. Fatty acid metabolic imaging with 123I-BMIPP was more sensitive for detecting myocardial ischemia than perfusion imaging with 99mTc-sestamibi. 123I-BMIPP may be a clue to define the culprit lesion in unstable angina and be helpful to decide the best treatment and guide coronary angioplasty.

Aged↗

Clinical significance of decreased myocardial uptake of 123I-BMIPP in patients with stable effort angina pectoris.

The aim of this study was to assess the feasibility of resting myocardial fatty acid metabolic imaging with 123I-beta-methyliodophenyl-pentadecanoic acid (123I-BMIPP) for the detection of patients with stable effort angina pectoris and to clarify the clinical significance of abnormal 123I-BMIPP images. Myocardial imaging with 123I-BMIPP at rest and 99Tcm-methoxyisobutyl isonitrile (99Tcm-MIBI) at rest and during treadmill exercise was performed in 46 patients with suspected effort angina pectoris. Resting 123I-BMIPP imaging detected 43% (17/40) of patients with significant (> or = 50%) coronary artery stenosis and 59% (17/29) of patients with exercise-induced myocardial ischaemia. The patients with abnormal 123I-BMIPP images terminated exercise after a shorter period (4.5 +/- 2.6 vs 6.7 +/- 4.1 min; P < 0.01) and at a lower rate pressure product (16,124 +/- 5211 vs 20,246 +/- 6564 mmHg x beats min-1; P < 0.01) than those with normal 123I-BMIPP images. The presence of ST depression during the exercise test (77 vs 52%; P < 0.05), severe coronary stenosis exceeding 90% (88 vs 43%; P < 0.01), collateral vessels (35 vs 9%; P < 0.01) and a wall motion abnormality of hypokinesis/akinesis (53 vs 30%; P < 0.05) were more frequently seen in patients with abnormal 123I-BMIPP images than in those with normal images. Resting 123I-BMIPP imaging was able to detect the presence of coronary artery stenosis and exercise-induced myocardial ischaemia with moderate sensitivity, and to determine the functional severity of coronary artery disease.

Angina Pectoris↗

Noninvasive identification of left main and three-vessel coronary artery disease by thallium-201 single photon emission computed tomography during adenosine infusion.

Advanced coronary artery disease, defined as left main or three-vessel coronary disease, was identifiable noninvasively by means of adenosine Tl-201 single photon emission tomography. Among 75 consecutive patients with angiographically documented coronary artery disease, there were 11 patients with the presence (group 1) and 64 patients with the absence (group 2) of advanced coronary artery disease. The lung-to-heart ratio (L/H ratio) of Tl-201 uptake was calculated as the fraction of average Tl-201 counts per pixel in the lung divided by those in the myocardium. The left ventricular dilation ratio (LVDR) was determined as a ratio of left ventricular cavity size in the early image to that in the delayed image. The patients in group 1 had more defects (2.3 +/- 0.6 seg. vs. 0.9 +/- 0.7 seg., p < 0.001), a higher L/H ratio (35 +/- 4% vs. 28 +/- 5%, p < 0.001) and a higher LVDR (1.13 +/- 0.04 vs. 1.06 +/- 0.04, p < 0.001) than those in group 2. The diagnostic accuracy of the identification of advanced coronary artery disease was 89% by perfusion defects, 68% by L/H ratio and 81% by LVDR. Stepwise discriminant analysis revealed that LVDR (F = 36.2, p < 0.0001) and perfusion defects (F = 8.9, p < 0.004) were the significant and independent discriminators of advanced coronary disease. Identification of patients with left main or three-vessel coronary disease was enhanced by additional analysis of cavity dilation of the left ventricle and increased Tl-201 activity in the lung.

Adenosine↗

Noninvasive identification of anthracycline cardiotoxicity: comparison of 123I-MIBG and 123I-BMIPP imaging.

To test the feasibility of myocardial 123I-MIBG and 123I-BMIPP imaging for the early detection of anthracycline cardiotoxicity, 13 patients who had received anthracycline anticancer chemotherapeutic agents were studied. Two-dimensional echocardiography and myocardial imaging with both 123I-MIBG and 123I-BMIPP were performed in 13 patients treated with anthracycline (group A) and 10 normal control subjects (group C). Anterior myocardial images were obtained 15 minutes and 3 hours after the injection of isotopes. The heart-to-mediastinum ratio (H/M ratio) was used to quantify cardiac 123I-MIBG and 123I-BMIPP uptake. The left ventricular shortening fraction (%SF) and the ratio of peak mitral flow velocity in early diastole to that at the time of atrial systole (E/A ratio) were measured by echocardiography. The H/M ratio of 123I-MIBG was lower in group A than in group C (1.5 +/- 0.2 vs. 1.9 +/- 0.2, p < 0.01). The patients in group A had faster clearance of 123I-MIBG from the myocardium than those in group C (27 +/- 10% vs. 22 +/- 4%, p < 0.05). However, the H/M ratio and clearance of 123I-BMIPP were similar between the two groups (H/M ratio: 2.1 +/- 0.2 vs. 2.0 +/- 0.2, clearance: 24 +/- 6% vs. 26 +/- 6%). The %SF (37 +/- 8% vs. 36 +/- 7%) and E/A ratio (1.4 +/- 0.4 vs. 1.6 +/- 0.3) were comparable in groups A and C. The present findings indicated that myocardial imaging with 123I-MIBG could detect myocardial damage in patients treated with anthracycline in the early stage when cardiac systolic and diastolic function was still preserved. Early detection of anthracycline cardiotoxicity by 123I-MIBG would reduce the incidence and severity of heart failure.

3-Iodobenzylguanidine↗

Adenosine-induced heterogeneous perfusion accompanies myocardial ischemia in the presence of advanced coronary artery disease.

The aim of the present study was to elucidate the characteristics of patients in whom transient myocardial ischemia was evoked during adenosine infusion. Thallium-201 (Tl-201) myocardial imaging and two-dimensional echocardiography during adenosine infusion were performed simultaneously in 61 consecutive patients enrolled for the diagnosis of coronary artery disease. Transient reduction of systolic wall motion after adenosine infusion was considered evidence of myocardial ischemia. Tl-201 redistribution was noted in 38 patients, and 23 of them showed a wall motion abnormality during adenosine infusion. Stepwise discriminant analysis was applied to eight variables that showed significant differences by the univariate analysis between patients with the presence and the absence of adenosine-induced wall motion abnormality: myocardial infarction, anginal pain, ST depression, collateral vessels, Tl-201 redistribution, number of diseased vessels of > or = 75% or 90% stenosis and number of segments with Tl-201 redistribution. The number of diseased vessels with > or = 75% stenosis (F = 43.5, p < 0.0001), ST depression (F = 16.0, p < 0.0002), collateral vessels (F = 11.7, p < 0.001) and Tl-201 redistribution (F = 5.6, p < 0.02) were the statistically significant discriminators relating to adenosine-induced wall motion abnormality. Adenosine-induced myocardial ischemia was related to the number of coronary stenoses, reflecting the presence of severe coronary artery disease, and well-developed collaterals that might be integral factors in a coronary steal phenomenon.

Adenosine↗

Organ distribution of thallium-201 during intravenous adenosine infusion: comparison with exercise.

Thallium-201 (Tl-201) distribution during adenosine infusion was assessed quantitatively and compared with that of exercise imaging. Adenosine and exercise Tl-201 single-photon emission computed tomography (SPECT) were performed in 40 patients with suspected coronary artery disease. In the whole-body images (n = 5) and the unprocessed anterior projection images acquired as part of the initial imaging (n = 35), Tl-201 counts in the myocardium were normalized for the injected dose. Total heart counts were higher during adenosine infusion than during exercise (190 +/- 43 counts/MBq vs 145 +/- 31 counts/MBq, p < 0.01). A heart-to-lung count ratio between adenosine infusion and exercise was not different. A heart-to-liver count ratio was lower during adenosine infusion than during exercise (1.3 +/- 0.3 vs 2.3 +/- 0.5, p < 0.01). Regional Tl-201 uptakes at the inferior wall of the left ventricle during adenosine infusion were closely correlated with those uptakes during exercise (r = 0.94, p < 0.01, slope = 0.96). The sensitivity, specificity, and accuracy of adenosine Tl-201 SPECT for the detection of right coronary artery stenosis were comparable with those of exercise imaging. These results indicated that higher Tl-201 uptake in the liver during adenosine than during exercise did not interfere with the interpretation of myocardial images. Tl-201 counts in the myocardium that were larger during adenosine infusion than during exercise reflected a larger increase in coronary blood flow and thus resulted in better image quality.

Adenosine↗