Literature DB >> 6736455

Diffuse slow washout of myocardial thallium-201: a new scintigraphic indicator of extensive coronary artery disease.

T M Bateman, J Maddahi, R J Gray, F L Murphy, E V Garcia, C M Conklin, M J Raymond, M E Stewart, H J Swan, D S Berman.   

Abstract

When coronary artery disease is extensive and of relatively uniform severity, regional myocardial hypoperfusion may be balanced during stress, precluding development of spatially relative perfusion defects. Assessment of the washout of thallium-201 from myocardial regions may provide diagnostic assistance in these cases because washout analysis is spatially nonrelative and hypoperfused myocardial regions manifest a slow thallium-201 washout rate. In 1,265 consecutive patients having quantitatively analyzed stress-redistribution scintigraphy, 46 had a diffuse slow washout pattern with no or a maximum of one regional perfusion defect. Thirty-two underwent clinically indicated coronary angiography, and 23 (72%) of these were found to have three vessel or left main disease. Of 30 similar patients without a diffuse slow washout pattern and with no or a maximum of one perfusion defect, only 5 (17%) had extensive coronary disease. An independent relation between diffuse slow washout and extensive coronary disease was demonstrated by a Mantel- Haentzel chi-square analysis of a wide variety of other indexes of extensive disease. A diffuse washout abnormality, even in the absence of other scintigraphic, clinical or electrocardiographic indicators, carries a high predictive value for three vessel or left main coronary artery disease. The predictive value is maintained when the exercise level achieved is submaximal. Although an infrequent occurrence (3.6% of tested patients), a diffuse slow washout pattern without other scintigraphic indications of extensive coronary disease should lead to further diagnostic testing.

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Year:  1984        PMID: 6736455     DOI: 10.1016/s0735-1097(84)80319-8

Source DB:  PubMed          Journal:  J Am Coll Cardiol        ISSN: 0735-1097            Impact factor:   24.094


  17 in total

Review 1.  The use of computer-assisted diagnosis in cardiac-perfusion nuclear medicine studies: a review.

Authors:  F L Datz; F V Gabor; P E Christian; G T Gullberg; C E Menzel; K A Morton
Journal:  J Digit Imaging       Date:  1992-11       Impact factor: 4.056

2.  Uncertainty of Myocardial Perfusion Imaging in Chest Pain Risk Stratification.

Authors:  Htoo Kyaw; Sivacharan Buddhavarapu; Joseph Abboud; Deepika Misra
Journal:  Ochsner J       Date:  2017

Review 3.  Present and future of clinical cardiovascular PET imaging in Europe--a position statement by the European Council of Nuclear Cardiology (ECNC).

Authors:  D Le Guludec; R Lautamäki; J Knuuti; J J Bax; F M Bengel
Journal:  Eur J Nucl Med Mol Imaging       Date:  2008-06-26       Impact factor: 9.236

Review 4.  What is the current status of quantification and nuclear medicine in cardiology?

Authors:  G Hör
Journal:  Eur J Nucl Med       Date:  1996-07

5.  Predictors of high-risk coronary artery disease in subjects with normal SPECT myocardial perfusion imaging.

Authors:  Rine Nakanishi; Heidi Gransar; Piotr Slomka; Reza Arsanjani; Aryeh Shalev; Yuka Otaki; John D Friedman; Sean W Hayes; Louise E B Thomson; Mathews Fish; Guido Germano; Aiden Abidov; Leslee Shaw; Alan Rozanski; Daniel S Berman
Journal:  J Nucl Cardiol       Date:  2015-05-14       Impact factor: 5.952

6.  Quantitative assessment of thallium myocardial washout rate: importance of peak heart rate and lung thallium uptake in defining normal values.

Authors:  T Nishimura; T Uehara; K Hayashida; T Kozuka; M Saito; T Sumiyoshi
Journal:  Eur J Nucl Med       Date:  1987

7.  Clinical Quantification of Myocardial Blood Flow Using PET: Joint Position Paper of the SNMMI Cardiovascular Council and the ASNC.

Authors:  Venkatesh L Murthy; Timothy M Bateman; Rob S Beanlands; Daniel S Berman; Salvador Borges-Neto; Panithaya Chareonthaitawee; Manuel D Cerqueira; Robert A deKemp; E Gordon DePuey; Vasken Dilsizian; Sharmila Dorbala; Edward P Ficaro; Ernest V Garcia; Henry Gewirtz; Gary V Heller; Howard C Lewin; Saurabh Malhotra; April Mann; Terrence D Ruddy; Thomas H Schindler; Ronald G Schwartz; Piotr J Slomka; Prem Soman; Marcelo F Di Carli; Andrew Einstein; Raymond Russell; James R Corbett
Journal:  J Nucl Cardiol       Date:  2018-02       Impact factor: 5.952

8.  Validation in the canine model of a new non-invasive method of measuring coronary blood flow reserve: split dose thallium-201 rest/stress imaging.

Authors:  J A Diamond; J Machac; S Vallabhajosula; M J Henzlova; M K Ali; C K Mezrow; A Gandses; A Travis; R A Phillips
Journal:  Int J Cardiovasc Imaging       Date:  2001-04       Impact factor: 2.357

9.  Imaging technology for myocardial perfusion single-photon emission computed tomography 2018 in Japan.

Authors:  Takayuki Shibutani; Koichi Okuda; Hajime Ichikawa; Toyohiro Kato; Kenta Miwa; Hiroyuki Tsushima; Masahisa Onoguchi; Akio Nagaki
Journal:  Jpn J Radiol       Date:  2020-01-09       Impact factor: 2.374

10.  Prevalence, location, and extent of significant coronary artery disease in patients with normal myocardial perfusion imaging.

Authors:  Shu Yokota; Jan Paul Ottervanger; Mohamed Mouden; Jorik R Timmer; Siert Knollema; Pieter L Jager
Journal:  J Nucl Cardiol       Date:  2014-01-28       Impact factor: 5.952

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