Literature DB >> 2795212

"Upward creep" of the heart: a frequent source of false-positive reversible defects during thallium-201 stress-redistribution SPECT.

J Friedman1, K Van Train, J Maddahi, A Rozanski, F Prigent, J Bietendorf, A Waxman, D S Berman.   

Abstract

A new cause of artifactual 201Tl defects on single photon emission computed tomography (SPECT) termed "upward creep" of the heart is described. In 102 consecutive patients undergoing 201Tl SPECT, 30 (29%) demonstrated upward creep defined by an upward movement of the heart of greater than or equal to 2 pixels during acquisition. In 45 consecutive patients with a less than 5% likelihood of coronary artery disease, 17 (38%) had upward creep. Of these nine had reversible 201Tl defects localized to the inferior and basal inferoseptal walls, while none of the 28 without upward creep had defects. The 17 low likelihood patients with upward creep had longer exercise duration and higher peak heart rate than those without upward creep. In five additional low likelihood patients with upward creep in whom imaging was immediately repeated, the upward creep pattern disappeared on the repeated images. After we changed our test protocol to begin imaging 15 min postexercise, only five (14%) of 36 low likelihood patients tested demonstrated upward creep. Upward creep is probably related to a transient increase in mean total lung volume early following exhaustive exercise, resulting in a mean lower position of the diaphragm (and thus the heart) at the beginning of imaging. The frequency of this source of false-positive 201Tl studies can be reduced by delaying SPECT acquisition until 15 min postexercise.

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Year:  1989        PMID: 2795212

Source DB:  PubMed          Journal:  J Nucl Med        ISSN: 0161-5505            Impact factor:   10.057


  47 in total

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Journal:  J Nucl Cardiol       Date:  2001 Nov-Dec       Impact factor: 5.952

2.  Use of rotating (cine) planar projection images in the interpretation of a tomographic myocardial perfusion study.

Authors:  R C Hendel; R J Gibbons; T M Bateman
Journal:  J Nucl Cardiol       Date:  1999 Mar-Apr       Impact factor: 5.952

3.  Application of pixel truncation to reduce intensity artifacts in myocardial SPECT imaging with Tc-99m tetrofosmin.

Authors:  Masao Funahashi; Tsuyoshi Shimonagata; Kazuhiro Mihara; Kazuyuki Kashiyama; Ryuichi Shimizu; Shuzo Machida; Kazuyuki Izumi; Hideo Kusuoka; Tsunehiko Nishimura; Noritake Hoki; Sei-Ichi Kawamoto
Journal:  J Nucl Cardiol       Date:  2002 Nov-Dec       Impact factor: 5.952

4.  Estimation of Rigid-Body and Respiratory Motion of the Heart From Marker-Tracking Data for SPECT Motion Correction.

Authors:  Joyeeta Mitra Mukherjee; Joseph E McNamara; Karen L Johnson; Joyoni Dey; Michael A King
Journal:  IEEE Trans Nucl Sci       Date:  2009-02       Impact factor: 1.679

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7.  A study to quantify the effect of patient motion and develop methods to detect and correct for motion during myocardial perfusion imaging on a CZT solid-state dedicated cardiac camera.

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Authors:  B Hesse; K Tägil; A Cuocolo; C Anagnostopoulos; M Bardiés; J Bax; F Bengel; E Busemann Sokole; G Davies; M Dondi; L Edenbrandt; P Franken; A Kjaer; J Knuuti; M Lassmann; M Ljungberg; C Marcassa; P Y Marie; F McKiddie; M O'Connor; E Prvulovich; R Underwood; B van Eck-Smit
Journal:  Eur J Nucl Med Mol Imaging       Date:  2005-07       Impact factor: 9.236

9.  Technical aspects of acquiring and measuring myocardial blood flow: Method, technique, and QA.

Authors:  John R Votaw; René R Sevag Packard
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10.  Apparent change in cardiac geometry during single-photon emission tomography thallium-201 acquisition: a complex phenomenon.

Authors:  R L Eisner; A M Aaron; M R Worthy; A S Boyers; A R Leon; W A Fajman; R E Patterson
Journal:  Eur J Nucl Med       Date:  1993-04
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