Literature DB >> 7572579

Comparison of pressure-derived fractional flow reserve with poststenotic coronary flow velocity reserve for prediction of stress myocardial perfusion imaging results.

C Tron1, T J Donohue, R G Bach, F V Aguirre, E A Caracciolo, T L Wolford, D D Miller, M J Kern.   

Abstract

The physiologic importance of coronary stenoses can be assessed indirectly by stress myocardial perfusion imaging or directly by translesional pressure and flow measurements. The aims of this study were to compare myocardial fractional flow reserve (FFRmyo), a recently proposed index of lesion significance derived from hyperemic translesional pressure gradients, with directly measured poststenotic flow velocity reserve for the prediction of myocardial perfusion stress imaging results in corresponding vascular beds. Poststenotic coronary flow velocity (0.018-inch guide wire) and translesional pressure gradients (2.7F fluid-filled catheter) were measured at baseline and after intracoronary adenosine (12 to 18 micrograms) in 70 arteries (diameter stenosis: mean 56% +/- 15%, range 14% to 94% by quantitative angiography). Coronary flow reserve was calculated as the ratio of hyperemic to basal mean flow velocity. FFRmyo was calculated during maximal hyperemia as equal to 1-(hyperemic gradient [mean aortic pressure-5]), where 5 is the assumed central venous pressure. Positive and negative predictive values and predictive accuracy for reversible stress myocardial perfusion abnormalities were computed. There was a significant correlation between pressure-derived FFRmyo and distal coronary flow reserve (r = 0.46; p < 0.0001). The strongest predictor of stress myocardial perfusion imaging results was the poststenotic coronary flow reserve (chi square = 33.2; p < 0.0001). The correlation between stress myocardial perfusion imaging and FFRmyo was also significant (chi square = 8.3; p < 0.005). There was no correlation between stress myocardial perfusion imaging and percentage diameter stenosis (chi square = 2.9; p = 0.10) or minimal lumen diameter (chi square = 0.47; p = 0.73). A poststenotic coronary flow reserve of < or = 2 had a positive predictive value of 89% for regionally abnormal myocardial perfusion imaging abnormalities, whereas the positive predictive values of FFRmyo and angiographic percentage diameter stenosis were only 71% and 67% respectively. In conclusion, the predictive value of poststenotic coronary flow velocity reserve for stress-induced myocardial perfusion abnormalities exceeds that of the translesional FFRmyo. These findings should be considered when applying these techniques for clinical decision making in the assessment of coronary stenosis severity.

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Year:  1995        PMID: 7572579     DOI: 10.1016/0002-8703(95)90070-5

Source DB:  PubMed          Journal:  Am Heart J        ISSN: 0002-8703            Impact factor:   4.749


  10 in total

1.  Functional assessment of coronary artery stenosis by doppler derived absolute and relative coronary blood flow velocity reserve in comparison with (99m)Tc MIBI SPECT.

Authors:  H J Verberne; J J Piek; R A van Liebergen; K T Koch; J M Schroeder-Tanka; E A van Royen
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2.  Quantification of myocardial blood flow using dynamic 320-row multi-detector CT as compared with ¹⁵O-H₂O PET.

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Journal:  Eur Radiol       Date:  2014-04-18       Impact factor: 5.315

Review 3.  [Methods for coronary functional assessment].

Authors:  M Elsner
Journal:  Herz       Date:  1998-03       Impact factor: 1.443

4.  Fractional Flow Reserve: Does a Cut-off Value add Value?

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6.  Recovery of impaired microvascular function in collateral dependent myocardium after recanalisation of a chronic total coronary occlusion.

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Review 7.  Adequate patient selection for coronary revascularization: an overview of current methods used in daily clinical practice.

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Review 8.  Fractional flow reserve as a surrogate for inducible myocardial ischaemia.

Authors:  Tim P van de Hoef; Martijn Meuwissen; Javier Escaned; Justin E Davies; Maria Siebes; Jos A E Spaan; Jan J Piek
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9.  Turbulent flow as a cause for underestimating coronary flow reserve measured by Doppler guide wire.

Authors:  Markus Ferrari; Gerald S Werner; Philipp Bahrmann; Barbara M Richartz; Hans R Figulla
Journal:  Cardiovasc Ultrasound       Date:  2006-03-22       Impact factor: 2.062

10.  Diagnostic value of thallium-201 myocardial perfusion IQ-SPECT without and with computed tomography-based attenuation correction to predict clinically significant and insignificant fractional flow reserve: A single-center prospective study.

Authors:  Haruki Tanaka; Teruyuki Takahashi; Norihiko Ohashi; Koichi Tanaka; Takenori Okada; Yasuki Kihara
Journal:  Medicine (Baltimore)       Date:  2017-12       Impact factor: 1.817

  10 in total

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