基于人工智能分析容积计算机断层扫描检测到的冠状动脉狭窄的分数血流储备的价值与血流动力学的相关性。

IF 1.3 4区 医学 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Rofo-fortschritte Auf Dem Gebiet Der Rontgenstrahlen Und Der Bildgebenden Verfahren Pub Date : 2024-12-01 Epub Date: 2024-04-17 DOI:10.1055/a-2271-0887
Hans-Jürgen Noblé, Nadine Mühlbauer, Josef Ehling, Paul Martin Bansmann
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引用次数: 0

摘要

我们的工作旨在证明,基于人工智能分析计算机断层扫描检测到的冠状动脉狭窄的分数流量储备,对于胸痛不明确、疑似稳定型冠状动脉心脏病且检测前概率为中低的患者的血液动力学相关性具有重要意义。在这些患者中,还通过计算机断层扫描确定了分流量储备,并使用人工智能对其进行了调节。分流量储备的计算值与计算机断层扫描确定的狭窄程度在所有三个冠状动脉血管区域(LAD/CX/RCA)均显示出中等程度的显著负相关(相关系数 rho = 0.54/0.54/0.6;p
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The value of AI-based analysis of fractional flow reserve of volume computed tomographically detected coronary artery stenosis with regard to their hemodynamic relevance.

Purpose:  The aim of our work was to demonstrate the importance of artificial intelligence-based analysis of fractional flow reserves of computed tomographically detected coronary artery stenosis with regard to their hemodynamic relevance in patients with unclear chest pain and suspected stable coronary heart disease with a low to medium pre-test probability.

Material and methods:  The collective of our retrospective analysis includes 63 patients in whom coronary artery stenosis was detected by volume computed tomographic examination in "one beat, whole heart" mode in the period from March to October 2022. In these patients, the fractional flow reserve was also determined by computed tomography, which was modulated by the use of artificial intelligence.

Results:  The calculated values of the fractional flow reserve and the degrees of stenosis determined by computed tomography showed a moderate and significant negative correlation for all three coronary vascular territories (LAD/CX/RCA) (correlation coefficient rho = 0.54/0.54/0.6; p < 0.01 respectively). In just over a third (37.6 %) of all stenoses classified as high-grade by computed tomography, the assessment of hemodynamic relevance by calculating the fractional flow reserve deviated from the severity of the stenosis diagnosed by computed tomography, while the results in the peripheral areas "no stenosis/vascular occlusion" were 100 % consistent in each case.

Conclusion:  The present results of this work illustrate that the calculation of the fractional flow reserve based on artificial intelligence as a supplement to volume computed tomography of the heart can make a decisive contribution to further therapy planning by increasing the specificity of the purely morphological method by the physiological aspect.

Key points:   · Calculation of fractional flow reserve is a useful addition to computed tomography of the heart.. · It provides possibility to dispense with unnecessary further diagnostics by increasing specificity.. · The combination of both procedures leads to therapy optimization for patients..

Citation format: · Noblé H, Mühlbauer N, Ehling J et al. The value of AI-based analysis of fractional flow reserve of volume computed tomographically detected coronary artery stenosis with regard to their hemodynamic relevance. Fortschr Röntgenstr 2024; 196: 1253 - 1261.

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