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Tailored Calibration Approach for Hemodynamic Boundary Conditions in CT-FFR.

July 2, 2026pubmed logopapers

Authors

Kim YA,Park D,Hwang D,Yang S,Park SH,Nam CW,Doh JH,Kim HK,Kim Y,Chun EJ,Koo BK

Affiliations (8)

  • Department of Clinical Medical Sciences, Seoul National University College of Medicine, Seoul, Korea.
  • Department of Internal Medicine and Cardiovascular Center, Seoul National University Hospital, Seoul National University of College of Medicine, Seoul, Korea.
  • Department of Medicine, Keimyung University Dongsan Medical Center, Daegu, Korea.
  • Department of Medicine, Inje University Ilsan Paik Hospital, Goyang, Korea.
  • Chosun University Hospital, University of Chosun College of Medicine, Gwangju, Korea.
  • Division of Cardiology, Department of Internal Medicine, Yonsei University College of Medicine and Cardiovascular Center, Yongin Severance Hospital, Yongin, Korea.
  • Department of Radiology, Seoul National University Bundang Hospital, Seongnam, Korea.
  • Department of Internal Medicine and Cardiovascular Center, Seoul National University Hospital, Seoul National University of College of Medicine, Seoul, Korea. [email protected].

Abstract

Computed tomography-derived fractional flow reserve (CT-FFR) uses standardized boundary conditions that cannot represent individual patient characteristics. We developed a calibration method to individualize boundary conditions using invasive fractional flow reserve (FFR) measurement. This study assessed the feasibility and impact on prediction of lesion-specific pressure drops (ΔFFR), post-percutaneous coronary intervention (PCI) FFR, and high-risk plaque (HRP) discrimination. This retrospective multicenter study analyzed 79 patients with single left anterior descending lesions. Lumped parameter models were used to calibrate optimal boundary conditions by iteratively minimizing differences between invasive FFR and CT-FFR. HRP was assessed using an artificial intelligence-enabled analysis system, defined as low attenuation plaque, positive remodeling, or both. Discrimination performance was evaluated using ΔCT-FFR and CT-FFR gradient. In 79 patients (median age 65.5 years, 77.2% male), median angiographic percent diameter stenosis 60.0%, median invasive FFR was 0.83 and CT-FFR was 0.81 before calibration. Following calibration, FFR correlation improved from 0.590 to 0.997 (p<0.001). ΔFFR correlation increased from 0.490 to 0.823 (p<0.001). Post-PCI validation showed correlation improvement from 0.440 to 0.871 (p=0.002). HRP discrimination improved for ΔCT-FFR (area under the curve [AUC], 0.62 to 0.70; p=0.018) and CT-FFR gradient (AUC, 0.62 to 0.69; p=0.032). Individualized boundary condition calibration using invasive FFR enables accurate prediction of lesion-specific hemodynamics and post-intervention physiology, showing potential for enhanced procedural planning and risk stratification in patients undergoing coronary angiography.

Topics

Journal Article

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