Evidence mapPaperPMID 42498918Full record

ArticleAnnals of biomedical engineering2026

Effects of Pulsatile Flow on Fractional Flow Reserve Assessed Using a Reduced-Order Model.

Wonjin Choi, Bon-Kwon Koo, Jung-Kyu Han, Inpyo Lee, Hyun Jin Kim

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Article in Annals of biomedical engineering, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 · Who and what money

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5 authors.

Wonjin ChoiDepartment of Mechanical Engineering, Korea Advanced Institute of Science and Technology, Daejeon, South Korea.
Bon-Kwon KooDepartment of Internal Medicine, Seoul National University Hospital, Seoul, South Korea.
Jung-Kyu HanDepartment of Internal Medicine, Seoul National University Hospital, Seoul, South Korea.
Inpyo LeeDepartment of Mechanical Engineering, Korea Advanced Institute of Science and Technology, Daejeon, South Korea.
Hyun Jin KimDepartment of Mechanical Engineering, Korea Advanced Institute of Science and Technology, Daejeon, South Korea. kim.hyunjin@kaist.ac.kr.ORCID http://orcid.org/0000-0003-0358-4972

Funding

National Institute of Food and Drug Safety Evaluation RS-2023-00215667National Research Foundation of Korea RS-2022-NR070832Samsung Science and Technology Foundation SRFC-IT2401-04
6 · The paper itself

Abstract

purposeComputationally derived fractional flow reserve (FFR) has emerged as a noninvasive alternative for evaluating the functional severity of coronary artery stenosis and supporting clinical decision-making. However, the intrinsic reliability of FFR under physiological variability remains an important unresolved issue. This uncertainty is difficult to quantify using high-fidelity simulations alone because of their prohibitive computational cost. The purpose of this study is to quantify the uncertainty of FFR estimates under stochastic, pulsatile physiological boundary conditions and to identify the dominant physiological contributors to FFR variability.

methodsAn accurate and computationally efficient uncertainty quantification framework was developed by integrating a reduced-order model derived from three-dimensional simulations with polynomial chaos expansion. The framework couples a calibrated one-dimensional coronary blood flow solver with physiologically informed lumped parameter networks, enabling efficient simulation of realistic pulsatile coronary hemodynamics. Seventeen physiological parameters related to myocardial mechanics and systemic circulation were treated as stochastic inputs, and global sensitivity analysis was conducted to assess their contributions to FFR variability.

resultsThe sensitivity analysis identified the myocardial compression parameter as the dominant contributor to FFR variability, followed by selected systemic and cardiac parameters that contribute to aortic pressure. Across all simulated configurations, FFR demonstrated high robustness under broad physiological uncertainty, including cases near clinically relevant decision thresholds. A strong linear relationship was consistently observed between the mean FFR and its standard deviation, indicating that intrinsic hemodynamic variability changes systematically with stenosis severity; however, the magnitude of this variability remained limited within the physiological parameter space investigated.

conclusionThis study provides a quantitative basis for interpreting the physiological robustness of FFR and for characterizing its intrinsic variability under realistic pulsatile hemodynamic conditions. The limited variability observed near clinically relevant decision thresholds supports the reliability of cycle-averaged FFR as a functional index of coronary stenosis severity. Within the physiological parameter space investigated, the limited influence of detailed pulsatile inflow information on cycle-averaged FFR also supports the practical use of steady or quasi-steady assumptions in many computational FFR workflows.

Indexed as

Coronary blood flowFractional flow reservePhysiological variabilityPolynomial chaos expansionPulsatile hemodynamicsReduced-order modeling

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.