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PMID: 35600296 Published · epublish English Journal Article

Refining Our Understanding of the Flow Through Coronary Artery Branches; Revisiting Murray's Law in Human Epicardial Coronary Arteries.

Frontiers in physiology ·Vol. 13 ·2022-00-00 ·页码 871912

Taylor DJ, Feher J, Halliday I, Hose DR, Gosling R, Aubiniere-Robb L, van 't Veer M, Keulards D, Tonino PAL, Rochette M, Gunn J, Morris PD

Abstract

Background: Quantification of coronary blood flow is used to evaluate coronary artery disease, but our understanding of flow through branched systems is poor. Murray's law defines coronary morphometric scaling, the relationship between flow (Q) and vessel diameter (D) and is the basis for minimum lumen area targets when intervening on bifurcation lesions. Murray's original law (Q α DP) dictates that the exponent (P) is 3.0, whilst constant blood velocity throughout the system would suggest an exponent of 2.0. In human coronary arteries, the value of Murray's exponent remains unknown. Aim: To establish the exponent in Murray's power law relationship that best reproduces coronary blood flows (Q) and microvascular resistances (Rmicro) in a bifurcating coronary tree. Methods and Results: We screened 48 cases, and were able to evaluate inlet Q and Rmicro in 27 branched coronary arteries, taken from 20 patients, using a novel computational fluid dynamics (CFD) model which reconstructs 3D coronary anatomy from angiography and uses pressure-wire measurements to compute Q and Rmicro distribution in the main- and side-branches. Outputs were validated against invasive measurements using a Rayflow™ catheter. A Murray's power law exponent of 2.15 produced the strongest correlation and closest agreement with inlet Q (zero bias, r = 0.47, p = 0.006) and an exponent of 2.38 produced the strongest correlation and closest agreement with Rmicro (zero bias, r = 0.66, p = 0.0001). Conclusions: The optimal power law exponents for Q and Rmicro were not 3.0, as dictated by Murray's Law, but 2.15 and 2.38 respectively. These data will be useful in assessing patient-specific coronary physiology and tailoring revascularisation decisions.

Keywords
Murray’s exponent bifurcation left main coronary artery stable angina translational physiology
作者与单位
共 12 位作者,点击展开单位 / ORCID
Taylor Daniel J
Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield, Sheffield, United Kingdom.
Feher Jeroen
ANSYS France, Villeurbanne, France.
Halliday Ian
Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield, Sheffield, United Kingdom. | Insigneo Institute for In Silico Medicine, Sheffield, United Kingdom.
Hose D Rodney
Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield, Sheffield, United Kingdom. | Insigneo Institute for In Silico Medicine, Sheffield, United Kingdom.
Gosling Rebecca
Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield, Sheffield, United Kingdom. | Insigneo Institute for In Silico Medicine, Sheffield, United Kingdom. | Department of Cardiology, Sheffield Teaching Hospitals NHS Foundation Trust, Sheffield, United Kingdom.
Aubiniere-Robb Louise
Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield, Sheffield, United Kingdom.
van 't Veer Marcel
Department of Cardiology, Catharina Hospital, Eindhoven, Netherlands. | Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, Netherlands.
Keulards Danielle
Department of Cardiology, Catharina Hospital, Eindhoven, Netherlands.
Tonino Pim A L
Department of Cardiology, Catharina Hospital, Eindhoven, Netherlands. | Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, Netherlands.
Rochette Michel
ANSYS France, Villeurbanne, France.
Gunn Julian
Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield, Sheffield, United Kingdom. | Insigneo Institute for In Silico Medicine, Sheffield, United Kingdom. | Department of Cardiology, Sheffield Teaching Hospitals NHS Foundation Trust, Sheffield, United Kingdom.
Morris Paul D
Department of Infection, Immunity and Cardiovascular Disease, University of Sheffield, Sheffield, United Kingdom. | Insigneo Institute for In Silico Medicine, Sheffield, United Kingdom. | Department of Cardiology, Sheffield Teaching Hospitals NHS Foundation Trust, Sheffield, United Kingdom.
Article Info
Journal
Frontiers in physiology
Abbr.
Front Physiol
ISSN
1664-042X
Published
2022-00-00
电子出版
2022-00-04
页码
871912
Language
English
Country/Region
Switzerland
NLM ID
101549006
基金资助
Wellcome Trust · United Kingdom
British Heart Foundation · TA/F/21/210036 · United Kingdom
British Heart Foundation · TG/19/1/34451 · United Kingdom
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