Related Experiment Video
Updated: Jun 8, 2026

Surgical Placement of Catheters for Long-term Cardiovascular Exercise Testing in Swine
Published on: February 9, 2016
Systematic review and meta-analysis of Murray's law in the coronary arterial circulation
Daniel J Taylor1,2,3, Harry Saxton4, Ian Halliday1,2
1Division of Clinical Medicine, School of Medicine and Population Health, University of Sheffield, Sheffield, United Kingdom.
Insights
This meta-analysis re-evaluates Murray's law for coronary arteries. The optimal flow-diameter exponent is found to be 2.39, closer to theoretical models than the original cubic relationship.
Area of Science:
- Physiology
- Biomedical Engineering
- Cardiovascular Research
Background:
- Murray's law, a physiological principle relating blood flow to vessel diameter (∝D³), informs percutaneous coronary intervention (PCI) minimum lumen area targets.
- The cubic exponent in Murray's law has been debated, with theoretical work suggesting a value closer to 2.33 (7/3).
Purpose of the Study:
- To conduct a meta-analysis to determine the optimal flow-diameter exponent in human and mammalian coronary arteries.
- To compare the empirically derived exponent with existing theoretical models.
Main Methods:
- Systematic review and meta-analysis of studies quantifying flow-diameter exponents in coronary arteries.
- Data sourced from Cochrane, PubMed Medline, Scopus, and Embase databases.
- Random-effects meta-analysis used to pool exponents; risk of bias assessed using NIH tools, funnel plots, and Egger regression.
Main Results:
- Included 18 studies with data from 1,070 coronary trees (372 human, 112 animal).
- The pooled flow-diameter exponent was 2.39 (95% CI: 2.24-2.54), with high heterogeneity (I² = 99%).
- The pooled exponent closely aligns with the theoretical value of 2.33 (7/3).
Conclusions:
- The empirically determined exponent of 2.39 provides a potentially more accurate description of coronary morphometric scaling than Murray's original law.
- Findings have significant implications for assessing, diagnosing, and treating coronary artery disease through interventions like PCI.
Abstract:
Murray's law has been viewed as a fundamental law of physiology. Relating blood flow ([Formula: see text]) to vessel diameter (D) ([Formula: see text]·∝·D3), it dictates minimum lumen area (MLA) targets for coronary bifurcation percutaneous coronary intervention (PCI). The cubic exponent (3.0), however, has long been disputed, with alternative theoretical derivations, arguing this should be closer to 2.33 (7/3). The aim of this meta-analysis was to quantify the optimum flow-diameter exponent in human and mammalian coronary arteries. We conducted a systematic review and meta-analysis of all articles quantifying an optimum flow-diameter exponent for mammalian coronary arteries within the Cochrane library, PubMed Medline, Scopus, and Embase databases on 20 March 2023. A random-effects meta-analysis was used to determine a pooled flow-diameter exponent. Risk of bias was assessed with the National Institutes of Health (NIH) quality assessment tool, funnel plots, and Egger regression. From a total of 4,772 articles, 18 were suitable for meta-analysis. Studies included data from 1,070 unique coronary trees, taken from 372 humans and 112 animals. The pooled flow diameter exponent across both epicardial and transmural arteries was 2.39 (95% confidence interval: 2.24-2.54; I2 = 99%). The pooled exponent of 2.39 showed very close agreement with the theoretical exponent of 2.33 (7/3) reported by Kassab and colleagues. This exponent may provide a more accurate description of coronary morphometric scaling in human and mammalian coronary arteries, as compared with Murray's original law. This has important implications for the assessment, diagnosis, and interventional treatment of coronary artery disease.
More Related Videos
13:07Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022
07:53Standardized Rat Coronary Ring Preparation and Real-Time Recording of Dynamic Tension Changes Along Vessel Diameter
Published on: June 16, 2022