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Published on: April 13, 2015
Computational Assessment of Blood Flow Heterogeneity in Peritoneal Dialysis Patients' Cardiac Ventricles
Sanjay R Kharche1,2, Aaron So2,3, Fabio Salerno1
1Kidney Clinical Research Unit, Lawson's Health Research Institute, Victoria Hospital, London, ON, Canada.
Insights
Dialysis can increase cardiovascular risks by affecting blood flow in the heart. A new biophysical model reveals how changes in blood vessel size and pressure cause this heterogeneity, offering insights for patient care.
Area of Science:
- Cardiovascular Physiology
- Biophysics
- Medical Imaging Analysis
Background:
- Dialysis is crucial for life extension but is associated with increased cardiovascular mortality.
- Existing imaging data suggests dialysis alters myocardial blood flow (BF) heterogeneity, but underlying mechanisms are unclear.
- Understanding coronary BF heterogeneity is vital for mitigating dialysis-related cardiovascular risks.
Purpose of the Study:
- To develop and utilize a biophysical model of the human coronary vasculature.
- To explain observed imaging data on myocardial BF heterogeneity in dialysis patients.
- To identify the specific vascular mechanisms contributing to coronary BF heterogeneity.
Main Methods:
- Acquisition of CT images from patients under various conditions (control, stress, therapy).
- Development of a 3D human vasculature model using coronary morphometry and a space-filling algorithm.
- Steady-state simulations to assess the impact of altered aortic pressure and vessel diameters on myocardial BF heterogeneity.
Main Results:
- Simulations indicated that increased coronary perfusion pressure elevates total coronary BF.
- BF heterogeneity is inversely related to small blood vessel diameters and differentially affected by large vs. small vessel blockage.
- Large artery stenosis simulation resulted in heterogeneous BF, multi-modal histograms, and reduced transmural BF heterogeneity.
Conclusions:
- Large vessel stenosis may be a cause of complex BF distributions (multi-modal histograms) observed in patients.
- Therapeutic interventions like cooling dialysate or pharmacological stress may improve BF if they dilate small vessels.
- The developed model and methods offer potential for personalized assessment of patient BF status in clinical settings.
Abstract:
Dialysis prolongs life but augments cardiovascular mortality. Imaging data suggests that dialysis increases myocardial blood flow (BF) heterogeneity, but its causes remain poorly understood. A biophysical model of human coronary vasculature was used to explain the imaging observations, and highlight causes of coronary BF heterogeneity. Post-dialysis CT images from patients under control, pharmacological stress (adenosine), therapy (cooled dialysate), and adenosine and cooled dialysate conditions were obtained. The data presented disparate phenotypes. To dissect vascular mechanisms, a 3D human vasculature model based on known experimental coronary morphometry and a space filling algorithm was implemented. Steady state simulations were performed to investigate the effects of altered aortic pressure and blood vessel diameters on myocardial BF heterogeneity. Imaging showed that stress and therapy potentially increased mean and total BF, while reducing heterogeneity. BF histograms of one patient showed multi-modality. Using the model, it was found that total coronary BF increased as coronary perfusion pressure was increased. BF heterogeneity was differentially affected by large or small vessel blocking. BF heterogeneity was found to be inversely related to small blood vessel diameters. Simulation of large artery stenosis indicates that BF became heterogeneous (increase relative dispersion) and gave multi-modal histograms. The total transmural BF as well as transmural BF heterogeneity reduced due to large artery stenosis, generating large patches of very low BF regions downstream. Blocking of arteries at various orders showed that blocking larger arteries results in multi-modal BF histograms and large patches of low BF, whereas smaller artery blocking results in augmented relative dispersion and fractal dimension. Transmural heterogeneity was also affected. Finally, the effects of augmented aortic pressure in the presence of blood vessel blocking shows differential effects on BF heterogeneity as well as transmural BF. Improved aortic blood pressure may improve total BF. Stress and therapy may be effective if they dilate small vessels. A potential cause for the observed complex BF distributions (multi-modal BF histograms) may indicate existing large vessel stenosis. The intuitive BF heterogeneity methods used can be readily used in clinical studies. Further development of the model and methods will permit personalized assessment of patient BF status.

