TY - JOUR
T1 - Estimation of Cardiovascular Relative Pressure Using Virtual Work-Energy
AU - Marlevi, David
AU - Ruijsink, Bram
AU - Balmus, Maximilian
AU - Dillon-Murphy, Desmond
AU - Fovargue, Daniel
AU - Pushparajah, Kuberan
AU - Bertoglio, Cristóbal
AU - Colarieti-Tosti, Massimiliano
AU - Larsson, Matilda
AU - Lamata, Pablo
AU - Figueroa, C Alberto
AU - Razavi, Reza
AU - Nordsletten, David A
PY - 2019/2/4
Y1 - 2019/2/4
N2 - Many cardiovascular diseases lead to local increases in relative pressure, reflecting the higher costs of driving blood flow. The utility of this biomarker for stratifying the severity of disease has thus driven the development of methods to measure these relative pressures. While intravascular catheterisation remains the most direct measure, its invasiveness limits clinical application in many instances. Non-invasive Doppler ultrasound estimates have partially addressed this gap; however only provide relative pressure estimates for a range of constricted cardiovascular conditions. Here we introduce a non-invasive method that enables arbitrary interrogation of relative pressures throughout an imaged vascular structure, leveraging modern phase contrast magnetic resonance imaging, the virtual work-energy equations, and a virtual field to provide robust and accurate estimates. The versatility and accuracy of the method is verified in a set of complex patient-specific cardiovascular models, where relative pressures into previously inaccessible flow regions are assessed. The method is further validated within a cohort of congenital heart disease patients, providing a novel tool for probing relative pressures in-vivo.
AB - Many cardiovascular diseases lead to local increases in relative pressure, reflecting the higher costs of driving blood flow. The utility of this biomarker for stratifying the severity of disease has thus driven the development of methods to measure these relative pressures. While intravascular catheterisation remains the most direct measure, its invasiveness limits clinical application in many instances. Non-invasive Doppler ultrasound estimates have partially addressed this gap; however only provide relative pressure estimates for a range of constricted cardiovascular conditions. Here we introduce a non-invasive method that enables arbitrary interrogation of relative pressures throughout an imaged vascular structure, leveraging modern phase contrast magnetic resonance imaging, the virtual work-energy equations, and a virtual field to provide robust and accurate estimates. The versatility and accuracy of the method is verified in a set of complex patient-specific cardiovascular models, where relative pressures into previously inaccessible flow regions are assessed. The method is further validated within a cohort of congenital heart disease patients, providing a novel tool for probing relative pressures in-vivo.
UR - http://www.scopus.com/inward/record.url?scp=85061047544&partnerID=8YFLogxK
U2 - 10.1038/s41598-018-37714-0
DO - 10.1038/s41598-018-37714-0
M3 - Article
C2 - 30718699
SN - 2045-2322
VL - 9
JO - Scientific Reports
JF - Scientific Reports
IS - 1
M1 - 1375
ER -