A new formalism for the quantification of tissue perfusion by the destruction-replenishment method in contrast ultrasound imaging
- 19 June 2006
- journal article
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control
- Vol. 53 (6), 1118-1129
- https://doi.org/10.1109/tuffc.2006.1642510
Abstract
A new formalism is presented for the destruction-replenishment perfusion quantification approach at low mechanical index. On the basis of physical considerations, best-fit methods should be applied using perfusion functions with S-shape characteristics. These functions are first described for the case of a geometry with a single flow velocity, then extended to the case of vascular beds with blood vessels having multiple flow velocity values and directions. The principles guiding the analysis are, on one hand, a linearization of video echo signals to overcome the log-compression of the imaging instrument, and, on the other hand, the spatial distribution of the transmit-receive ultrasound beam in the elevation direction. An in vitro model also is described; it was used to confirm experimentally the validity of the approach using a commercial contrast agent. The approach was implemented in the form of a computer program, taking as input a sequence of contrast-specific images, as well as parameters related to the ultrasound imaging equipment used. The generated output is either flow-parameter values computed in regions-of-interest, or parametric flow-images (e.g., mean velocity, mean transit time, mean flow, flow variance, or skewness). This approach thus establishes a base for extracting information about the morphology of vascular beds in vivo, and could allow absolute quantification provided that appropriate instrument calibration is implemented.Keywords
This publication has 15 references indexed in Scilit:
- Analysis of refill curve shape in ultrasound contrast agent studiesMedical Physics, 2004
- Transit time kinetics in ordered and disordered vascular treesPhysics in Medicine & Biology, 2003
- Hardware and software platform for real-time processing and visualization of echographic radiofrequency signalsIEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, 2002
- Fractal modeling of microbubble destruction-reperfusion in unresolved vesselsPublished by Institute of Electrical and Electronics Engineers (IEEE) ,2002
- On the design of a capillary flow phantom for the evaluation of ultrasound contrast agents at very low flow velocitiesUltrasound in Medicine & Biology, 2002
- Quantification of Cerebral Perfusion With “Real-Time” Contrast-Enhanced UltrasoundCirculation, 2001
- Feasibility of the flash-replenishment concept in renal tissue: which parameters affect the assessment of the contrast replenishment?Japanese Journal of Clinical Oncology, 2001
- Real-time myocardial blood flow imaging in normal human beings with the use of myocardial contrast echocardiographyJournal of the American Society of Echocardiography, 2001
- A Class of Flow Bifurcation Models with Lognormal Distribution and Fractal DispersionJournal of Theoretical Biology, 2000
- Ultrasound scattering properties of Albunex microspheresUltrasonics, 1993