A new formalism for the quantification of tissue perfusion by the destruct ion-replenishment method in contrast ultrasound Imaging

被引:117
作者
Arditi, Marcel [1 ]
Frinking, Peter J. A. [1 ]
Zhou, Xiang [1 ]
Rognin, Nicolas G. [1 ]
机构
[1] Bracco Res SA, Geneva, Switzerland
关键词
D O I
10.1109/TUFFC.2006.1642510
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A new formalism is presented for the destruct ion-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 How 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, How 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.
引用
收藏
页码:1118 / 1129
页数:12
相关论文
共 18 条
[1]   ULTRASOUND SCATTERING PROPERTIES OF ALBUNEX MICROSPHERES [J].
DEJONG, N ;
HOFF, L .
ULTRASONICS, 1993, 31 (03) :175-181
[2]  
Gautschi W., 1972, HDB MATH FUNCTIONS, P297
[3]   Transit time kinetics in ordered and disordered vascular trees [J].
Karshafian, R ;
Burns, PN ;
Henkelman, MR .
PHYSICS IN MEDICINE AND BIOLOGY, 2003, 48 (19) :3225-3237
[4]  
Kharchakdjian R, 2001, ULTRASON, P1669, DOI 10.1109/ULTSYM.2001.992042
[5]  
Kinsler L. E., 2000, Fundamentals of Acoustics, V4
[6]   Quantification of perfusion of liver tissue and metastases using a multivessel model for replenishment kinetics of ultrasound contrast agents [J].
Krix, M ;
Plathow, C ;
Kiessling, F ;
Herth, F ;
Karcher, A ;
Essig, M ;
Schmitteckert, H ;
Kauczor, HU ;
Delorme, S .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2004, 30 (10) :1355-1363
[7]   A multivessel model describing replenishment kinetics of ultrasound contrast agent for quantification of tissue perfusion [J].
Krix, M ;
Kiessling, F ;
Farhan, N ;
Schmidt, K ;
Hoffend, J ;
Delorme, S .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2003, 29 (10) :1421-1430
[8]   Blood flow quantification with contrast-enhanced US: "Entrance in the section" phenomenon-phantom and rabbit study [J].
Lucidarme, O ;
Franchi-Abella, S ;
Correas, JM ;
Bridal, SL ;
Kurtisovski, E ;
Berger, G .
RADIOLOGY, 2003, 228 (02) :473-479
[9]   Real-time myocardial blood flow imaging in normal human beings with the use of myocardial contrast echocardiography [J].
Murthy, TH ;
Li, P ;
Locvicchio, E ;
Baisch, C ;
Dairywala, I ;
Armstrong, WF ;
Vannan, M .
JOURNAL OF THE AMERICAN SOCIETY OF ECHOCARDIOGRAPHY, 2001, 14 (07) :698-705
[10]   Analysis of refill curve shape in ultrasound contrast agent studies [J].
Potdevin, TC ;
Fowkes, JB ;
Moskalik, AP ;
Carson, PL .
MEDICAL PHYSICS, 2004, 31 (03) :623-632