Myocardial perfusion imaging with contrast echocardiography

被引:13
作者
Carr C.L. [1 ]
Lindner J.R. [1 ]
机构
[1] Cardiovascular Division UHN-62, Oregon Health and Science University, Portland, OR 97239
关键词
Acute Coronary Syndrome; Myocardial Perfusion; Myocardial Perfusion Imaging; Myocardial Viability; Contrast Echocardiography;
D O I
10.1007/s11886-008-0039-8
中图分类号
学科分类号
摘要
Advances in myocardial perfusion imaging have firmly established the use of noninvasive techniques capable of providing useful information over a broad range of diagnostic and therapeutic cardiovascular problems. Evaluating regional myocardial perfusion abnormalities is a cornerstone for the diagnosis of coronary artery disease, risk assessment in those with known disease, and determination of myocardial viability. The clinical use of myocardial perfusion imaging and the current limitations of existing techniques continue to promote the development of new technologies capable of assessing microvascular and capillary perfusion abnormalities on a global myocardial level. Myocardial contrast echocardiography is an emerging technique capable of rapidly assessing myocardial perfusion at the capillary level in many different clinical settings. This article focuses on myocardial contrast-enhanced ultrasound perfusion techniques, emphasizing the unique information this modality provides compared with other noninvasive perfusion imaging techniques. © Current Medicine Group LLC 2008.
引用
收藏
页码:233 / 239
页数:6
相关论文
共 47 条
[1]  
Jeetley P., Hickman M., Kamp O., Et al., Myocardial contrast echocardiography for the detection of coronary artery stenosis: A prospective multicenter study in comparison with single-photon emission computed tomography, J Am Coll Cardiol, 47, pp. 141-145, (2006)
[2]  
Kaufmann B.A., Wei K., Lindner J.R., Contrast echocardiography, Curr Probl Cardiol, 32, pp. 51-96, (2007)
[3]  
Raisinghani A., Rafter P., Phillips P., Et al., Microbubble contrast agents for echocardiography: Rationale, composition, ultrasound interactions, and safety, Cardiol Clin, 22, pp. 171-180, (2004)
[4]  
Shi W.T., Forsberg F., Ultrasonic characterization of the nonlinear properties of contrast microbubbles, Ultrasound Med Biol, 26, pp. 93-104, (2000)
[5]  
Leong-Poi H., Song J., Rim S.J., Et al., Influence of microbubble shell properties on ultrasound signal: Implications for low-power perfusion imaging, J Am Soc Echocardiogr, 15, 10 PART 2, pp. 1269-1276, (2002)
[6]  
de Jong N., Hoff L., Skotland T., Bom N., Absorption and scatter of encapsulated gas filled microspheres: Theoretical considerations and some measurements, Ultrasonics, 30, pp. 95-103, (1992)
[7]  
Burns P.N., Harmonic imaging with ultrasound contrast agents, Clin Radiol, 51, SUPPL. 1, pp. 50-55, (1996)
[8]  
Bouakaz A., Versluis M., de Jong N., High-speed optical observations of contrast agent destruction, Ultrasound Med Biol, 31, pp. 391-399, (2005)
[9]  
Gewirtz H., Fischman A.J., Abraham S., Et al., Positron emission tomographic measurements of absolute regional myocardial blood flow permits identification of nonviable myocardium in patients with chronic myocardial infarction, J Am Coll Cardiol, 23, pp. 851-859, (1994)
[10]  
Russell III R.R., Zaret B.L., Nuclear cardiology: Present and future, Curr Probl Cardiol, 31, pp. 557-629, (2006)