DocumentCode :
129010
Title :
Ultrasound quantification of molecular marker concentration in large blood vessels
Author :
Shiying Wang ; Mauldin, F. William ; Unnikrishnan, Sunil ; Klibanov, Alexander L. ; Hossack, John A.
Author_Institution :
Dept. of Biomed. Eng., Univ. of Virginia, Charlottesville, VA, USA
fYear :
2014
fDate :
3-6 Sept. 2014
Firstpage :
831
Lastpage :
834
Abstract :
Ultrasound-based molecular imaging has been used in pre-clinical studies of cancer and cardiovascular diseases. Current techniques involve the detection of molecularly bound microbubbles through some combination of nonlinear microbubble detection and lengthy waiting periods or low-pass interframe filtering techniques. Non-specific adhesion is typically measured using additional control microbubble injections. In addition to having prolonged protocols, current limitations include the inability to quantify molecular marker concentration in human tissue environments where attenuation and imaging path lengths are highly variable. Consequently, we developed a new modulated Acoustic Radiation Force-based imaging sequence, which can detect targeted adhesion without the requirement of separate control measurements. Results indicate that the metric extracted from the sequence (residual-to-saturation ratio, Rresid) was independent of acoustic pressures and attenuation levels (p > 0.5, n = 10). Rresid exhibited a linear relationship with measured molecular marker concentration (R2 > 0.94). Consequently, the feasibility was demonstrated in vitro for quantification of molecular marker concentration in large vessel environments. Additionally, the feasibility of using the modulated ARF-based sequence to separate specific adhesion of adherent microbubbles was also demonstrated in a mouse model of inflammation in vivo.
Keywords :
adhesion; biomedical imaging; blood vessels; cancer; ultrasonic imaging; Acoustic Radiation Force; adhesion; blood vessels; cancer; cardiovascular diseases; human tissue environment; inflammation; low pass interframe filtering technique; molecular marker concentration; mouse model; nonlinear microbubble detection; ultrasound based molecular imaging; ultrasound quantification; Acoustics; Attenuation; In vitro; Mice; Molecular imaging; Ultrasonic imaging; acoustic radiation force; molecular imaging; quantification; ultrasound;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium (IUS), 2014 IEEE International
Conference_Location :
Chicago, IL
Type :
conf
DOI :
10.1109/ULTSYM.2014.0204
Filename :
6931743
Link To Document :
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