Title :
Flow cytometry to characterize microbubbles
Author :
Matula, Thomas J. ; Swalwell, Jarred ; Tu, Juan ; Cui, Weicheng ; Chen, Weizhong
Author_Institution :
Center for Ind. & Med. Ultrasound CIMU, Univ. of Washington, Seattle, WA, USA
Abstract :
Experiments were performed to size, count, and obtain shell parameters for individual ultrasound contrast microbubbles using a modified flow cytometer. Light scattering was modeled with Mie theory and applied to calibration beads to calibrate the system. The size distribution and population were measured directly from the flow cytometer. The shell parameters (shear modulus and shear viscosity) were quantified at different acoustic pressures by fitting microbubble response data to a bubble dynamics model. The size distribution of the contrast agent microbubbles is consistent with manufacturer specifications. The shell shear viscosity increases with increasing equilibrium microbubble size, and decreases with increasing shear rate. The observed trends are independent of driving pressure amplitude. The shell elasticity does not vary with microbubble size. The results suggest that a modified flow cytometer can be an effective tool to characterize the physical properties of microbubbles, including size distribution, population, and shell parameters.
Keywords :
acoustic intensity measurement; bubbles; light scattering; shear modulus; shells (structures); structural acoustics; ultrasonics; viscosity; (shear modulus; acoustic pressures; elasticity; flow cytometry; light scattering; microbubbles; physical properties; shear viscosity); size distribution; ultrasound contrast microbubbles; Acoustics; Elasticity; Low pass filters; Mathematical model; Scattering; Ultrasonic imaging; Viscosity; characterization; flow cytometry; microbubbles; ultrasound contrast agents;
Conference_Titel :
Ultrasonics Symposium (IUS), 2011 IEEE International
Conference_Location :
Orlando, FL
Print_ISBN :
978-1-4577-1253-1
DOI :
10.1109/ULTSYM.2011.0039