DocumentCode
68360
Title
An experimental study on the stiffness of size-isolated microbubbles using atomic force microscopy
Author
Chen, Choon Chowe ; Shih-Ying Wu ; Finan, J.D. ; Morrison, Barclay ; Konofagou, Elisa
Author_Institution
Dept. of Biomed. Eng., Columbia Univ., New York, NY, USA
Volume
60
Issue
3
fYear
2013
fDate
Mar-13
Firstpage
524
Lastpage
534
Abstract
To fully assess contrast-enhanced acoustic bioeffects in diagnostic and therapeutic procedures, the mechanical properties of microbubbles need to be considered. In the present study, direct measurements of the microbubble stiffness were performed using atomic force microscopy by applying nanoscale compressions (up to 25 nN/s) on size-isolated, lipidcoated microbubbles (diameter ranges of 4 to 6 μm and 6 to 8 μm). The stiffness was found to lie between 4 and 22 mN/m and to decrease exponentially with the microbubble size within the diameter range investigated. No cantilever spring constant effect was found on the measured stiffness. The Young´s modulus of the size-isolated microbubbles used in our study ranged between 0.4 and 2 MPa. Microstructures on the surface of the microbubbles were found to influence the overall microbubble elasticity. Our results indicated that more detailed theoretical models are needed to account for the size-dependent microbubble mechanical properties to accurately predict their acoustic behavior. The findings provided useful insights into guidance of cavitation-induced drug and gene delivery and could be used as part of the framework in studies on the shear stresses induced on the blood vessel walls by oscillating microbubbles.
Keywords
atomic force microscopy; bioacoustics; biological fluid dynamics; bubbles; cavitation; compressive testing; drug delivery systems; gene therapy; lipid bilayers; mechanical properties; Young´s modulus; atomic force microscopy; blood vessel walls; cavitation induced drug delivery; cavitation induced gene delivery; contrast enhanced acoustic bioeffects; diagnostic procedures; lipidcoated microbubbles; microbubble elasticity; microbubble mechanical properties; microbubble size; microbubble stiffness direct measurements; microbubbles acoustic behavior; microbubbles mechanical properties; nanoscale compressions; oscillating microbubbles; phospholipids; pressure 0.4 MPa to 2 MPa; shear stresses; size 4 mum to 6 mum; size 6 mum to 8 mum; size isolated microbubbles; stiffness experimental study; surface microstructures; therapeutic procedures; Force; Force measurement; Glass; Microscopy; Phase locked loops; Springs; Suspensions; Elastic Modulus; Microbubbles; Microscopy, Atomic Force; Nanoparticles; Nanotechnology; Particle Size;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2013.2594
Filename
6470413
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