DocumentCode :
1760861
Title :
Increasing the sonoporation efficiency of targeted polydisperse microbubble populations using chirp excitation
Author :
McLaughlan, James ; Ingram, Nicola ; Smith, Peter ; Harput, Sevan ; Coletta, P. Louise ; Evans, Steve ; Freear, Steven
Author_Institution :
Ultrasound Group, Univ. of Leeds, Leeds, UK
Volume :
60
Issue :
12
fYear :
2013
fDate :
Dec. 2013
Firstpage :
2511
Lastpage :
2520
Abstract :
The therapeutic use of microbubbles for targeted drug or gene delivery is a highly active area of research. Phospholipid-encapsulated microbubbles typically have a polydisperse size distribution over the 1 to 10 μm range and can be functionalized for molecular targeting and loaded with drug-carrying liposomes. Sonoporation through the generation of shear stress on the cell membrane by microbubble oscillations is one mechanism that results in pore formation in the cell membrane and can improve drug delivery. A microbubble oscillating at its resonant frequency would generate maximum shear stress on a membrane. However, because of the polydisperse nature of phospholipid microbubbles, a range of resonant frequencies would exist in a single population. In this study, the use of linear chirp excitations was compared with equivalent duration and acoustic pressure tone excitations when measuring the sonoporation efficiency of targeted microbubbles on human colorectal cancer cells. A 3 to 7 MHz chirp had the greatest sonoporation efficiency of 26.9 ± 5.6%, compared with 16.4 ± 1.1% for the 1.32 to 3.08 MHz chirp. The equivalent 2.2- and 5-MHz tone excitations have efficiencies of 12.8 ± 2.1% and 15.6 ± 1.1%, respectively, which were all above the efficiency of 4.1 ± 3.1% from the control exposure.
Keywords :
biomedical ultrasonics; biomembranes; bubbles; cancer; cellular biophysics; drug delivery systems; lipid bilayers; ultrasonic therapy; acoustic pressure tone excitations; cell membrane; drug-carrying liposomes; frequency 1.32 MHz to 7 MHz; gene delivery; human colorectal cancer cells; linear chirp excitations; microbubble oscillations; molecular targeting; phospholipid-encapsulated microbubbles; polydisperse size distribution; pore formation; resonant frequency; shear stress; sonoporation efficiency; targeted drug delivery; targeted polydisperse microbubble populations; therapeutics; Chirp; Fluorescence; Resonant frequency; Sociology; Statistics; Transducers; Ultrasonic imaging; Drug Delivery Systems; Fluorescent Dyes; HCT116 Cells; Humans; Microbubbles; Particle Size; Sonication;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.2850
Filename :
6666072
Link To Document :
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