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Shell properties and concentration stability of acoustofluidic delivery agents.
Alsadiq, Hussain; Tupally, Karnaker; Vogel, Robert; Kokil, Ganesh; Parekh, Harendra S; Veidt, Martin.
Afiliación
  • Alsadiq H; School of Mechanical and Mining Engineering, University of Queensland, Brisbane, Australia. h.alsadiq@uq.edu.au.
  • Tupally K; School of Pharmacy, University of Queensland, Brisbane, Australia.
  • Vogel R; School of Mathematics and Physics, University of Queensland, Brisbane, Australia.
  • Kokil G; School of Pharmacy, University of Queensland, Brisbane, Australia.
  • Parekh HS; School of Pharmacy, University of Queensland, Brisbane, Australia.
  • Veidt M; School of Mechanical and Mining Engineering, University of Queensland, Brisbane, Australia.
Phys Eng Sci Med ; 44(1): 79-91, 2021 Mar.
Article en En | MEDLINE | ID: mdl-33398637
This paper investigates the shell elastic properties and the number-concentration stability of a new acoustofluidic delivery agent liposome in comparison to Definity™, a monolayer ultrasonic contrast agent microbubble. The frequency dependent attenuation of an acoustic beam passing through a microbubble suspension was measured to estimate the shell parameters. The excitation voltage was adjusted to ensure constant acoustic pressure at all frequencies. The pressure was kept at the lowest possible magnitude to ensure that effects from nonlinear bubble behaviour which are not considered in the analytical model were minimal. The acoustofluidic delivery agent shell stiffness Sp and friction Sf parameters were determined as (Sp = 0.11 N/m, Sf = 0.31 × 10-6 Kg/s at 25 °C) in comparison to the Definity™ monolayer ultrasound contrast agent which were (Sp = 1.53 N/m, Sf = 1.51 × 10-6 Kg/s at 25 °C). When the temperature was raised to physiological levels, the friction coefficient Sf decreased by 28% for the monolayer microbubbles and by only 9% for the liposomes. The stiffness parameter Sp of the monolayer microbubble decreased by 23% while the stiffness parameter of the liposome increased by a similar margin (27%) when the temperature was raised to 37 °C. The size distribution of the bubbles was measured using Tunable Resistive Pulse Sensing (TRPS) for freshly prepared microbubbles and for bubble solutions at 6 h and 24 h after activation to investigate their number-concentration stability profile. The liposome maintained >80% of their number-concentration for 24 h at physiological temperature, while the monolayer microbubbles maintained only 27% of their number-concentration over the same period. These results are important input parameters for the design of effective acoustofluidic delivery systems using the new liposomes.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Ultrasonido / Microburbujas Tipo de estudio: Diagnostic_studies Idioma: En Revista: Phys Eng Sci Med Año: 2021 Tipo del documento: Article País de afiliación: Australia Pais de publicación: Suiza

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Ultrasonido / Microburbujas Tipo de estudio: Diagnostic_studies Idioma: En Revista: Phys Eng Sci Med Año: 2021 Tipo del documento: Article País de afiliación: Australia Pais de publicación: Suiza