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Feasibility of using focused acoustic vortex for enhancing transdermal delivery
Chih-Hsien Li1, Chuan-Wei Kuo1, Ching-Hsiang Fan2
1Department of Biomedical Engineering, National Cheng Kung University, Tainan, Taiwan.
Focused acoustic vortex (FAV) enhances transdermal drug delivery by creating localized vortical flow. This safe ultrasound method improves skin penetration without cavitation or heat, overcoming limitations of conventional approaches.
Area of Science:
- Biomedical Engineering
- Acoustics
- Dermatology
Background:
- Transdermal drug delivery offers a convenient, noninvasive administration route.
- Skin's stratum corneum presents a significant barrier to drug penetration.
- Existing ultrasound methods for enhancing transdermal delivery raise safety concerns due to high energy and cavitation.
Purpose of the Study:
- To introduce and evaluate a novel 1-MHz focused acoustic vortex (FAV) approach for transdermal drug delivery.
- To overcome the safety limitations associated with conventional ultrasound-enhanced transdermal delivery methods.
Main Methods:
- Utilized phase dislocations to generate a 1-MHz focused acoustic vortex (FAV) with spiral wave motion.
- Induced localized vortical flow with high shear stress.
- Measured streaming velocity and assessed penetration enhancement of hydrophilic dyes (Evans blue, dextran) in porcine and rat skin models.
Main Results:
- FAV instantaneously induced stable vortical flow (2.4 mm diameter) within 10 seconds.
- Optimal parameters (1 MPa, 60% duty cycle) yielded peak streaming velocity (1.6 ± 0.4 mm/s).
- Sonication (3 min) with FAV significantly enhanced dye penetration (3.3-fold for EB, 2.1-fold for dextran in porcine skin) compared to conventional focused ultrasound.
- FAV doubled EB penetration in rat skin without adverse effects like temperature elevation or inertial cavitation.
Conclusions:
- The FAV approach effectively enhances transdermal drug penetration by permeabilizing the stratum corneum.
- FAV offers a safer alternative to conventional ultrasound methods, avoiding cavitation and thermal risks.
- This technique holds promise for improving the efficacy of transdermal drug delivery systems.
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