Literature DB >> 11879737

Dependence of low-frequency sonophoresis on ultrasound parameters; distance of the horn and intensity.

T Terahara1, S Mitragotri, J Kost, R Langer.   

Abstract

Sonophoresis at a frequency of 20 kHz has been shown to enhance transdermal drug delivery, a phenomenon referred to as low-frequency sonophoresis. This study provides an investigation of the dependence of low-frequency sonophoresis on various ultrasound parameters, including the distance of the horn from the skin, intensity, and frequency. We performed in vitro experiments with full thickness pig skin to measure enhancements of skin conductivity and drug permeability. Ultrasound was applied to pretreat the skin using a sonicator operating at a frequency of either 20 or 40 kHz. We also measured pitting of aluminum foil to measure cavitation, which is the principal mechanism of low-frequency sonophoresis. The skin conductivity enhancement was found to be inversely proportional to the distance of the horn from the skin. As the intensity increased, skin conductivity enhancement also increased up to a certain threshold, and then dropped off. The intensities (I(max)) at which maximum enhancement occur are about 14 W/cm2 for 20 kHz and 17 W/cm2 for 40 kHz. These findings may be useful in optimizing low-frequency sonophoresis. Overall, the dependence of transport on ultrasound parameters is similar to that of aluminum foil pitting. These results support the role of cavitation in low-frequency sonophoresis.

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Year:  2002        PMID: 11879737     DOI: 10.1016/s0378-5173(01)00981-4

Source DB:  PubMed          Journal:  Int J Pharm        ISSN: 0378-5173            Impact factor:   5.875


  13 in total

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2.  Sonophoresis-mechanisms and application.

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4.  Applicability and safety of dual-frequency ultrasonic treatment for the transdermal delivery of drugs.

Authors:  Carl M Schoellhammer; Sharanya Srinivasan; Ross Barman; Stacy H Mo; Baris E Polat; Robert Langer; Daniel Blankschtein
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5.  Fetal membrane transport enhancement using ultrasound for drug delivery and noninvasive detection.

Authors:  Lior Wolloch; Aharon Azagury; Riki Goldbart; Tamar Traitel; Gabriel Groisman; Mordechai Hallak; Joseph Kost
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Review 6.  Ultrasound-mediated transdermal drug delivery: mechanisms, scope, and emerging trends.

Authors:  Baris E Polat; Douglas Hart; Robert Langer; Daniel Blankschtein
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Review 7.  Low-frequency sonophoresis: application to the transdermal delivery of macromolecules and hydrophilic drugs.

Authors:  Baris E Polat; Daniel Blankschtein; Robert Langer
Journal:  Expert Opin Drug Deliv       Date:  2010-12       Impact factor: 6.648

8.  Hydration effects on skin microstructure as probed by high-resolution cryo-scanning electron microscopy and mechanistic implications to enhanced transcutaneous delivery of biomacromolecules.

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Review 9.  Ultrasound-enhanced transdermal delivery: recent advances and future challenges.

Authors:  Matthias A Oberli; Carl M Schoellhammer; Robert Langer; Daniel Blankschtein
Journal:  Ther Deliv       Date:  2014-07

Review 10.  Perspectives on transdermal ultrasound mediated drug delivery.

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Journal:  Int J Nanomedicine       Date:  2007
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