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Correlation between sonoluminescence, sonochemistry and cavitation noise spectra.声致发光、声化学与空化噪声谱的相关性。
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Fluorescent penetration enhancers for transdermal applications.用于经皮应用的荧光渗透增强剂。
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Ultrasound-mediated transdermal drug delivery: mechanisms, scope, and emerging trends.超声介导的经皮药物传递:机制、范围和新兴趋势。
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Low-frequency sonophoresis: application to the transdermal delivery of macromolecules and hydrophilic drugs.低频超声透皮给药:用于大分子和亲水性药物的经皮传递。
Expert Opin Drug Deliv. 2010 Dec;7(12):1415-32. doi: 10.1517/17425247.2010.538679.
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Enhancing the transdermal delivery of rigid nanoparticles using the simultaneous application of ultrasound and sodium lauryl sulfate.采用超声和十二烷基硫酸钠联合应用增强刚性纳米粒的经皮传递。
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Application of the aqueous porous pathway model to quantify the effect of sodium lauryl sulfate on ultrasound-induced skin structural perturbation.水通道模型在定量评估月桂醇聚醚硫酸酯钠对超声致皮肤结构改变的影响中的应用。
J Pharm Sci. 2011 Apr;100(4):1387-97. doi: 10.1002/jps.22361. Epub 2010 Oct 20.
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Transport pathways and enhancement mechanisms within localized and non-localized transport regions in skin treated with low-frequency sonophoresis and sodium lauryl sulfate.低频超声透皮给药和月桂醇硫酸钠处理的皮肤中局部和非局部传输区域内的传输途径和增强机制。
J Pharm Sci. 2011 Feb;100(2):512-29. doi: 10.1002/jps.22280. Epub 2010 Aug 25.
9
Effects of ultrasound and sodium lauryl sulfate on the transdermal delivery of hydrophilic permeants: Comparative in vitro studies with full-thickness and split-thickness pig and human skin.超声和十二烷基硫酸钠对亲水性透皮促进剂经皮传递的影响:全厚和分层猪皮及人皮的体外对比研究。
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Evaluation of the porosity, the tortuosity, and the hindrance factor for the transdermal delivery of hydrophilic permeants in the context of the aqueous pore pathway hypothesis using dual-radiolabeled permeability experiments.在水孔途径假说的背景下,使用双放射性标记渗透实验评估亲水性渗透剂经皮递送的孔隙率、曲折度和阻碍因子。
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一种解释经皮超声透皮给药过程中化学渗透增强剂进入皮肤的物理机制 - 对观察到的协同作用的深入了解。

A physical mechanism to explain the delivery of chemical penetration enhancers into skin during transdermal sonophoresis - Insight into the observed synergism.

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

J Control Release. 2012 Mar 10;158(2):250-60. doi: 10.1016/j.jconrel.2011.11.008. Epub 2011 Nov 12.

DOI:10.1016/j.jconrel.2011.11.008
PMID:22100440
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3294085/
Abstract

The synergism between low-frequency sonophoresis (LFS) and chemical penetration enhancers (CPEs), especially surfactants, in transdermal enhancement has been investigated extensively since this phenomenon was first observed over a decade ago. In spite of the identifying that the origin of this synergism is the increased penetration and subsequent dispersion of CPEs in the skin in response to LFS treatment, to date, no mechanism has been directly proposed to explain how LFS induces the observed increased transport of CPEs. In this study, we propose a plausible physical mechanism by which the transport of all CPEs is expected to have significantly increased flux into the localized-transport regions (LTRs) of LFS-treated skin. Specifically, the collapse of acoustic cavitation microjets within LTRs induces a convective flux. In addition, because amphiphilic molecules preferentially adsorb onto the gas/water interface of cavitation bubbles, amphiphiles have an additional adsorptive flux. In this sense, the cavitation bubbles effectively act as carriers for amphiphilic molecules, delivering surfactants directly into the skin when they collapse at the skin surface as cavitation microjets. The flux equations derived for CPE delivery into the LTRs and non-LTRs during LFS treatment, compared to that for untreated skin, explain why the transport of all CPEs, and to an even greater extent amphiphilic CPEs, is increased during LFS treatment. The flux model is tested with a non-amphiphilic CPE (propylene glycol) and both nonionic and ionic amphiphilic CPEs (octyl glucoside and sodium lauryl sulfate, respectively), by measuring the flux of each CPE into untreated skin and the LTRs and non-LTRs of LFS-treated skin. The resulting data shows very good agreement with the proposed flux model.

摘要

低频超声透皮增强(LFS)与化学渗透增强剂(CPEs)之间的协同作用,特别是表面活性剂,自十多年前首次观察到这种现象以来,已经得到了广泛的研究。尽管已经确定这种协同作用的起源是由于 LFS 处理导致 CPEs 在皮肤中的穿透和随后的分散增加,但迄今为止,还没有直接提出一种机制来解释 LFS 如何诱导观察到的 CPEs 转运增加。在这项研究中,我们提出了一个合理的物理机制,通过该机制,所有 CPEs 的转运预计会显著增加进入 LFS 处理皮肤的局部转运区域(LTR)的通量。具体来说,LTR 内的声空化微射流的崩溃会引起对流通量。此外,由于两亲分子优先吸附在空化气泡的气/水界面上,因此两亲分子具有额外的吸附通量。从这个意义上说,空化气泡有效地充当了两亲分子的载体,当它们在皮肤表面作为空化微射流崩溃时,将表面活性剂直接输送到皮肤中。与未处理皮肤相比,在 LFS 处理期间推导的用于 CPE 输送到 LTR 和非 LTR 的通量方程,解释了为什么在 LFS 处理期间,所有 CPEs 的转运,甚至更亲水的 CPEs 的转运都会增加。通过测量每种 CPE 进入未处理皮肤以及 LFS 处理皮肤的 LTR 和非 LTR 的通量,该通量模型分别用非两亲性 CPE(丙二醇)以及非离子和离子两亲性 CPE(辛基葡萄糖苷和十二烷基硫酸钠)进行了测试。所得数据与提出的通量模型非常吻合。