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A New Low-frequency Sonophoresis System Combined with Ultrasonic Motor and Transducer

机译:新型低频超声营养性系统与超声波电机和换能器相结合

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摘要

Low frequency sonophoresis (LFS) is currently being attempted as a transdermal drug delivery method in clinical areas. However, it lacks both an effective control method and the equipment to satisfy the varying drug dosage requirements of individual patients. Herein, a novel method aimed at controlling permeability is proposed and developed, using a pressure control strategy which is based on an accurate, adjustable and non-invasive ultrasound transdermal drug delivery system in in vitro LFS. The system mainly consists of a lead screw linear ultrasonic motor and an ultrasonic transducer, in which the former offers pressure and the latter provides ultrasound wave in the liquid. The ultrasound can enhance non-invasive permeation and the pressure from the motor can control the permeability. The calculated and experimental results demonstrate that the maximum pressure on artificial skin is under the area with the maximum vibration amplitude of the ultrasonic transducer, and the total pressure consists of acoustic pressure from the transducer and approximate static pressure from the motor. Changing the static pressure from the ultrasonic motor can effectively control the non-invasive permeability, by adjusting the duty ratio or the amplitude of the motor's driving voltage. In addition, the permeability control of calcein by thrust control is realized in 15 min, indicating the suitability of this method for application in accurate medical technology. The obtained results reveal that the issue of difficult permeability control can be addressed, using this control method in in vitro LFS to open up a route to the design of accurate drug delivery technology for individual patients.
机译:目前正在尝试低频超声疗法(LFS)作为临床区域中的透皮药物递送方法。然而,它缺乏有效的控制方法和设备,以满足个体患者的不同药物剂量要求。在此,提出了一种新的方法,旨在使用基于体外LFS中精确,可调和无侵入性超声透皮药物递送系统的压力控制策略来提出和开发旨在控制渗透性的新方法。该系统主要由铅螺杆线性超声波电机和超声换能器组成,其中前者提供压力,后者在液体中提供超声波。超声波可以增强非侵入性渗透,并且来自电动机的压力可以控制渗透性。计算的和实验结果表明,人造皮肤的最大压力位于具有超声换能器的最大振动幅度的区域下,并且总压力由来自换能器的声压和来自电动机的近似静压。通过调节电动机的驱动电压的占空比或幅度,可以有效地控制来自超声波电动机的静压可以有效地控制非侵入性渗透性。此外,在15分钟内实现了抗钙素通过推力控制的渗透性控制,表明该方法在准确的医疗技术中适用于应用。所得结果表明,可以使用在体外LFS中的这种控制方法来解决难渗透性控制的问题,以开辟一个用于个体患者的准确药物输送技术的途径。

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