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1-MHz 声振子超声系统的校准。

Calibration of the 1-MHz Sonitron ultrasound system.

机构信息

Department of Biomedical Engineering, Colleges of Engineering and Medicine, University of Cincinnati, Cincinnati, OH 45267-0586, USA.

出版信息

Ultrasound Med Biol. 2010 Oct;36(10):1762-6. doi: 10.1016/j.ultrasmedbio.2010.05.020.

Abstract

Successful drug and gene delivery across cellular membranes can lead to improved therapeutic outcomes. Recent studies have suggested that sonoporation may enhance drug and gene delivery across cellular membranes. The enhancement may be a result of transient permeation of the membrane from cavitation or microstreaming effects of microbubbles exposed to ultrasound. Given limited acoustic pressure calibration and beam profile characterization of the Sonitron ultrasound systems in cellular bioeffects studies previously published, the objective of this work was to calibrate the acoustic output and explore the potential for standing waves in a cell-well plate. In this study, three 1-MHz transducers driven by Sonitron ultrasound systems, which have been used in a number of sonoporation studies, were calibrated. Transducers with 10-mm, 6-mm and 20-mm-diameter apertures (Sonitron 1000 and 2000, Rich-Mar, Inola, OK, USA) were calibrated using polyvinylidene fluoride (PVDF) needle hydrophones. Axial and transverse beam profiles were obtained, and the pressures were measured as a function of Sonitron intensity dial setting and duty cycle. The acoustic intensity was calculated and compared with the Sonitron intensity dial setting for duty cycles from 10-100%. Standing waves caused by reflections from the hydrophone holder were detected for each transducer. This observation may also have implications for in vitro sonoporation studies. Acoustic field characterization is an important first step in understanding the mechanisms of sonoporation and drug delivery across biomembranes.

摘要

成功的跨细胞膜药物和基因传递可以带来更好的治疗效果。最近的研究表明,声孔作用可能会增强跨细胞膜的药物和基因传递。这种增强可能是由于暴露于超声波的微泡的空化或微流效应导致细胞膜短暂渗透。鉴于以前发表的细胞生物效应研究中对 Sonitron 超声系统的声压校准和光束特性的有限研究,这项工作的目的是校准声输出并探索细胞培养板中驻波的可能性。在这项研究中,校准了三个由 Sonitron 超声系统驱动的 1MHz 换能器,这些换能器已在许多声孔作用研究中使用。使用聚偏二氟乙烯(PVDF)针状水听器校准了具有 10mm、6mm 和 20mm 孔径的换能器(Sonitron 1000 和 2000,Rich-Mar,Inola,OK,USA)。获得了轴向和横向光束特性,并测量了 Sonitron 强度表盘设置和占空比的压力。计算了声强并将其与 Sonitron 强度表盘设置进行了比较,占空比为 10-100%。检测到每个换能器中来自水听器支架的反射引起的驻波。这一观察结果也可能对体外声孔作用研究产生影响。声场特性是理解声孔作用和生物膜跨膜药物传递机制的重要第一步。

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