Development of a novel compact sonicator for cell disruption

被引:67
作者
Borthwick, KAJ
Coakley, WT
McDonnell, MB
Nowotny, H
Benes, E
Gröschl, M
机构
[1] Univ Wales Coll Cardiff, Cardiff Sch Biosci, Cardiff CF10 3TL, S Glam, Wales
[2] Dstl Porton Down, Salisbury SP4 0JQ, Wilts, England
[3] Vienna Tech Univ, Inst Theoret Phys, A-1040 Vienna, Austria
[4] Vienna Tech Univ, Inst Gen Phys, A-1040 Vienna, Austria
关键词
bacterial disruption; microbial disruption; cell wall; immunoassay;
D O I
10.1016/j.mimet.2004.09.012
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Ultrasound microbial cell disrupters operating at around 20 kHz are often physically large and, due to significant heating, can be unsuitable for small sample volumes where biochemical integrity of the extracted product is required. Development of a compact device based on a 63.5-mm diameter, 6.5-mm thick tubular transducer for rapid cell disruption in small-volume samples in a high-intensity acoustic cavitation field with minimal temperature rises is described here. Suspensions of Saccharomlyces cerevisiae were exposed to cavitation for various times in the compact device and a 20-kHz probe sonicator. Cell disruption was assessed by protein release and by staining. Yeast cell disruption was greater in the novel 267-kHz sonicator than in the 20-kHz probe sonicator for the same exposure time. A 1-dimensional (1-D) transfer matrix model analysis for piezoelectric resonators was applied to an axial cross-section of die tubular sonicator to predict frequencies of mechanical resonance in the sample volume associated with maximum acoustic pressure. Admittance measurements identified frequencies of electrical resonance. Ultrasonic cavitation noise peaks were detected by a hydrophone at both the mechanical and electrical resonances. Cell breakage efficiency was mice as great in terms of protein released per dissipated watt at the mechanical resonance predicted by the model, compared to those at the electrical resonance frequencies. The results form a basis for rational design of an ultrasound cell disruption technique for small-volume samples. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:207 / 216
页数:10
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