共振声驻波作用下红细胞的气泡破裂与活力

IF 0.7 4区 医学 Q4 MARINE & FRESHWATER BIOLOGY
Edwin López Ramos, Manuel Rivera Bengoechea, Silvina Cancelos Mancini, Carlos Marín Martín
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引用次数: 0

摘要

目的:介绍一种新的前瞻性治疗方案,其中气泡存在于血液中构成临床风险。该方法依靠在肢体内产生共振声驻波,通过气泡破裂非侵入性地加速血液中气泡的溶解。此外,对共振声波和气泡破裂事件对红细胞活力的影响进行了初步评估。方法:两个半圆形压电(PZT)换能器彼此电连接组装在一个小周长段后大腿从猪标本中取出。当以谐振频率驱动时,这种猪大腿和PZT换能器布置在猪大腿内产生共振声驻波。因此,通过监测PZT对施加频率的电响应,可以无创地建立系统的机械共振。所产生的共振声场被用于检测和破裂气泡,这些气泡穿过安装在猪大腿上的模拟血管。采用该方法进行了两组实验,一组是盐水填充的人工血管,另一组是去纤羊血。对于后一种情况,初步的血液学评估是用红细胞计数完成的。结论:在简化的猪大腿模型中,共振声驻波可以有效地破裂300µm至900µm的气泡。在功率大于20W的谐振声波作用下,平均溶解气体含量为44%。对红细胞计数无明显影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bubble rupture & viability of red blood cells under resonant acoustic standing waves
Objective: The presentation of a novel prospective treatment for scenarios where bubble presence in the bloodstream poses a clinical risk. The method relies on generating resonant acoustic standing waves within a limb to non-invasively accelerate dissolution of bubbles present in the bloodstream via bubble rupture. Additionally, a preliminary assessment of the effects of the resonant acoustic waves and bubble rupture events on red blood cell viability is provided. Methods: Two semicircular piezoelectric (PZT) transducers electrically connected to each other were assembled around a small-girth segment of a rear thigh removed from a swine specimen. When driven at the frequency of electric resonance, this swine thigh and PZT transducer arrangement generates resonant acoustic standing waves within the swine thigh. Consequently, mechanical resonance of the system was non-invasively established by monitoring the electric response of the PZT to the applied frequency. The resonant acoustic field generated was used for the detection and rupture of bubbles that travel through a simulated blood vessel installed across the swine thigh. Two sets of experiments were carried out using this methodology, one with the artificial blood vessel filled with saline solution and one with defibrinated sheep blood. For the latter case, a preliminary hematologic assessment was done with red blood cell counts. Conclusion: Resonant acoustic standing waves effectively rupture bubbles of 300µm to 900µm within a simplified swine thigh model. The average dissolved gas content was 44% due to resonant acoustic waves at powers above 20W. No significant effect on red blood cell counts was observed.
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来源期刊
Undersea and Hyperbaric Medicine
Undersea and Hyperbaric Medicine 医学-海洋与淡水生物学
CiteScore
1.60
自引率
11.10%
发文量
37
审稿时长
>12 weeks
期刊介绍: Undersea and Hyperbaric Medicine Journal accepts manuscripts for publication that are related to the areas of diving research and physiology, hyperbaric medicine and oxygen therapy, submarine medicine, naval medicine and clinical research related to the above topics. To be considered for UHM scientific papers must deal with significant and new research in an area related to biological, physical and clinical phenomena related to the above environments.
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