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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Optimal Control of SonoVue Microbubbles to Estimate Hydrostatic Pressure
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Optimal Control of SonoVue Microbubbles to Estimate Hydrostatic Pressure

机译:优化SonoVue微气泡以估计静水压力的控制

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The measurement of cardiac and aortic pressures enables diagnostic insight into cardiac contractility and stiffness. However, these pressures are currently assessed invasively using pressure catheters. It may be possible to estimate these pressures less invasively by applying microbubble ultrasound contrast agents as pressure sensors. The aim of this study was to investigate the subharmonic response of the microbubble ultrasound contrast agent SonoVue (Bracco Spa, Milan, Italy) at physiological pressures using a static pressure phantom. A commercially available cell culture cassette with Luer connections was used as a static pressure chamber. SonoVue was added to the phantom, and radio frequency data were recorded on the ULtrasound Advanced Open Platform (ULA-OP). The mean subharmonic amplitude over a 40% bandwidth was extracted at 0-200-mmHg hydrostatic pressures, across 1.7-7.0-MHz transmit frequencies and 3.5%-100% maximum scanner acoustic output. The Rayleigh-Plesset equation for single-bubble oscillations and additional hysteresis experiments were used to provide insight into the mechanisms underlying the subharmonic pressure response of SonoVue. The subharmonic amplitude of SonoVue increased with hydrostatic pressure up to 50 mmHg across all transmit frequencies and decreased thereafter. A decreasing microbubble surface tension may drive the initial increase in the subharmonic amplitude of SonoVue with hydrostatic pressure, while shell buckling and microbubble destruction may contribute to the subsequent decrease above 125-mmHg pressure. In conclusion, a practical operating regime that may be applied to estimate cardiac and aortic blood pressures from the subharmonic signal of SonoVue has been identified.
机译:心脏和主动脉压的测量可帮助您深入了解心脏的收缩力和僵硬程度。但是,目前使用压力导管以侵入方式评估这些压力。通过应用微泡超声造影剂作为压力传感器,可以较无创地估算这些压力。这项研究的目的是使用静压体模研究微泡超声造影剂SonoVue(布拉科温泉,意大利米兰)在生理压力下的亚谐波响应。具有Luer连接的市售细胞培养盒用作静压室。将SonoVue添加到幻像中,并将射频数据记录在ULtrasound高级开放平台(ULA-OP)上。在0-200-mmHg静水压力下,在1.7-7.0-MHz的发射频率和3.5%-100%的最大扫描仪声输出范围内,提取了40%带宽上的平均亚谐波幅度。用于单气泡振荡的Rayleigh-Plesset方程和其他滞后实验用于深入了解SonoVue的次谐波压力响应的机理。在所有发射频率上,SonoVue的亚谐波幅度都随着静水压力的增加而增加,最高达到50 mmHg,然后降低。减小的微气泡表面张力可能会随着静水压力推动SonoVue的亚谐波幅度的初始增加,而壳体屈曲和微气泡破坏可能会导致随后的125 mmHg以上的压力降低。总之,已经确定了可用于从SonoVue的次谐波信号估算心脏和主动脉血压的实用操作方案。

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