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Optical and acoustical dynamics of microbubble contrast agents inside neutrophils.

机译:中性粒细胞内部微泡造影剂的光学和声学动力学。

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摘要

Acoustically active microbubbles are used for contrast-enhanced ultrasound assessment of organ perfusion. In regions of inflammation, contrast agents are captured and phagocytosed by activated neutrophils adherent to the venular wall. Using direct optical observation with a high-speed camera and acoustical interrogation of individual bubbles and cells, we assessed the physical and acoustical responses of both phagocytosed and free microbubbles. Optical analysis of bubble radial oscillations during insonation demonstrated that phagocytosed microbubbles experience viscous damping within the cytoplasm and yet remain acoustically active and capable of large volumetric oscillations during an acoustic pulse. Fitting a modified version of the Rayleigh-Plesset equation that describes mechanical properties of thin shells to optical radius-time data of oscillating bubbles provided estimates of the apparent viscosity of the intracellular medium. Phagocytosed microbubbles experienced a viscous damping approximately sevenfold greater than free microbubbles. Acoustical comparison between free and phagocytosed microbubbles indicated that phagocytosed microbubbles produce an echo with a higher mean frequency than free microbubbles in response to a rarefaction-first single-cycle pulse. Moreover, this frequency increase is predicted using the modified Rayleigh-Plesset equation. We conclude that contrast-enhanced ultrasound can detect distinct acoustic signals from microbubbles inside of neutrophils and may provide a unique tool to identify activated neutrophils at sites of inflammation.
机译:声活跃的微泡用于对比增强超声评估器官灌注。在炎症区域,造影剂被粘附在静脉壁上的活化嗜中性粒细胞捕获并吞噬。使用高速摄像头进行直接光学观察以及对单个气泡和细胞的声学询问,我们评估了吞噬和游离微气泡的物理和声学响应。声波过程中气泡径向振动的光学分析表明,吞噬的微气泡在细胞质内经历粘性阻尼,并且在声脉冲过程中仍保持声学活性并能够发生大体积振荡。将描述薄壳机械性能的Rayleigh-Plesset方程的修正版本拟合到振荡气泡的光学半径时间数据,可以估算细胞内介质的表观粘度。吞噬微气泡的粘性阻尼比自由微气泡大7倍。游离和吞噬的微泡之间的声学​​比较表明,响应于稀疏化-第一个单周期脉冲,吞噬的微泡产生的回声的频率高于游离的微泡。此外,使用改进的Rayleigh-Plesset方程可预测该频率增加。我们得出结论,对比增强超声可以检测到来自嗜中性粒细胞内部微泡的独特声信号,并可能提供一种独特的工具来鉴定炎症部位的活化嗜中性粒细胞。

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