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Scaling of the viscoelastic shell properties of phospholipid encapsulated microbubbles with ultrasound frequency

机译:超声波包裹磷脂包裹的微泡的粘弹性壳性能

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Phospholipid encapsulated microbubbles are widely employed as clinical diagnostic ultrasound contrast agents in the 1-5 MHz range, and are increasingly employed at higher ultrasound transmit frequencies. The stiffness and viscosity of the encapsulating "shells" have been shown to play a central role in determining both the linear and nonlinear response of microbubbles to ultrasound. At lower frequencies, recent studies have suggested that shell properties can be frequency dependent. At present, there is only limited knowledge of how the viscoelastic properties of phospholipid shells scale at higher frequencies. In this study, four batches of in-house phospholipid encapsulated microbubbles were fabricated with decreasing volume-weighted mean diameters of 3.20, 2.07, 1.82 and 1.61 lm. Attenuation experiments were conducted in order to assess the frequency-dependent response of each batch, resulting in resonant peaks in response at 4.2, 8.9, 12.6 and 19.5 MHz, respectively. With knowledge of the size measurements, the attenuation spectra were then fitted with a standard linearized bubble model in order to estimate the microbubble shell stiffness Sp and shell viscosity S_f, resulting in a slight increase in S_p (1.53-1.76 N/m) and a substantial decrease in Sf (0.29 × 10~(-6)-0.08 × 10~(-6) kg/s) with increasing frequency. These results performed on a single phospholipid agent show that frequency dependent shell properties persist at high frequencies (up to 19.5 MHz).
机译:磷脂包封的微泡被广泛用作1-5 MHz范围内的临床诊断超声造影剂,并越来越多地用于更高的超声发射频率。封装“壳”的刚度和粘度已显示出在确定微气泡对超声的线性和非线性响应中起着核心作用。在较低的频率下,最近的研究表明壳的性能可能与频率有关。目前,关于磷脂壳的粘弹性如何在更高的频率下扩展的知识只有有限的知识。在这项研究中,制造了四批内部磷脂包裹的微泡,其体积加权平均直径逐渐减小,分别为3.20、2.07、1.82和1.61 lm。为了评估每批的频率相关响应,进行了衰减实验,分别在4.2、8.9、12.6和19.5 MHz处产生了响应的谐振峰值。有了尺寸测量知识,然后将衰减光谱与标准的线性气泡模型拟合,以便估计微气泡的外壳刚度Sp和外壳粘度S_f,从而导致S_p(1.53-1.76 N / m)略有增加,并且Sf随频率增加而显着降低(0.29×10〜(-6)-0.08×10〜(-6)kg / s)。对单一磷脂试剂进行的这些结果表明,在高频率(高达19.5 MHz)下,频率依存的外壳特性仍然存在。

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