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PRELIMINARY OBSERVATIONS ON THE SPATIAL CORRELATION BETWEEN SHORT-BURST MICROBUBBLE OSCILLATIONS AND VASCULAR BIOEFFECTS

机译:关于短爆微泡振荡与血管生物效应的空间相关性的初步观察

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摘要

The objective of this preliminary study was to examine the spatial correlation between microbubble (MB)-induced vessel wall displacements and resultant microvascular bioeffects. MBs were injected into venules in ex vivo rat mesenteries and insonated by a single short ultrasound pulse with a center frequency of 1 MHz and peak negative pressures spanning the range of 1.5–5.6 MPa. MB and vessel dynamics were observed under ultra-high speed photomicrography. The tissue was examined by histology or transmission electron microscopy for vascular bioeffects. Image registration allowed for spatial correlation of MB-induced vessel wall motion to corresponding vascular bioeffects, if any. In cases in which damage was observed, the vessel wall had been pulled inward by more than 50% of the its initial radius. The observed damage was characterized by the separation of the endothelium from the vessel wall. Although the study is limited to a small number of observations, analytic statistical results suggest that vessel invagination comprises a principal mechanism for microvessel bioeffects in venules by microbubbles.
机译:这项初步研究的目的是研究微泡(MB)引起的血管壁位移与产生的微血管生物效应之间的空间相关性。将MBs注射到离体大鼠肠系膜的小静脉中,并通过单个短超声脉冲进行超声,中心频率为1 MHz,峰值负压范围为1.5-5.6 MPa。在超高速显微照相下观察到MB和血管动力学。通过组织学或透射电子显微镜检查组织的血管生物效应。图像配准允许MB诱导的血管壁运动与相应的血管生物效应(如果有)在空间上相关。在观察到损坏的情况下,血管壁已向内拉动其初始半径的50%以上。观察到的损伤的特征在于内皮与血管壁的分离。尽管该研究仅限于少量观察,但分析统计结果表明,血管内陷是微泡对微血管生物效应的主要机制。

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