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Modeling of thermal effects in antivascular ultrasound therapy

机译:抗血管超声治疗中的热效应建模

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摘要

Antivascular ultrasound consisting of low-intensity sonication in the presence of circulating microbubbles of an ultrasound contrast agent has been demonstrated to disrupt blood flow in solid cancers. In this study a mathematical framework is described for the microbubble-induced heating that occurs during antivascular ultrasound. Biological tissues are modeled as a continuum of microbubble-filled vasculature, cells, and interstitial fluids with compressibility equal to the sum of the compressibility of each component. The mathematical simulations show that the absorption of ultrasound waves by viscous damping of the microbubble oscillations induced significant local heating of the tissue vasculature. The extent and the rate of temperature increase not only depends on the properties of the microbubbles and the sonication parameters but is also influenced markedly by the blood flow. Slow flow conditions lead to higher tissue temperatures due to a stronger interaction between microbubbles and ultrasound and reduced heat dissipation. Because tumors have slower blood flow than healthy tissue, the microbubble-induced ultrasound antivascular therapy is likely to affect cancerous tissue more extensively than healthy tissue, providing a way to selectively target the vasculature of cancers.
机译:已经证明,在超声造影剂的循环微气泡存在下,由低强度超声处理构成的抗血管超声会破坏实体癌的血流。在这项研究中,描述了抗血管超声过程中微气泡引起的加热的数学框架。将生物组织建模为微泡填充的脉管系统,细胞和组织液的连续体,其可压缩性等于每个组件的可压缩性之和。数学模拟表明,通过微泡振荡的粘性阻尼吸收超声波会引起组织脉管系统的明显局部发热。温度升高的程度和速率不仅取决于微泡的性质和超声处理参数,而且还受到血流的显着影响。缓慢的流动条件由于微气泡和超声波之间更强的相互作用以及减少的散热而导致更高的组织温度。由于肿瘤的血流比健康组织慢,因此微泡诱导的超声抗血管治疗可能比健康组织更广泛地影响癌组织,从而提供了一种选择性靶向癌症血管系统的方法。

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