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首页> 外文期刊>Physics in medicine and biology. >Binding dynamics of targeted microbubbles in response to modulated acoustic radiation force.
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Binding dynamics of targeted microbubbles in response to modulated acoustic radiation force.

机译:响应于调制声辐射力的靶微泡的绑定动态。

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Detection of molecular targeted microbubbles plays a foundational role in ultrasound-based molecular imaging and targeted gene or drug delivery. In this paper, an empirical model describing the binding dynamics of targeted microbubbles in response to modulated acoustic radiation forces in large vessels is presented and experimentally verified using tissue-mimicking flow phantoms. Higher flow velocity and microbubble concentration led to faster detaching rates for specifically bound microbubbles (p < 0.001). Higher time-averaged acoustic radiation force intensity led to faster attaching rates and a higher saturation level of specifically bound microbubbles (p < 0.05). The level of residual microbubble signal in targeted experiments after cessation of radiation forces was the only response parameter that was reliably different between targeted and control experiments (p < 0.05). A related parameter, the ratio of residual-to-saturated microbubble signal (Rresid), is proposed as a measurement that is independent of absolute acoustic signal magnitude and therefore able to reliably detect targeted adhesion independently of control measurements (p < 0.01). These findings suggest the possibility of enhanced detection of specifically bound microbubbles in real-time, using relatively short imaging protocols (approximately 3 min), without waiting for free microbubble clearance.
机译:分子靶向微泡的检测在基于超声的分子成像和靶向基因或药物递送中起着基于基于超声的分子成像的基本作用。在本文中,呈现了描述响应于大容器中的调制声辐射力的靶微泡的结合动态的实证模型,并使用组织模拟流动模拟进行实验验证。更高的流速和微泡浓度导致更快的分离速率,用于具体结合的微泡(P <0.001)。较高的时间平均声辐射力强度导致更快的附着速率和具体结合微泡的较高饱和水平(P <0.05)。在辐射力停止后,靶向实验中的残留微泡信号的水平是靶向和对照实验之间的唯一反应参数(P <0.05)。一个相关的参数,残留到饱和微泡信号(Rresid)的比例,提出了作为测定不依赖于绝对声学信号幅度,因此能够可靠地独立地检测控制的测量(P <0.01)的目标的粘附性。这些发现表明,使用相对短的成像协议(大约3分钟),在不等待自由微泡间隙的情况下,实时地实时地增强特异性微泡的可能性。

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