基于PAFC的治疗性微泡散射监测系统建模

Q3 Physics and Astronomy
Vibhor Kumar Bhardwaj, S. Maini
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引用次数: 0

摘要

近年来,研究人员正在积极开发超声腔剂(UCA)作为一种治疗药物,以便他们能够以最小的侵入性和最大的有效性将药物以引导的方式输送到预定的地方。然而,控制药物的溶解仍然是一个问题,因为微泡的外壳有时会瞬间崩溃,并开始以更快的速度释放药物。血压水平的突然升高会导致毛细血管破裂,有时也会导致血管破裂。因此,在这种情况下,检查微泡的动力学以及血管的健康是一个巨大的挑战。在此基础上,本文提出了一项基于有限元方法的研究,以研究光声流循环仪(PAFC)解决这一问题的潜在用途。该模型是在研究微气泡通过PAFC产生的光散射强度变化的基础上建立的。研究结果表明,所提出的模型有可能作为一种新的机制来检查微泡的生长和血管的健康。此外,通过对散射模式的分析,还可以预测空化阈值和微泡的大小。因此,作者设想,改进的PAFC系统可以引领低成本和实时的检查员的道路,以准确的靶向药物递送和血管健康。这反过来又可能增加药物的局部浓度,以减少药物对身体其他部位的副作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling Of PAFC Based Scattering Monitoring System for the Characterization of the Therapeutic Micro-Bubbles
In recent years, researchers are eagerly developing the Ultrasound Cavity Agents (UCA) as a therapeutic agent, so that they can deliver the drugs to an intended place in a guided manner with minimal invasiveness and maximum effectiveness. However, control dissolution of the drug is still an issue because the shell of the micro-bubble sometimes collapses instantaneously and start releasing the drug at a faster rate. This sudden rise in the pressure's level can rupture the capillaries and sometimes blood vessels also. Therefore, in such cases, it is a great challenge to examine the dynamics of the micro-bubble as well as the health of the blood vessel. In this essence, this paper presents a study based on the finite element method to examine the potential use of Photo-Acoustic Flow Cyclometery (PAFC) to resolve this issue. The presented model is based on the study of the intensity variations of the optical scatterings engender by the micro-bubbles through PAFC. The results of the study reveal that the proposed model has the potential to be used as a new mechanism to examine the growth of the micro-bubble as well as the health of the blood vessel. Moreover, by analysing the scattering pattern, one can also able to predict the value of the cavitation threshold and the size of the micro-bubble. Hence, the authors envisioned that the modified PAFC system can lead the path of a low-cost and real-time examiner for accurate target drug delivery as well as for the health of the blood vessel. Which in turn potentially increases the localized concentration of the drug to reduce the concerned side-effects of medicine on the other part of the body.
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来源期刊
Journal of Biomedical Photonics and Engineering
Journal of Biomedical Photonics and Engineering Physics and Astronomy-Acoustics and Ultrasonics
CiteScore
1.60
自引率
0.00%
发文量
17
审稿时长
8 weeks
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