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首页> 外文期刊>IEEE Transactions on Medical Imaging >Simultaneous Photoacoustic Imaging and Cavitation Mapping in Shockwave Lithotripsy
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Simultaneous Photoacoustic Imaging and Cavitation Mapping in Shockwave Lithotripsy

机译:冲击波碎石术中的同时光声成像和空化映射

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Kidney stone disease is a major health problem worldwide. Shockwave lithotripsy (SWL), which uses high-energy shockwave pulses to break up kidney stones, is extensively used in clinic. However, despite its noninvasiveness, SWL can produce cavitation in vivo. The rapid expansion and violent collapse of cavitation bubbles in small blood vessels may result in renal vascular injury. To better understand the mechanism of tissue injury and improve treatment safety and efficiency, it is highlydesirable to concurrently detect cavitation and vascular injury during SWL. Current imaging modalities used in SWL (e.g., C-arm fluoroscopy and B-mode ultrasound) are not sensitive to vascular injuries. By contrast, photoacoustic imaging is a non-invasive and non-radiative imaging modality that is sensitive to blood, by using hemoglobin as the endogenous contrast. Moreover, photoacoustic imaging is also compatible with passive cavitation detection by sharing the ultrasound detection system. Here, we have integrated shockwave treatment, photoacoustic imaging, and passive cavitation detection into a single system. Our experimental results on phantoms and in vivo small animals have collectively demonstrated that the integrated system is capable of capturing shockwave-induced cavitation and the resultant vascular injury simultaneously. We expect that the integrated system, when combined with our recently developed internal-light-illumination photoacoustic imaging, will find important applications for monitoring shockwave-induced vascular injury in deep tissues during SWL.
机译:肾结石病是世界范围内的主要健康问题。冲击波碎石术(SWL)使用高能冲击波脉冲破坏肾结石,在临床上得到了广泛应用。然而,尽管无创性,SWL仍可在体内产生空化作用。空泡在小血管中的迅速膨胀和剧烈破裂可能导致肾血管损伤。为了更好地了解组织损伤的机制并提高治疗的安全性和效率,迫切需要同时检测SWL期间的空化和血管损伤。 SWL中使用的当前成像方式(例如C型臂透视和B型超声)对血管损伤不敏感。相比之下,光声成像是一种非侵入性和非辐射性成像方式,通过使用血红蛋白作为内源性对比剂,对血液敏感。而且,通过共享超声检测系统,光声成像还与被动气蚀检测兼容。在这里,我们将冲击波处理,光声成像和被动气蚀检测集成到单个系统中。我们在体模和体内小动物上的实验结果共同证明,该集成系统能够同时捕获冲击波诱导的空化和由此产生的血管损伤。我们希望,该集成系统与我们最近开发的内部光照明光声成像相结合,将在监视SWL期间深层组织中冲击波引起的血管损伤中发现重要的应用。

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