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用于声学血氧水平依赖成像的血红蛋白微泡的研发与表征

Development and Characterization of Hemoglobin Microbubbles for Acoustic Blood Oxygen Level Dependent Imaging.

作者信息

Chaudhary Sugandha, Akter Nasrin, Pathour Teja, Kian Pour Bahareh, Rastegar Ghazal, Menon Akshay, Brown Katherine G, Fei Baowei, Hwang Misun, Sirsi Shashank R

机构信息

Department of Bioengineering, The University of Texas at Dallas, Richardson, Texas 75080, United States.

Department of Radiology, The Children's Hospital of Philadelphia, Philadelphia, Pennsylvania 19104, United States.

出版信息

ACS Sens. 2024 Jun 28;9(6):2826-2835. doi: 10.1021/acssensors.3c02349. Epub 2024 May 24.

Abstract

Oxygen levels in tissues and organs are crucial for their normal functioning, and approaches to monitor them non-invasively have wide biological and clinical applications. In this study, we developed a method of acoustically detecting oxygenation using contrast-enhanced ultrasound (CEUS) imaging. Our approach involved the use of specially designed hemoglobin-based microbubbles (HbMBs) that reversibly bind to oxygen and alter the state-dependent acoustic response. We confirmed that the bioactivity of hemoglobin remained intact after the microbubble shell was formed, and we did not observe any significant loss of heme. We conducted passive cavitation detection (PCD) experiments to confirm whether the acoustic properties of HbMBs vary based on the level of oxygen present. The experiments involved driving the HbMBs with a 1.1 MHz focused ultrasound transducer. Through the PCD data collected, we observed significant differences in the subharmonic and harmonic responses of the HbMBs when exposed to an oxygen-rich environment versus an oxygen-depleted one. We used a programmable ultrasound system to capture high-frame rate B mode videos of HbMBs in both oxy and deoxy conditions at the same time in a two-chambered flow phantom and observed that the mean pixel intensity of deoxygenated HbMB was greater than in the oxygenated state using B-mode imaging. Finally, we demonstrated that HbMBs can circulate in vivo and are detectable by a clinical ultrasound scanner. To summarize, our results indicate that CEUS imaging with HbMB has the potential to detect changes in tissue oxygenation and could be a valuable tool for clinical purposes in monitoring regional blood oxygen levels.

摘要

组织和器官中的氧水平对其正常功能至关重要,非侵入性监测氧水平的方法具有广泛的生物学和临床应用。在本研究中,我们开发了一种使用对比增强超声(CEUS)成像进行声学检测氧合的方法。我们的方法涉及使用专门设计的基于血红蛋白的微泡(HbMBs),它们可逆地结合氧气并改变状态依赖性声学响应。我们证实,在形成微泡壳后血红蛋白的生物活性保持完整,并且未观察到血红素的任何显著损失。我们进行了被动空化检测(PCD)实验,以确认HbMBs的声学特性是否根据存在的氧水平而变化。实验涉及用1.1 MHz聚焦超声换能器驱动HbMBs。通过收集的PCD数据,我们观察到HbMBs在富氧环境与贫氧环境中时,其亚谐波和谐波响应存在显著差异。我们使用可编程超声系统在双腔流动模型中同时捕获氧合和脱氧条件下HbMBs的高帧率B模式视频,并通过B模式成像观察到脱氧HbMB的平均像素强度大于氧合状态。最后,我们证明了HbMBs可以在体内循环并且可被临床超声扫描仪检测到。总之,我们的结果表明,用HbMB进行CEUS成像有潜力检测组织氧合的变化,并且可能成为临床监测局部血氧水平的有价值工具。

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