声学血氧传感血红蛋白微泡的研制:聚乙二醇化和气体核修饰在体内应用的研究。

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2025-02-01 DOI:10.1016/j.actbio.2024.12.024
Ghazal Rastegar , Bahareh Kianpour , Teja Pathour, Mohammad Musa Salman, Shashank R. Sirsi
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引用次数: 0

摘要

创新的超声造影剂(UCAs)具有实时监测氧水平的能力,对于推进各种医疗状况(如缺氧/再灌注损伤)的早期诊断具有巨大的潜力。在这项研究中,我们提出利用血红蛋白(HbMBs)组成的微泡开发氧敏感uca,它可以作为血氧水平的传感器。此前,我们进行了一项研究,强调了充气HbMBs在体外检测氧合变化方面的初步概念验证效果,为临床检测组织缺氧提供了一种有前景的工具。然而,这种方法的一个重大缺点是,当血红蛋白在其天然红细胞环境之外时,可能会产生免疫反应和毒性。此外,在体外,HbMBs的稳定性较低,120分钟后浓度下降90%以上。因此,仔细考虑HbMBs的表面性质和气芯是至关重要的。在此,我们制备了聚乙二醇化HbMBs (PHbMBs),并研究了其稳定性、免疫原性以及在体外充氧和脱氧介质中的声学反应。我们优化了聚乙二醇化HbMBs (PHbMBs),结果显示免疫原性降低42%,体外稳定性显著提高,同时保持了它们的氧结合和声学反应。在体内,PHbMBs表现出与未PEGylation的mbbs相似的对比度增强,这表明PEGylation不会降低HbMBs的声学信号。最后,将气芯从空气改为PFB,使phbmb的平均循环时间增加了11倍以上,而不降低其对氧气的反应性。总的来说,所提出的氧敏感phbmb为实时声学检测血氧水平提供了一条有前途的途径,为监测危重患者的潜在临床应用铺平了道路。意义声明:本研究探索了利用基于血红蛋白的微泡在体内进行声氧成像的新兴领域。这种创新的造影剂方法包括使用由血红蛋白组成的交联生物材料进行成像,旨在改变我们用超声波监测血氧水平的方式。这项工作从根本上解决了提高最终临床使用的气泡稳定性和循环寿命的中心问题,同时最大限度地减少毒性。重要的是,我们证明了聚乙二醇化血红蛋白微泡增强了它们的稳定性,降低了免疫原性,并保持了声学响应性。在气泡核心中加入全氟丁烷可以延长这些微气泡在循环中的寿命,同时保持它们的氧敏感性。良好的体内结果突出了该技术在实时声学检测血氧水平方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Development of hemoglobin microbubbles for acoustic blood oxygen sensing: A study on PEGylation and gas core modification for in vivo applications
The creation of innovative ultrasound contrast agents (UCAs) with the ability to monitor oxygen levels in real-time holds immense potential for advancing early diagnosis of various medical conditions such as hypoxic/reperfusion injury. In this study, we propose the development of oxygen sensitive UCAs using microbubbles composed of hemoglobin (HbMBs), which can function as sensors for blood oxygen levels. Previously, we performed a study highlighting the initial proof-of-concept efficacy of air-filled HbMBs in detecting oxygenation changes in vitro, offering a promising tool for clinically detecting tissue hypoxia. Nevertheless, a significant drawback of this approach is the potential for immune reactions and toxicity when hemoglobin is outside its natural red blood cell environment. Moreover, in vitro, HbMBs had low stability, with more than 90% decrease in their concentration after 120 minutes. Therefore, careful consideration of the surface properties and the gas core of HbMBs is crucial. Here, we formulated PEGylated HbMBs (PHbMBs), and investigated their stability, immunogenicity, and their acoustic response in oxygenated and deoxygenated media in vitro. We optimized PEGylated HbMBs (PHbMBs), showing a 42% reduction in immunogenicity and significantly improved stability in vitro, while maintaining their oxygen-binding and acoustic response. In vivo, PHbMBs demonstrated similar contrast enhancement to that of non-PEGylated MBs, demonstrating that PEGylation does not decrease HbMBs’ acoustic signaling. Finally, changing the gas core from air to PFB increased PHbMBs’ mean circulation time more than 11-fold, without diminishing their responsiveness to oxygen. Overall, the proposed oxygen sensitive PHbMBs offer a promising avenue for real-time acoustic detection of blood oxygen levels, paving the way for potential clinical applications in monitoring critically ill patients.

Statement of significance

This research explores the emergent field of Acoustic Oxygen Imaging in vivo using hemoglobin-based microbubbles. This innovative contrast agent approach involves imaging using crosslinked biomaterial comprised of the hemoglobin protein, aiming to transform the way we monitor blood oxygen levels with ultrasound.
This work fundamentally addresses central concerns of improving bubble stability and circulation life for eventual clinical use, while minimizing toxicity. Importantly, we demonstrate that PEGylation of hemoglobin microbubbles enhances their stability, reduces immunogenicity, and maintains acoustic responsiveness. The incorporation of perfluorobutane into the bubble core increases the longevity of these microbubbles in circulation, while sustaining their oxygen sensitivity. Favorable in vivo results highlight the potential of this technology in real-time acoustic detection of blood oxygen levels.
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Corrigendum to “A composite hydrogel with co-delivery of antimicrobial peptides and platelet-rich plasma to enhance healing of infected wounds in diabetes” [Acta Biomaterialia 2021, 124, 205-218] Corrigendum to “Vascular Endothelial Growth Factor-Capturing Aligned Electrospun Polycaprolactone/Gelatin Nanofibers Promote Patellar Ligament Regeneration” [Acta Biomaterialia 140, 2022, 122-246] Physical exercise impacts bone remodeling around bio-resorbable magnesium implants A metal-organic framework functionalized CaO2-based cascade nanoreactor induces synergistic cuproptosis/ferroptosis and Ca2+ overload-mediated mitochondrial damage for enhanced sono-chemodynamic immunotherapy
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