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基于光声成像的纳米颗粒介导肿瘤氧调评估。

Assessment of Nanoparticle-Mediated Tumor Oxygen Modulation by Photoacoustic Imaging.

机构信息

Department of Biomedical Engineering and Nanomedicine, National Health Research Institutes, Zhunan 350, Taiwan.

出版信息

Biosensors (Basel). 2022 May 13;12(5):336. doi: 10.3390/bios12050336.

Abstract

Photoacoustic imaging (PAI) is an invaluable tool in biomedical imaging, as it provides anatomical and functional information in real time. Its ability to image at clinically relevant depths with high spatial resolution using endogenous tissues as contrast agents constitutes its major advantage. One of the most important applications of PAI is to quantify tissue oxygen saturation by measuring the differential absorption characteristics of oxy and deoxy Hb. Consequently, PAI can be utilized to monitor tumor-related hypoxia, which is a crucial factor in tumor microenvironments that has a strong influence on tumor invasiveness. Reactive oxygen species (ROS)-based therapies, such as photodynamic therapy, radiotherapy, and sonodynamic therapy, are oxygen-consuming, and tumor hypoxia is detrimental to their efficacy. Therefore, a persistent demand exists for agents that can supply oxygen to tumors for better ROS-based therapeutic outcomes. Among the various strategies, NP-mediated supplemental tumor oxygenation is especially encouraging due to its physio-chemical, tumor targeting, and theranostic properties. Here, we focus on NP-based tumor oxygenation, which includes NP as oxygen carriers and oxygen-generating strategies to alleviate hypoxia monitored by PAI. The information obtained from quantitative tumor oxygenation by PAI not only supports optimal therapeutic design but also serves as a highly effective tool to predict therapeutic outcomes.

摘要

光声成像是一种非常有价值的生物医学成像工具,因为它能够实时提供解剖学和功能信息。它的主要优势是能够利用内源性组织作为对比剂,以高空间分辨率在临床相关深度进行成像。光声成像的一个最重要的应用是通过测量氧合和脱氧 Hb 的差分吸收特性来定量组织氧饱和度。因此,光声成像可用于监测与肿瘤相关的缺氧,这是肿瘤微环境中的一个关键因素,对肿瘤侵袭性有很强的影响。基于活性氧 (ROS) 的治疗方法,如光动力疗法、放射疗法和声动力疗法,是耗氧的,而肿瘤缺氧会降低它们的疗效。因此,人们一直需要能够为肿瘤提供氧气的药物,以获得更好的基于 ROS 的治疗效果。在各种策略中,由于其物理化学、肿瘤靶向和治疗特性,基于纳米颗粒的补充肿瘤氧合特别令人鼓舞。在这里,我们重点介绍基于纳米颗粒的肿瘤氧合,包括作为氧载体的纳米颗粒和缓解缺氧的产氧策略,这些都可以通过光声成像进行监测。通过光声成像获得的定量肿瘤氧合信息不仅支持最佳治疗设计,而且还作为一种非常有效的工具来预测治疗效果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce29/9138624/7c698864da1f/biosensors-12-00336-g001.jpg

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