通过光声成像对乳腺癌不同治疗策略的即时早期反应进行临床前多生理学监测。

IF 2 3区 物理与天体物理 Q3 BIOCHEMICAL RESEARCH METHODS
Xiaoqian Lin, Changfeng Yang, Yijie Lv, Bowen Zhang, Junnan Kan, Hao Li, Jin Tao, Caixia Yang, Xianglin Li, Yan Liu
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引用次数: 0

摘要

光声成像可测量组织氧饱和度(sO2)和血液灌注,同时还可用于检测肿瘤微环境。我们的目的是利用多谱勒光声断层成像技术(MSOT)来评估不同治疗过程中乳腺肿瘤内血红蛋白水平和 sO2 的即时变化。小鼠乳腺癌模型被分为四组:对照组、依维莫司(EVE)组、紫杉醇(PTX)组和光动力疗法(PDT)组。每天对血红蛋白进行定量,并通过免疫组化(IHC)染色验证 sO2 和血液灌注情况。MSOT显示,EVE组和PTX组出现了氧合增强和血流灌注改善的时间窗口,而PDT组的sO2始终低于基线。IHC 也得到了同样的结果。因此,MSOT 能以非侵入性和无标记的方式监测肿瘤缺氧并间接反映血液灌注情况,从而有可能早期监测乳腺癌的进展,并在临床实践中实现个体化治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Preclinical multi-physiologic monitoring of immediate-early responses to diverse treatment strategies in breast cancer by optoacoustic imaging

Preclinical multi-physiologic monitoring of immediate-early responses to diverse treatment strategies in breast cancer by optoacoustic imaging

Optoacoustic imaging enables the measurement of tissue oxygen saturation (sO2) and blood perfusion while being utilized for detecting tumor microenvironments. Our aim was to employ multispectral optoacoustic tomography (MSOT) to assess immediate-early changes of hemoglobin level and sO2 within breast tumors during diverse treatments. Mouse breast cancer models were allocated into four groups: control, everolimus (EVE), paclitaxel (PTX), and photodynamic therapy (PDT). Hemoglobin was quantified daily, as well as sO2 and blood perfusion were verified by immunohistochemical (IHC) staining. MSOT showed a temporal window of enhanced oxygenation and improved perfusion in EVE and PTX groups, while sO2 consistently remained below baseline in PDT. The same results were obtained for the IHC. Therefore, MSOT can monitor tumor hypoxia and indirectly reflect blood perfusion in a non-invasive and non-labeled way, which has the potential to monitor breast cancer progression early and enable individualized treatment in clinical practice.

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来源期刊
Journal of Biophotonics
Journal of Biophotonics 生物-生化研究方法
CiteScore
5.70
自引率
7.10%
发文量
248
审稿时长
1 months
期刊介绍: The first international journal dedicated to publishing reviews and original articles from this exciting field, the Journal of Biophotonics covers the broad range of research on interactions between light and biological material. The journal offers a platform where the physicist communicates with the biologist and where the clinical practitioner learns about the latest tools for the diagnosis of diseases. As such, the journal is highly interdisciplinary, publishing cutting edge research in the fields of life sciences, medicine, physics, chemistry, and engineering. The coverage extends from fundamental research to specific developments, while also including the latest applications.
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