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半拟人化光声乳腺体模血管解剖结构中的可调节血氧。

Tunable blood oxygenation in the vascular anatomy of a semi-anthropomorphic photoacoustic breast phantom.

机构信息

University of Twente, Multi-Modality Medical Imaging, Techmed Centre, Enschede, The Netherlands.

Medisch Spectrum Twente, Enschede, The Netherlands.

出版信息

J Biomed Opt. 2021 Mar;26(3). doi: 10.1117/1.JBO.26.3.036003.

Abstract

SIGNIFICANCE

Recovering accurate oxygenation estimations in the breast with quantitative photoacoustic tomography (QPAT) is not straightforward. Accurate light fluence models are required, but the unknown ground truth of the breast makes it difficult to validate them. Phantoms are often used for the validation, but most reported phantoms have a simple architecture. Fluence models developed in these simplistic objects are not accurate for application on the complex tissues of the breast.

AIM

We present a sophisticated breast phantom platform for photoacoustic (PA) and ultrasound (US) imaging in general, and specifically for QPAT. The breast phantom is semi-anthropomorphic in distribution of optical and acoustic properties and contains wall-less channels with blood.

APPROACH

3D printing approaches are used to develop the solid 3D breast phantom from custom polyvinyl chloride plastisol formulations and additives for replicating the tissue optical and acoustic properties. A flow circuit was developed to flush the channels with bovine blood with a controlled oxygen saturation level. To showcase the phantom's functionality, PA measurements were performed on the phantom with two oxygenation levels. Image reconstructions with and without fluence compensation from Monte Carlo simulations were analyzed for the accuracy of oxygen saturation estimations.

RESULTS

We present design aspects of the phantom, demonstrate how it is developed, and present its breast-like appearance in PA and US imaging. The oxygen saturations were estimated in two regions of interest with and without using the fluence models. The fluence compensation positively influenced the SO2 estimations in all cases and confirmed that highly accurate fluence models are required to minimize estimation errors.

CONCLUSIONS

This phantom allows studies to be performed in PA in carefully controlled laboratory settings to validate approaches to recover both qualitative and quantitative features sought after in in-vivo studies. We believe that testing with phantoms of this complexity can streamline the transition of new PA technologies from the laboratory to studies in the clinic.

摘要

意义

在乳房中用定量光声断层扫描(QPAT)恢复准确的氧合估计并不简单。需要准确的光通量模型,但由于乳房的未知真实情况,很难对其进行验证。通常使用体模进行验证,但大多数报道的体模结构简单。在乳房的复杂组织上应用时,在这些简单物体中开发的通量模型并不准确。

目的

我们提出了一种复杂的乳房体模平台,用于光声(PA)和超声(US)成像,特别是用于 QPAT。该乳房体模在光学和声学特性分布上具有半拟人化的特点,并且包含无壁通道和血液。

方法

使用 3D 打印方法从定制的聚氯乙烯糊料配方和添加剂中开发出固体 3D 乳房体模,以复制组织的光学和声学特性。开发了一个流动回路,用具有受控氧饱和度的牛血冲洗通道。为了展示体模的功能,在体模上进行了两种氧合水平的 PA 测量。分析了有无蒙特卡罗模拟通量补偿的图像重建,以评估氧饱和度估计的准确性。

结果

我们介绍了体模的设计方面,展示了它的开发过程,并展示了它在 PA 和 US 成像中的乳房样外观。在有和没有使用通量模型的情况下,在两个感兴趣区域中估计了氧饱和度。在所有情况下,通量补偿都对 SO2 估计产生了积极影响,这证实了需要高度准确的通量模型来最小化估计误差。

结论

这种体模允许在精心控制的实验室环境中进行 PA 研究,以验证在体内研究中寻求的定性和定量特征的恢复方法。我们相信,使用这种复杂性的体模进行测试可以简化新的 PA 技术从实验室到临床研究的过渡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/85ee/7961914/ba1d89a71954/JBO-026-036003-g001.jpg

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