Photoacoustic molecular imaging

SPIE BiOS Pub Date : 2007-02-08 DOI:10.1117/12.705136
W. Kiser, D. Reinecke, T. DeGrado, Sibaprasad Bhattacharyya, R. Kruger
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引用次数: 5

Abstract

It is well documented that photoacoustic imaging has the capability to differentiate tissue based on the spectral characteristics of tissue in the optical regime. The imaging depth in tissue exceeds standard optical imaging techniques, and systems can be designed to achieve excellent spatial resolution. A natural extension of imaging the intrinsic optical contrast of tissue is to demonstrate the ability of photoacoustic imaging to detect contrast agents based on optically absorbing dyes that exhibit well defined absorption peaks in the infrared. The ultimate goal of this project is to implement molecular imaging, in which HerceptinTM, a monoclonal antibody that is used as a therapeutic agent in breast cancer patients that over express the HER2 gene, is labeled with an IR absorbing dye, and the resulting in vivo bio-distribution is mapped using multi-spectral, infrared stimulation and subsequent photoacoustic detection. To lay the groundwork for this goal and establish system sensitivity, images were collected in tissue mimicking phantoms to determine maximum detection depth and minimum detectable concentration of Indocyanine Green (ICG), a common IR absorbing dye, for a single angle photoacoustic acquisition. A breast mimicking phantom was constructed and spectra were also collected for hemoglobin and methanol. An imaging schema was developed that made it possible to separate the ICG from the other tissue mimicking components in a multiple component phantom. We present the results of these experiments and define the path forward for the detection of dye labeled HerceptinTM in cell cultures and mice models.
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光声分子成像
有充分的证据表明,光声成像具有根据光学体制下组织的光谱特征来区分组织的能力。在组织中的成像深度超过标准的光学成像技术,系统可以设计为实现优异的空间分辨率。组织固有光学对比成像的自然延伸是证明光声成像检测基于光学吸收染料的造影剂的能力,这些染料在红外中表现出明确的吸收峰。该项目的最终目标是实现分子成像,其中HerceptinTM是一种单克隆抗体,用于HER2基因过表达的乳腺癌患者的治疗剂,用红外吸收染料标记,并通过多光谱,红外刺激和随后的光声检测来绘制体内生物分布。为了实现这一目标并建立系统灵敏度,在模拟幻影的组织中收集图像,以确定用于单角度光声采集的常见红外吸收染料吲哚菁绿(ICG)的最大检测深度和最小检测浓度。构建了乳房模拟模型,并收集了血红蛋白和甲醇的光谱。开发了一种成像方案,可以将ICG与多组分幻影中的其他组织模拟组分分离开来。我们介绍了这些实验的结果,并确定了在细胞培养和小鼠模型中检测染料标记HerceptinTM的前进道路。
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