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Sensitivity of laser opto-acoustic imaging in detection of small deeply embedded tumors

机译:激光声光成像在检测小深度包埋的肿瘤中的敏感性

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摘要

Current imaging modalities fail to detect small tumors in the breast. Opto-acoustic tomography is a novel technique for early cancer detection with promising diagnostic capability. The experimental limit of sensitivity and maximal depth of the laser opto-acoustic detection for small model tumors located within bulk phantom tissue were studied. Two phantoms with optical properties similar to that of breast tissue in the near infrared spectral range were used in these studies: turbid gelatin slabs with the thickness of 100 mm and chicken breast muscle slabs with the thickness of up to 80 mm. Gelatin spheres with enhanced absorption coefficient relative to the background absorption and liver tissue were used to simulate small tumors. The experiments demonstrated the capability of laser optoacoustic imaging to detect and localize phantom tumors with the diameter of 2 mm at a depth of up to 60 mm within the gelatin phantoms and 3/spl times/2/spl times/0.6-mm piece of liver tissue within 80-mm chicken breast tissue. Theoretical studies on sensitivity of opto-acoustic detection at various diameters, depths of location, and absorption coefficients of small tumors were performed using the experimental data. Our results suggest that the opto-acoustic imaging may occupy a significant niche in early detection of cancer in the breast and other organs.
机译:当前的成像方式无法检测出乳房中的小肿瘤。光声层析成像是一种具有早期诊断能力的早期癌症检测新技术。研究了位于体模组织内的小模型肿瘤的激光光声检测灵敏度和最大深度的实验极限。在这些研究中,使用了两种具有与乳腺组织类似的光学特性的光学模型:厚度为100 mm的混浊明胶平板和厚度最大为80 mm的鸡胸肌平板。相对于背景吸收和肝脏组织,具有更高吸收系数的明胶球被用来模拟小肿瘤。实验证明了激光光声成像能够检测并定位明胶体模内直径达2 mm的幻影肿瘤,深度可达60 mm,并具有3 / spl次/ 2 / spl次/0.6 mm肝片80毫米鸡胸组织内的组织。利用实验数据对各种直径,位置深度和小肿瘤吸收系数进行光声检测灵敏度的理论研究。我们的结果表明,光声成像可能会在乳腺癌和其他器官的早期检测中占据重要位置。

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