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首页> 外文期刊>BioTechniques >Use and validation of epithelial recognition and fields of view algorithms on virtual slides to guide TMA construction.
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Use and validation of epithelial recognition and fields of view algorithms on virtual slides to guide TMA construction.

机译:在虚拟幻灯片上使用和验证上皮识别和视野算法,以指导TMA的构建。

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摘要

While tissue microarrays (TMAs) are a form of high-throughput screening, they presently still require manual construction and interpretation. Because of predicted increasing demand for TMAs, we investigated whether their construction could be automated. We created both epithelial recognition algorithms (ERAs) and field of view (FOV) algorithms that could analyze virtual slides and select the areas of highest cancer cell density in the tissue block for coring (algorithmic TMA) and compared these to the cores manually selected (manual TMA) from the same tissue blocks. We also constructed TMAs with TMAker, a robot guided by these algorithms (robotic TMA). We compared each of these TMAs to each other. Our imaging algorithms produced a grid of hundreds of FOVs, identified cancer cells in a stroma background and calculated the epithelial percentage (cancer cell density) in each FOV. Those with the highest percentages guided core selection and TMA construction. Algorithmic TMA and robotic TMA were overall approximately 50% greater in cancer cell density compared with Manual TMA. These observations held for breast, colon, and lung cancer TMAs. Our digital image algorithms were effective in automating TMA construction.
机译:尽管组织微阵列(TMA)是高通量筛选的一种形式,但它们目前仍需要人工构建和解释。由于预计对TMA的需求将增加,因此我们调查了它们的构建是否可以自动化。我们创建了上皮识别算法(ERAs)和视野(FOV)算法,可以分析虚拟玻片并选择组织块中最高癌细胞密度的区域进行取心(算法TMA),并将其与手动选择的核心进行比较(手动TMA)。我们还使用受这些算法(机器人TMA)指导的TMAker构造了TMA。我们将这些TMA相互比较。我们的成像算法生成了数百个FOV的网格,在基质背景中识别了癌细胞,并计算了每个FOV中的上皮百分比(癌细胞密度)。百分比最高的企业指导选材和TMA建设。与手动TMA相比,算法TMA和机器人TMA的癌细胞密度总体上大约高50%。这些观察结果适用于乳腺癌,结肠癌和肺癌TMA。我们的数字图像算法有效地实现了TMA构建的自动化。

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