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3D Geometry-Based Quantification of Colocalizations in Multichannel 3D Microscopy Images of Human Soft Tissue Tumors

机译:基于3D几何的人类软组织肿瘤多通道3D显微图像中共定位的量化

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摘要

We introduce a new model-based approach for auto matic quantification of colocalizations in multichannel 3D microscopy images. The approach uses different 3D parametric intensity models in conjunction with a model fitting scheme to localize and quantify subcellular structures with high accuracy. The central idea is to determine colocalizations between different channels based on the estimated geometry of the subcellular structures as well as to differentiate between different types of colocalizations. A statistical analysis was performed to assess the significance of the determined colocalizations. This approach was used to successfully analyze about 500 three-channel 3D microscopy images of human soft tissue tumors and controls.
机译:我们介绍了一种基于模型的新方法,用于自动量化多通道3D显微镜图像中的共定位。该方法将不同的3D参数强度模型与模型拟合方案结合使用,以高精度定位和量化亚细胞结构。中心思想是基于估计的亚细胞结构的几何形状确定不同通道之间的共定位,并区分不同类型的共定位。进行统计分析以评估确定的共定位的重要性。该方法用于成功分析人软组织肿瘤和对照的约500个三通道3D显微图像。

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