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A Laplacian of Gaussian-Based Approach for Spot Detection in Two-Dimensional Gel Electrophoresis Images

机译:基于高斯的拉普拉斯算子的二维凝胶电泳图像中的斑点检测

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Two-dimension gel electrophoresis (2-DE) is a proteomic technique that allows the analysis of protein profiles expressed in a given cell, tissue or biological system at a given time. The 2-DE images depict protein as spots of various intensities and sizes. Due to the presence of noise, the inhomogeneous background, and the overlap between the spots in 2-DE image, the protein spot detection is not a straightforward process. In this paper, we present an improved protein spot detection approach, which is based on Laplacian of Gaussian algorithm, and we extract the regional maxima by morphological grayscale reconstruction algorithm, which can reduce the impact of noisy and background in spot detection. Experiments on real 2-DE images show that the proposed approach is more reliable, precise and less sensitive to noise than the traditional Laplacian of Gaussian algorithm and it offers a good performance in our gel image analysis software.
机译:二维凝胶电泳(2-DE)是一种蛋白质组学技术,可以分析在给定时间在给定细胞,组织或生物系统中表达的蛋白质谱。 2-DE图像将蛋白质描述为各种强度和大小的斑点。由于存在噪声,背景不均匀以及2-DE图像中斑点之间的重叠,因此蛋白质斑点检测不是一个简单的过程。在本文中,我们提出了一种基于高斯算法的拉普拉斯算子的改进的蛋白质斑点检测方法,并通过形态灰度重构算法提取了区域最大值,可以减少噪声和背景对斑点检测的影响。在真实的2-DE图像上进行的实验表明,与传统的高斯算法的拉普拉斯算子相比,该方法更可靠,更精确且对噪声的敏感度更低,并且在我们的凝胶图像分析软件中具有良好的性能。

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