Wave packets analysis of two-dimensional protein maps: a new approach to study the diversity of immunoglobulins.

A Zahnd, J D Tissot, D F Hochstrasser
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引用次数: 0

Abstract

This report describes a mathematical approach for classifying two-dimensional (2D)-protein maps without spot detection or pattern matching. Analysis of electrophoretograms was performed using wave packet decompositions of the signals. The scanned images were automatically decomposed into a set of sub-images organized in a tree structure. Each sub-image contained relevant information such as its energy, or entropy. Moreover the node position itself of the sub-image reflected a frequency localization. A distance was then defined using the tree repartition of these quantities. Finally a statistical clustering on the tree structures was performed, terminating with a classification of the images according to their repartition frequencies. The algorithm has been applied to classify immunoglobulin (Ig) light chain patterns and proved useful to automatically detect monoclonal, oligoclonal or polyclonal Igs.

二维蛋白图谱的波包分析:研究免疫球蛋白多样性的新方法。
这篇报告描述了一种数学方法来分类二维(2D)蛋白质地图,没有斑点检测或模式匹配。电泳图分析是用信号的波包分解进行的。扫描图像被自动分解成一组树状结构的子图像。每个子图像都包含相关信息,如能量或熵。此外,子图像的节点位置本身反映了频率定位。然后使用这些量的树重划分来定义距离。最后对树结构进行统计聚类,并根据图像的重划分频率对图像进行分类。该算法已被应用于免疫球蛋白(Ig)轻链模式的分类,并被证明可用于自动检测单克隆、寡克隆或多克隆免疫球蛋白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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