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Similarity Search of Flexible 3D Molecules Combining Local and Global Shape Descriptors

机译:结合局部和全局形状描述符的柔性3D分子的相似性搜索

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In this paper, a framework for shape-based similarity search of 3D molecular structures is presented. The proposed framework exploits simultaneously the discriminative capabilities of a global, a local, and a hybrid local-global shape feature to produce a geometric descriptor that achieves higher retrieval accuracy than each feature does separately. Global and hybrid features are extracted using pairwise computations of diffusion distances between the points of the molecular surface, while the local feature is based on accumulating pairwise relations among oriented surface points into local histograms. The local features are integrated into a global descriptor vector using the bag-of-features approach. Due to the intrinsic property of its constituting shape features to be invariant to articulations of the 3D objects, the framework is appropriate for similarity search of flexible 3D molecules, while at the same time it is also accurate in retrieving rigid 3D molecules. The proposed framework is evaluated in flexible and rigid shape matching of 3D protein structures as well as in shape-based virtual screening of large ligand databases with quite promising results.
机译:本文提出了一种基于形状的3D分子结构相似性搜索框架。所提出的框架同时利用了全局,局部和混合局部-全局形状特征的判别能力,以产生比每个特征单独实现的检索精度更高的几何描述符。使用成对计算分子表面点之间的扩散距离来提取全局特征和混合特征,而局部特征是基于将定向表面点之间的成对关系累加到局部直方图中。使用特征包方法将局部特征集成到全局描述符向量中。由于其构成形状特征的固有属性对于3D对象的关节而言是不变的,因此该框架适用于柔性3D分子的相似性搜索,同时它在检索刚性3D分子时也很准确。在3D蛋白质结构的柔性和刚性形状匹配以及大型配体数据库的基于形状的虚拟筛选中,对所提出的框架进行了评估,并获得了相当可观的结果。

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