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Prediction of membrane protein types from sequences and position-specific scoring matrices.

机译:从序列和特定位置的评分矩阵预测膜蛋白类型。

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摘要

Membrane protein plays an important role in some biochemical process such as signal transduction, transmembrane transport, etc. Membrane proteins are usually classified into five types [Chou, K.C., Elrod, D.W., 1999. Prediction of membrane protein types and subcellular locations. Proteins: Struct. Funct. Genet. 34, 137-153] or six types [Chou, K.C., Cai, Y.D., 2005. J. Chem. Inf. Modelling 45, 407-413]. Designing in silico methods to identify and classify membrane protein can help us understand the structure and function of unknown proteins. This paper introduces an integrative approach, IAMPC, to classify membrane proteins based on protein sequences and protein profiles. These modules extract the amino acid composition of the whole profiles, the amino acid composition of N-terminal and C-terminal profiles, the amino acid composition of profile segments and the dipeptide composition of the whole profiles. In the computational experiment, the overall accuracy of the proposed approach is comparable with the functional-domain-based method. In addition, the performance of the proposed approach is complementary to the functional-domain-based method for different membrane protein types.
机译:膜蛋白在某些生化过程中起着重要作用,例如信号转导,跨膜转运等。膜蛋白通常分为五种类型[Chou,K.C.,Elrod,D.W.,1999。膜蛋白类型和亚细胞位置的预测。蛋白质:结构。功能基因34,137-153]或六种类型[Chou,K.C.,Cai,Y.D.,2005. J. Chem。 Inf。建模45,407-413]。设计计算机方法以鉴定和分类膜蛋白可以帮助我们了解未知蛋白的结构和功能。本文介绍了一种综合方法IAMPC,可根据蛋白质序列和蛋白质谱对膜蛋白质进行分类。这些模块提取整个图谱的氨基酸组成,N端和C端图谱的氨基酸组成,图谱区段的氨基酸组成和整个图谱的二肽组成。在计算实验中,该方法的整体精度与基于功能域的方法相当。另外,对于不同的膜蛋白类型,所提出的方法的性能与基于功能域的方法是互补的。

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