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提取含有非脯氨酸顺式肽键的区域中的共识蛋白模式及其功能评估。

Extraction of consensus protein patterns in regions containing non-proline cis peptide bonds and their functional assessment.

机构信息

Unit of Medical Technology and Intelligent Information Systems, Dept, of Materials Science and Engineering, University of Ioannina, GR 45110, Ioannina, Greece.

出版信息

BMC Bioinformatics. 2011 May 10;12:142. doi: 10.1186/1471-2105-12-142.

Abstract

BACKGROUND

In peptides and proteins, only a small percentile of peptide bonds adopts the cis configuration. Especially in the case of amide peptide bonds, the amount of cis conformations is quite limited thus hampering systematic studies, until recently. However, lately the emerging population of databases with more 3D structures of proteins has produced a considerable number of sequences containing non-proline cis formations (cis-nonPro).

RESULTS

In our work, we extract regular expression-type patterns that are descriptive of regions surrounding the cis-nonPro formations. For this purpose, three types of pattern discovery are performed: i) exact pattern discovery, ii) pattern discovery using a chemical equivalency set, and iii) pattern discovery using a structural equivalency set. Afterwards, using each pattern as predicate, we search the Eukaryotic Linear Motif (ELM) resource to identify potential functional implications of regions with cis-nonPro peptide bonds. The patterns extracted from each type of pattern discovery are further employed, in order to formulate a pattern-based classifier, which is used to discriminate between cis-nonPro and trans-nonPro formations.

CONCLUSIONS

In terms of functional implications, we observe a significant association of cis-nonPro peptide bonds towards ligand/binding functionalities. As for the pattern-based classification scheme, the highest results were obtained using the structural equivalency set, which yielded 70% accuracy, 77% sensitivity and 63% specificity.

摘要

背景

在肽和蛋白质中,只有一小部分肽键采用顺式构型。特别是酰胺肽键的情况下,顺式构象的数量相当有限,这阻碍了系统研究,直到最近。然而,最近出现了越来越多的蛋白质三维结构数据库,其中包含了相当数量的含有非脯氨酸顺式构象(cis-nonPro)的序列。

结果

在我们的工作中,我们提取了描述顺式非脯氨酸构象周围区域的正则表达式类型模式。为此,进行了三种类型的模式发现:i)精确模式发现,ii)使用化学等价集的模式发现,以及 iii)使用结构等价集的模式发现。之后,使用每个模式作为谓词,我们在真核线性基序(ELM)资源中搜索,以识别具有顺式非脯氨酸肽键的区域的潜在功能意义。从每种类型的模式发现中提取的模式进一步用于制定基于模式的分类器,用于区分顺式非脯氨酸和反式非脯氨酸构象。

结论

就功能意义而言,我们观察到顺式非脯氨酸肽键与配体/结合功能之间存在显著关联。至于基于模式的分类方案,使用结构等价集获得了最高的结果,准确率为 70%,灵敏度为 77%,特异性为 63%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b6d/3097163/7583347f56ad/1471-2105-12-142-1.jpg

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