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PMID: 16492685 Published · ppublish English Comparative Study Evaluation Study Journal Article

Assessing semantic similarity measures for the characterization of human regulatory pathways.

Bioinformatics (Oxford, England) ·Vol. 22 ·No. 8 ·2006-04-15 ·Pages 967-73

Guo X, Liu R, Shriver CD, Hu H, Liebman MN

Abstract

Pathway modeling requires the integration of multiple data including prior knowledge. In this study, we quantitatively assess the application of Gene Ontology (GO)-derived similarity measures for the characterization of direct and indirect interactions within human regulatory pathways. The characterization would help the integration of prior pathway knowledge for the modeling. Our analysis indicates information content-based measures outperform graph structure-based measures for stratifying protein interactions. Measures in terms of GO biological process and molecular function annotations can be used alone or together for the validation of protein interactions involved in the pathways. However, GO cellular component-derived measures may not have the ability to separate true positives from noise. Furthermore, we demonstrate that the functional similarity of proteins within known regulatory pathways decays rapidly as the path length between two proteins increases. Several logistic regression models are built to estimate the confidence of both direct and indirect interactions within a pathway, which may be used to score putative pathways inferred from a scaffold of molecular interactions.

MeSH Terms
Databases, Protein Gene Expression Regulation/physiology Humans Information Storage and Retrieval/methods Natural Language Processing Protein Interaction Mapping/methods Proteins/classification,metabolism Semantics Signal Transduction/physiology
Chemicals
Proteins
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Guo Xiang
Windber Research Institute, Windber, PA 15963, USA. [email protected]
Liu Rongxiang
Shriver Craig D
Hu Hai
Liebman Michael N
Article Info
Journal
Bioinformatics (Oxford, England)
Abbr.
Bioinformatics
ISSN
1367-4803
Published
2006-04-15
Epub
2006-00-21
Pages
967-73
Language
English
Region
England
NLM ID
9808944
Subset
IM
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