Title of article :
iWRAP: An Interface Threading Approach with Application to Prediction of Cancer-Related Protein–Protein Interactions
Author/Authors :
Raghavendra Hosur، نويسنده , , Jinbo Xu، نويسنده , , Jadwiga Bienkowska، نويسنده , , Bonnie Berger.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2011
Pages :
16
From page :
1295
To page :
1310
Abstract :
Current homology modeling methods for predicting protein–protein interactions (PPIs) have difficulty in the “twilight zone” (< 40%) of sequence identities. Threading methods extend coverage further into the twilight zone by aligning primary sequences for a pair of proteins to a best-fit template complex to predict an entire three-dimensional structure. We introduce a threading approach, iWRAP, which focuses only on the protein interface. Our approach combines a novel linear programming formulation for interface alignment with a boosting classifier for interaction prediction. We demonstrate its efficacy on SCOPPI, a classification of PPIs in the Protein Databank, and on the entire yeast genome. iWRAP provides significantly improved prediction of PPIs and their interfaces in stringent cross-validation on SCOPPI. Furthermore, by combining our predictions with a full-complex threader, we achieve a coverage of 13% for the yeast PPIs, which is close to a 50% increase over previous methods at a higher sensitivity. As an application, we effectively combine iWRAP with genomic data to identify novel cancer-related genes involved in chromatin remodeling, nucleosome organization, and ribonuclear complex assembly. iWRAP is available at .
Keywords :
structural bioinformatics , threading , CANCER , genome annotation , Protein–protein interactions
Journal title :
Journal of Molecular Biology
Serial Year :
2011
Journal title :
Journal of Molecular Biology
Record number :
1253285
Link To Document :
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