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A protein interaction network associated with asthma
Authors:Hwang Sohyun  Son Seung-Woo  Kim Sang Cheol  Kim Young Joo  Jeong Hawoong  Lee Doheon
Affiliation:a Department of Bio and Brain Engineering, KAIST, 373-1 Guseong-dong, Yuseong-gu, Deajeon, Republic of Korea
b Department of Physics, Institute for the BioCentury, KAIST, 373-1 Guseong-dong, Yuseong-gu, Deajeon, Republic of Korea
c Korean BioInformation Center, KRIBB, 52 Euen-dong, Yuseong-gu, Deajeon, Republic of Korea
d Department of Applied Statistics, Yonsei University, 134 Shinchon-dong, Seodaemoon-gu, Seoul, Republic of Korea
Abstract:Identifying candidate genes related to complex diseases or traits and mapping their relationships require a system-level analysis at a cellular scale. The objective of the present study is to systematically analyze the complex effects of interrelated genes and provide a framework for revealing their relationships in association with a specific disease (asthma in this case). We observed that protein-protein interaction (PPI) networks associated with asthma have a power-law connectivity distribution as many other biological networks have. The hub nodes and skeleton substructure of the result network are consistent with the prior knowledge about asthma pathways, and also suggest unknown candidate target genes associated with asthma, including GNB2L1, BRCA1, CBL, and VAV1. In particular, GNB2L1 appears to play a very important role in the asthma network through frequent interactions with key proteins in cellular signaling. This network-based approach represents an alternative method for analyzing the complex effects of candidate genes associated with complex diseases and suggesting a list of gene drug targets. The full list of genes and the analysis details are available in the following online supplementary materials: http://biosoft.kaist.ac.kr:8080/resources/asthma_ppi.
Keywords:Disease network   Protein-protein interaction   Microarray expression   System biology
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