An Integrative Analysis of the InR/PI3K/Akt Network Identifies the Dynamic Response to Insulin Signaling
Author(s) -
Arunachalam Vinayagam,
Meghana M. Kulkarni,
Richelle Sopko,
Xiaoyun Sun,
Yanhui Hu,
Ankita Nand,
Christians Villalta,
Ahmadali M. Moghimi,
Xuemei Yang,
Stephanie E. Mohr,
Pengyu Hong,
John M. Asara,
Norbert Perrimon
Publication year - 2016
Publication title -
cell reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.264
H-Index - 154
eISSN - 2639-1856
pISSN - 2211-1247
DOI - 10.1016/j.celrep.2016.08.029
Subject(s) - biology , phosphoproteomics , pi3k/akt/mtor pathway , insulin , protein kinase b , signal transduction , insulin receptor , proto oncogene proteins c akt , phosphorylation , computational biology , microbiology and biotechnology , protein phosphorylation , protein kinase a , insulin resistance
Insulin regulates an essential conserved signaling pathway affecting growth, proliferation, and metabolism. To expand our understanding of the insulin pathway, we combine biochemical, genetic, and computational approaches to build a comprehensive Drosophila InR/PI3K/Akt network. First, we map the dynamic protein-protein interaction network surrounding the insulin core pathway using bait-prey interactions connecting 566 proteins. Combining RNAi screening and phospho-specific antibodies, we find that 47% of interacting proteins affect pathway activity, and, using quantitative phosphoproteomics, we demonstrate that ∼10% of interacting proteins are regulated by insulin stimulation at the level of phosphorylation. Next, we integrate these orthogonal datasets to characterize the structure and dynamics of the insulin network at the level of protein complexes and validate our method by identifying regulatory roles for the Protein Phosphatase 2A (PP2A) and Reptin-Pontin chromatin-remodeling complexes as negative and positive regulators of ribosome biogenesis, respectively. Altogether, our study represents a comprehensive resource for the study of the evolutionary conserved insulin network.
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