Functional annotation of proteins for signaling network inference in non-model species

Author:

Van den Broeck LisaORCID,Bhosale Dinesh Kiran,Song Kuncheng,Fonseca de Lima Cássio FlavioORCID,Ashley Michael,Zhu TingtingORCID,Zhu Shanshuo,Van De Cotte Brigitte,Neyt Pia,Ortiz Anna C.,Sikes Tiffany R.,Aper Jonas,Lootens PeterORCID,Locke Anna M.,De Smet IveORCID,Sozzani RosangelaORCID

Abstract

AbstractMolecular biology aims to understand cellular responses and regulatory dynamics in complex biological systems. However, these studies remain challenging in non-model species due to poor functional annotation of regulatory proteins. To overcome this limitation, we develop a multi-layer neural network that determines protein functionality directly from the protein sequence. We annotate kinases and phosphatases in Glycine max. We use the functional annotations from our neural network, Bayesian inference principles, and high resolution phosphoproteomics to infer phosphorylation signaling cascades in soybean exposed to cold, and identify Glyma.10G173000 (TOI5) and Glyma.19G007300 (TOT3) as key temperature regulators. Importantly, the signaling cascade inference does not rely upon known kinase motifs or interaction data, enabling de novo identification of kinase-substrate interactions. Conclusively, our neural network shows generalization and scalability, as such we extend our predictions to Oryza sativa, Zea mays, Sorghum bicolor, and Triticum aestivum. Taken together, we develop a signaling inference approach for non-model species leveraging our predicted kinases and phosphatases.

Funder

Foundation for Food and Agriculture Research

National Science Foundation

United Soybean Board

Fonds Wetenschappelijk Onderzoek

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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