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Updated: May 26, 2026

Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
The human phosphotyrosine signaling network: evolution and hotspots of hijacking in cancer
Lei Li1, Chabane Tibiche, Cong Fu
1Department of Biochemistry and the Siebens-Drake Research Institute, Schulich School of Medicine and Dentistry, University of Western Ontario, London, Ontario, Canada.
Abstract:
Phosphotyrosine (pTyr) signaling, which plays a central role in cell-cell and cell-environment interactions, has been considered to be an evolutionary innovation in multicellular metazoans. However, neither the emergence nor the evolution of the human pTyr signaling system is currently understood. Tyrosine kinase (TK) circuits, each of which consists of a TK writer, a kinase substrate, and a related reader, such as Src homology (SH) 2 domains and pTyr-binding (PTB) domains, comprise the core machinery of the pTyr signaling network. In this study, we analyzed the evolutionary trajectories of 583 literature-derived and 50,000 computationally predicted human TK circuits in 19 representative eukaryotic species and assigned their evolutionary origins. We found that human TK circuits for intracellular pTyr signaling originated largely from primitive organisms, whereas the inter- or extracellular signaling circuits experienced significant expansion in the bilaterian lineage through the "back-wiring" of newly evolved kinases to primitive substrates and SH2/PTB domains. Conversely, the TK circuits that are involved in tissue-specific signaling evolved mainly in vertebrates by the back-wiring of vertebrate substrates to primitive kinases and SH2/PTB domains. Importantly, we found that cancer signaling preferentially employs the pTyr sites, which are linked to more TK circuits. Our work provides insights into the evolutionary paths of the human pTyr signaling circuits and suggests the use of a network approach for cancer intervention through the targeting of key pTyr sites and their associated signaling hubs in the network.
Insights
Human phosphotyrosine (pTyr) signaling evolved from primitive organisms, with complex circuits expanding in bilaterians and vertebrates. Cancer signaling hijacks these pTyr sites, suggesting network-based interventions.
Area of Science:
- Evolutionary biology
- Molecular signaling
- Genomics
Background:
- Phosphotyrosine (pTyr) signaling is crucial for multicellular life but its evolutionary origins are unclear.
- Tyrosine kinase (TK) circuits (writer, substrate, reader) form the core of pTyr signaling networks.
Purpose of the Study:
- To analyze the evolutionary trajectories and origins of human TK circuits.
- To understand the evolution of intracellular, extracellular, and tissue-specific pTyr signaling.
- To investigate the role of pTyr signaling in cancer.
Main Methods:
- Analysis of 583 literature-derived and 50,000 computationally predicted human TK circuits.
- Comparative analysis across 19 eukaryotic species to assign evolutionary origins.
- Network analysis to identify key signaling hubs and pTyr sites.
Main Results:
- Intracellular pTyr signaling circuits largely originated from primitive organisms.
- Extracellular signaling circuits expanded in bilaterians via "back-wiring" of new kinases to primitive domains.
- Tissue-specific signaling evolved in vertebrates by "back-wiring" vertebrate substrates to primitive kinases and domains.
- Cancer signaling preferentially utilizes pTyr sites connected to numerous TK circuits.
Conclusions:
- Human pTyr signaling evolved through distinct pathways, with significant expansion and "back-wiring" events.
- Cancer signaling networks exploit specific pTyr sites and hubs.
- A network-based approach targeting key pTyr sites offers potential cancer intervention strategies.
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