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Updated: Apr 25, 2026

All-optical Mechanobiology Interrogation of Yes-associated Protein in Human Cancer and Normal Cells using a Multi-functional System
Published on: December 20, 2021
Computational Phosphosite-Specific Network Analysis of YES1 Y426 Reveals Cancer-Associated Phosphorylation Patterns
Afreen Khanum1, Leona Dcunha1, Suhail Subair1
1Centre for Integrative Omics Data Science (CIODS), Yenepoya (Deemed to be University), Mangalore 575018, Karnataka, India.
Background:
YES1 is an Src family non-receptor tyrosine-protein kinase that regulates cell growth, migration, survival, and oncogenic signaling. Although YES1 activation mechanisms and substrates have been extensively studied, its phosphosite-specific regulation across diverse biological contexts remains poorly understood.
Methods:
We performed a large-scale integrative analysis of 3825 publicly available human mass spectrometry-based phosphoproteomic datasets to map YES1 phosphorylation events. Co-modulation, co-occurrence, evolutionary conservation, and disease-association analyses were conducted to characterize the functional and clinical relevance of site-specific YES1 phosphorylation.
Results:
Y426 emerged as the predominant YES1 phosphosite across diverse biological conditions, localized within the activation loop of the kinase domain and conserved across Src family kinases. Co-modulation analysis identified 421 positively and 102 negatively associated phosphosites enriched in biological processes related to cell cycle regulation, transcription, cytoskeletal remodeling, apoptosis, and carcinogenesis. Among these high-confidence protein phosphosites, we identified 24 binary interactors, 5 upstream regulators, and 8 candidate downstream substrates. Comparison with DisGeNet cancer biomarkers showed overlap between YES1-associated phosphoproteomic signatures and site-specific oncogenic markers across multiple cancers, such as breast cancer, colorectal cancer, leukemia, and lung adenocarcinoma.
Conclusions:
This study provides a systems-level, phosphosite-focused view of YES1 signaling and supports a central regulatory role for Y426 within global phosphoregulatory and cancer-associated networks.
Insights
This study reveals Y426 as a key phosphorylation site on YES1 (a tyrosine-protein kinase) across various conditions. This finding highlights YES1
Area of Science:
- Molecular Biology
- Biochemistry
- Oncology
Background:
- YES1 is an Src family tyrosine-protein kinase regulating crucial cellular processes like growth, migration, and survival.
- While YES1's general functions are known, its phosphosite-specific regulation in different biological contexts is not well understood.
Purpose of the Study:
- To map YES1 phosphorylation events across diverse biological contexts using a large-scale phosphoproteomic dataset analysis.
- To characterize the functional and clinical relevance of site-specific YES1 phosphorylation.
Main Methods:
- Integrative analysis of 3825 human mass spectrometry-based phosphoproteomic datasets.
- Co-modulation, co-occurrence, evolutionary conservation, and disease-association analyses were performed.
- Identification of upstream regulators, downstream substrates, and interacting proteins for YES1 phosphosites.
Main Results:
- Y426 was identified as the predominant YES1 phosphosite, conserved across Src family kinases and located in the kinase domain's activation loop.
- Co-modulation analysis revealed 421 positively and 102 negatively associated phosphosites linked to cell cycle, transcription, cytoskeleton, apoptosis, and carcinogenesis.
- Overlapping YES1-associated phosphoproteomic signatures were found with cancer biomarkers in breast, colorectal, leukemia, and lung cancers.
Conclusions:
- This study offers a systems-level, phosphosite-focused perspective on YES1 signaling.
- The findings support a critical regulatory role for the Y426 phosphosite in both global phosphoregulation and cancer-associated networks.
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