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Updated: Feb 8, 2026

Reconstruct Human Retinoblastoma In Vitro
Published on: October 11, 2022
Phosphoproteomics of Retinoblastoma: A Pilot Study Identifies Aberrant Kinases
Lakshmi Dhevi Nagarajha Selvan1, Ravikanth Danda2,3, Anil K Madugundu4
1L&T Opthalmic Pathology, Vision Research Foundation, Sankara Nethralaya, Chennai, Tamil Nadu 600 006, India. lakshmi.nagarajhan@gmail.com.
Abstract:
Retinoblastoma is a malignant tumour of the retina which most often occurs in children. Earlier studies on retinoblastoma have concentrated on the identification of key players in the disease and have not provided information on activated/inhibited signalling pathways. The dysregulation of protein phosphorylation in cancer provides clues about the affected signalling cascades in cancer. Phosphoproteomics is an ideal tool for the study of phosphorylation changes in proteins. Hence, global phosphoproteomics of retinoblastoma (RB) was carried out to identify signalling events associated with this cancer. Over 350 proteins showed differential phosphorylation in RB compared to control retina. Our study identified stress response proteins to be hyperphosphorylated in RB which included H2A histone family member X (H2AFX) and sirtuin 1. In particular, Ser140 of H2AFX also known as gamma-H2AX was found to be hyperphosphorylated in retinoblastoma, which indicated the activation of DNA damage response pathways. We also observed the activation of anti-apoptosis in retinoblastoma compared to control. These observations showed the activation of survival pathways in retinoblastoma. The identification of hyperphosphorylated protein kinases including Bromodomain containing 4 (BRD4), Lysine deficient protein kinase 1 (WNK1), and Cyclin-dependent kinase 1 (CDK1) in RB opens new avenues for the treatment of RB. These kinases can be considered as probable therapeutic targets for RB, as small-molecule inhibitors for some of these kinases are already in clinical trials for the treatment other cancers.
Insights
This study used phosphoproteomics to analyze retinoblastoma (RB), revealing hyperphosphorylated stress response and survival proteins. Key kinases like BRD4 and CDK1 were identified as potential therapeutic targets for this childhood eye cancer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Retinoblastoma (RB) is a pediatric retinal malignancy.
- Previous research focused on RB's key players, not signaling pathways.
- Protein phosphorylation dysregulation is common in cancer, offering insights into signaling cascades.
Purpose of the Study:
- To identify signaling events in retinoblastoma using global phosphoproteomics.
- To investigate differential protein phosphorylation in RB compared to normal retina.
Main Methods:
- Global phosphoproteomics was employed to analyze retinoblastoma samples.
- Differential phosphorylation of over 350 proteins was quantified.
Main Results:
- Stress response proteins, including H2A histone family member X (H2AFX) and sirtuin 1, were hyperphosphorylated in RB.
- Hyperphosphorylation of H2AFX (gamma-H2AX) indicated activated DNA damage response pathways.
- Activated anti-apoptotic and survival pathways were observed in RB.
- Hyperphosphorylated kinases such as Bromodomain containing 4 (BRD4), WNK1, and CDK1 were identified.
Conclusions:
- RB exhibits activated DNA damage response and survival pathways.
- BRD4, WNK1, and CDK1 are potential therapeutic targets for RB.
- Targeting these kinases may offer new treatment strategies for retinoblastoma.
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