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Updated: May 31, 2025

Immunofluorescence Imaging of DNA Damage and Repair Foci in Human Colon Cancer Cells
Published on: June 9, 2020
Phosphoproteomic analysis of X-ray-irradiated planarians provides novel insights into the DNA damage response
Huanhuan Hu1, Yibing Zhang2, Yanan Yu2
1College of Life Science, Henan Normal University, Xinxiang 453007, Henan Province, PR China; Key Laboratory of Fertility Preservation, School of Life Sciences and Technologies, Sanquan College of Xinxiang Medical University, Xinxiang 453003, Henan Province, PR China.
Abstract:
Phosphorylation plays a crucial role in the cellular response to radiation and cancer therapies, yet phosphoproteomics studies in planarians remain underexplored despite the organism's remarkable regenerative capacities. This study utilized advanced ion mobility mass spectrometry for 4D-label-free quantitative proteomics to identify phosphorylation sites associated with irradiation in planarians. A total of 33,284 phosphorylation sites from 15,505 phosphorylated peptides and 4710 unique phosphoproteins were identified. In the sub-lethal dose irradiation group, 1695 phosphoproteins with 3483 phosphorylation sites exhibited significant changes, while exposure to lethal doses of radiation led to significant changes in 2308 phosphoproteins with 6112 phosphorylation sites, including many kinases, transcription factors, and cytoskeletal proteins. Functional enrichment analysis revealed that the altered phosphoproteins were primarily involved in transcription, RNA biosynthesis, mRNA processing regulation, and spliceosomal complex assembly. Functional validation of five differentially phosphorylated proteins revealed that their depletion impaired stem cell regeneration after irradiation by disrupting DNA repair, suggesting that these proteins are critical to planarian biology and their radiation response. By identifying the phosphorylation state and specific sites of planarian proteins, our study lays the foundation for further research on protein phosphorylation in the radiation-induced DNA damage response. In addition, our findings provide preliminary insights into the role of calnexin, a protein involved in interacting with newly synthesized N-linked glycoproteins, in planarians.
Insights
This study identifies key phosphorylation changes in planarians after radiation exposure, revealing proteins crucial for stem cell regeneration and DNA repair. These findings advance understanding of radiation response in regenerative organisms.
Area of Science:
- Cellular Biology
- Proteomics
- Regenerative Biology
Background:
- Phosphorylation is vital for cellular responses to radiation and cancer therapies.
- Planarian phosphoproteomics, particularly concerning radiation, is underexplored despite their regenerative abilities.
Purpose of the Study:
- To identify and characterize phosphorylation sites and proteins affected by irradiation in planarians.
- To understand the functional roles of these phosphoproteins in radiation response and regeneration.
Main Methods:
- Utilized advanced ion mobility mass spectrometry for 4D-label-free quantitative proteomics.
- Identified over 33,000 phosphorylation sites across nearly 5,000 phosphoproteins.
- Performed functional enrichment analysis and validated key protein functions.
Main Results:
- Identified significant changes in 1695 phosphoproteins (sub-lethal dose) and 2308 phosphoproteins (lethal dose).
- Altered phosphoproteins are involved in transcription, RNA processing, and spliceosomal assembly.
- Depletion of five key proteins impaired stem cell regeneration and DNA repair post-irradiation.
Conclusions:
- This study provides a foundational phosphoproteomic dataset for planarian radiation response.
- Identified critical phosphoproteins involved in DNA repair and stem cell regeneration after irradiation.
- Offers preliminary insights into calnexin's role in planarian radiation response.
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