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Quantitative Proteomics Analysis Reveals Nuclear Perturbation in Human Glioma U87 Cells treated with Temozolomide
Jinglin Guo1,2, Guo-Zhong Yi1,2,3, Zhifeng Liu4
1Department of Neurosurgery, Nanfang Hospital, Southern Medical University, Guangzhou, China.
Abstract:
Glioblastoma (GBM) is the most malignant and aggressive glioma, which has a very poor prognosis. Temozolomide (TMZ) is still a first-line treatment, but resistance is inevitable even in MGMT-deficient glioblastoma cells. The aims of this study were to comprehend the effect of TMZ on nucleus and the underlying mechanism of acquired TMZ resistance in MGMT-deficient GBM. We show the changes of nuclear proteome in the MGMT-deficient GBM U87 cells treated with TMZ for 1 week. Label-free-based quantitative proteomics were used to investigate nuclear protein abundance change. Subsequently, gene ontology function annotation, KEGG pathway analysis, protein-protein interaction (PPI) network construction analysis of DAPs, and immunofluorescence were applied to validate the quality of proteomics. In total, 457 (455 gene products) significant DAPs were identified, of which 327 were up-regulated and 128 were down-regulated. Bioinformatics analysis uncovered RAD50, MRE11, UBR5, MSH2, MSH6, DDB1, DDB2, RPA1, RBX1, CUL4A, and CUL4B mainly enriched in DNA damage repair related pathway and constituted a protein-protein interaction network. Ribosomal proteins were down-regulated. Cells were in a stress-responsive state, while the entire metabolic level was lowered. SIGNIFICANCE OF THE STUDY: In U87 cell treated with TMZ for 1 week, which resulted in DNA damage, we found various proteins dysregulated in the nucleus. Some proteins related to the DNA damage repair pathway were up-regulated, and there was a strong interaction. We believe this is the potential clues of chemotherapy resistance in tumour cells. These proteins can be used as indicators of tumour resistance screening in the future.
Insights
Temozolomide (TMZ) resistance in glioblastoma (GBM) involves nuclear protein changes. DNA damage repair proteins were upregulated, suggesting a mechanism for acquired chemoresistance in MGMT-deficient GBM cells.
Area of Science:
- Oncology
- Molecular Biology
- Proteomics
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with poor prognosis.
- Temozolomide (TMZ) is a first-line treatment, but chemoresistance is a significant challenge, even in MGMT-deficient GBM.
- Understanding the mechanisms of acquired TMZ resistance is crucial for improving patient outcomes.
Purpose of the Study:
- To investigate the effects of TMZ on the nuclear proteome of MGMT-deficient GBM cells.
- To identify proteins and pathways involved in acquired TMZ resistance.
- To explore potential biomarkers for predicting or screening chemotherapy resistance.
Main Methods:
- MGMT-deficient GBM U87 cells were treated with TMZ.
- Label-free quantitative proteomics was employed to analyze nuclear protein abundance changes.
- Bioinformatics analyses included Gene Ontology, KEGG pathway analysis, and protein-protein interaction (PPI) network construction.
- Immunofluorescence was used for validation.
Main Results:
- 457 differentially abundant proteins (DAPs) were identified in the nucleus after TMZ treatment.
- Proteins involved in DNA damage repair pathways (e.g., RAD50, MRE11, MSH2, MSH6) were upregulated and formed a significant PPI network.
- Ribosomal proteins were downregulated, and cells exhibited a stress-responsive state with lowered metabolic activity.
Conclusions:
- TMZ treatment induces significant nuclear proteome alterations in MGMT-deficient GBM cells.
- Upregulation and interaction of DNA damage repair proteins are implicated in acquired TMZ resistance.
- These proteins may serve as future indicators for tumor resistance screening.
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