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Author Spotlight: Combining Proximity Ligand Assay with Gamma-H2AX Staining to Characterize Protein Interactions in DNA Damage Response
Published on: August 2, 2024
Multiomics analysis of adaptation to repeated DNA damage in prostate cancer cells
D Challis1, T Lippis1, R Wilson2
1Tasmanian School of Medicine, University of Tasmania, Hobart, Tasmania, Australia.
Abstract:
DNA damage is frequently utilized as the basis for cancer therapies; however, resistance to DNA damage remains one of the biggest challenges for successful treatment outcomes. Critically, the molecular drivers behind resistance are poorly understood. To address this question, we created an isogenic model of prostate cancer exhibiting more aggressive characteristics to better understand the molecular signatures associated with resistance and metastasis. 22Rv1 cells were repeatedly exposed to DNA damage daily for 6 weeks, similar to patient treatment regimes. Using Illumina Methylation EPIC arrays and RNA-seq, we compared DNA methylation and transcriptional profiles between the parental 22Rv1 cell line and the lineage exposed to prolonged DNA damage. Here we show that repeated DNA damage drives the molecular evolution of cancer cells to a more aggressive phenotype and identify molecular candidates behind this process. Total DNA methylation was increased while RNA-seq demonstrated these cells had dysregulated expression of genes involved in metabolism and the unfolded protein response (UPR) with Asparagine synthetase (ASNS) identified as central to this process. Despite the limited overlap between RNA-seq and DNA methylation, oxoglutarate dehydrogenase-like (OGDHL) was identified as altered in both data sets. Utilising a second approach we profiled the proteome in 22Rv1 cells following a single dose of radiotherapy. This analysis also highlighted the UPR in response to DNA damage. Together, these analyses identified dysregulation of metabolism and the UPR and identified ASNS and OGDHL as candidates for resistance to DNA damage. This work provides critical insight into molecular changes which underpin treatment resistance and metastasis.
Insights
Repeated DNA damage in prostate cancer cells promotes aggression and metastasis. This study identifies altered metabolism and the unfolded protein response (UPR), highlighting ASNS and OGDHL as key players in treatment resistance.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- DNA damage is a cornerstone of cancer therapy, but treatment resistance remains a significant clinical hurdle.
- The molecular mechanisms driving resistance to DNA damage therapies are not well understood.
- Prostate cancer treatment resistance and metastasis are critical challenges in patient outcomes.
Purpose of the Study:
- To investigate the molecular signatures associated with resistance and metastasis in prostate cancer.
- To create an isogenic model of prostate cancer to study the effects of prolonged DNA damage.
- To identify molecular drivers of treatment resistance and cancer progression.
Main Methods:
- Developed an isogenic 22Rv1 prostate cancer cell model with repeated daily DNA damage exposure for 6 weeks.
- Utilized Illumina Methylation EPIC arrays and RNA-sequencing to compare methylation and transcriptional profiles.
- Performed proteomic analysis on 22Rv1 cells after a single dose of radiotherapy.
Main Results:
- Repeated DNA damage induced a more aggressive phenotype in cancer cells.
- Increased total DNA methylation and dysregulated expression of metabolism and unfolded protein response (UPR) genes were observed.
- Asparagine synthetase (ASNS) was identified as central to the UPR, and oxoglutarate dehydrogenase-like (OGDHL) showed alterations in both methylation and expression.
Conclusions:
- Prolonged DNA damage drives the molecular evolution of prostate cancer towards a more aggressive and metastatic state.
- Dysregulation of cellular metabolism and the unfolded protein response (UPR) are key mechanisms underlying treatment resistance.
- ASNS and OGDHL are identified as critical molecular candidates contributing to DNA damage resistance and potential therapeutic targets.
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