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Published on: June 9, 2017
DNA damage recognition via activated ATM and p53 pathway in nonproliferating human prostate tissue
Sari Jäämaa1, Taija M Af Hällström, Anna Sankila
1Biomedicum Helsinki and Department of Virology, Haartman Institute, University of Helsinki, Helsinki, Finland.
Abstract:
DNA damage response (DDR) pathways have been extensively studied in cancer cell lines and mouse models, but little is known about how DNA damage is recognized by different cell types in nonmalignant, slowly replicating human tissues. Here, we assess, using ex vivo cultures of human prostate tissue, DDR caused by cytotoxic drugs (camptothecin, doxorubicin, etoposide, and cisplatin) and ionizing radiation (IR) in the context of normal tissue architecture. Using specific markers for basal and luminal epithelial cells, we determine and quantify cell compartment-specific damage recognition. IR, doxorubicin, and etoposide induced the phosphorylation of H2A.X on Ser(139) (γH2AX) and DNA damage foci formation. Surprisingly, luminal epithelial cells lack the prominent γH2AX response after IR when compared with basal cells, although ATM phosphorylation on Ser(1981) and 53BP1 foci were clearly detectable in both cell types. The attenuated γH2AX response seems to result from low levels of total H2A.X in the luminal cells. Marked increase in p53, a downstream target of the activated ATM pathway, was detected only in response to camptothecin and doxorubicin. These findings emphasize the diversity of pathways activated by DNA damage in slowly replicating tissues and reveal an unexpected deviation in the prostate luminal compartment that may be relevant in prostate tumorigenesis. Detailed mapping of tissue and cell type differences in DDR will provide an outlook of relevant responses to therapeutic strategies.
Insights
Researchers studied DNA damage response (DDR) in human prostate tissue, finding differences between basal and luminal cells. Luminal cells showed a weaker response to radiation, possibly impacting prostate cancer development.
Area of Science:
- Oncology
- Cell Biology
- Genetics
Background:
- DNA damage response (DDR) pathways are crucial for maintaining genomic stability.
- Previous DDR research primarily focused on cancer cell lines and mouse models.
- Understanding DDR in nonmalignant, slowly replicating human tissues like the prostate is limited.
Purpose of the Study:
- To investigate cell type-specific DNA damage recognition in ex vivo human prostate tissue.
- To compare DDR pathways activated by cytotoxic drugs and ionizing radiation in basal and luminal epithelial cells.
Main Methods:
- Ex vivo culture of human prostate tissue.
- Treatment with cytotoxic drugs (camptothecin, doxorubicin, etoposide, cisplatin) and ionizing radiation (IR).
- Immunohistochemical analysis using cell-specific markers and DDR pathway activation markers (γH2AX, p53, ATM, 53BP1).
Main Results:
- Ionizing radiation, doxorubicin, and etoposide induced DNA damage markers (γH2AX, DNA damage foci).
- Prostate luminal epithelial cells exhibited a diminished γH2AX response to IR compared to basal cells, attributed to lower H2A.X levels.
- p53 activation was observed only with camptothecin and doxorubicin treatment.
Conclusions:
- DNA damage recognition pathways vary significantly across different cell types in slowly replicating human tissues.
- An unexpected difference in DDR was identified in prostate luminal cells, potentially relevant to prostate tumorigenesis.
- Mapping cell type-specific DDR provides insights into therapeutic strategies for prostate cancer.
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