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DNA damage response (DDR) via NKX3.1 expression in prostate cells
Burcu Erbaykent-Tepedelen1, Selda Karamil1, Ceren Gonen-Korkmaz2
1Ege University, Faculty of Engineering, Department of Bioengineering, Cancer Biology Laboratory, Bornova, Izmir, Turkey.
Abstract:
It has been reported that NKX3.1 an androgen-regulated homeobox gene restricted to prostate and testicular tissues, encodes a homeobox protein, which transcriptionally regulates oxidative damage responses and enhances topoisomerase I re-ligation by a direct interaction with the ATM protein in prostate cells. In this study, we aimed to investigate the role of NKX3.1 in DNA double-strand break (DSB) repair. We demonstrate that the DNA damage induced by CPT-11 (irinotecan, a topo I inhibitor), doxorubicin (a topo II inhibitor), and H2O2 (a mediator of oxidative damage), but not by etoposide (another topo II inhibitor), is negatively influenced by NKX3.1 expression. We also examined γH2AX((S139)) foci formation and observed that the overexpression of NKX3.1 resulted a remarkable decrease in the formation of γH2AX((S139)) foci. Intriguingly, we observed in NKX3.1 silencing studies that the depletion of NKX3.1 correlated with a significant decrease in the levels of p-ATM((S1981)) and γH2AX((S139)). The data imply that the DNA damage response (DDR) can be altered, perhaps via a decrease in the topoisomerase I re-ligation function; this is consistent with the physical association of NKX3.1 with DDR mediators upon treatment of both PC-3 and LNCaP cells with CPT-11. Furthermore, the depletion of NKX3.1 resulted in a G1/S progression via the facilitation of an increase in E2F stabilization concurrent with the suppressed DDR. Thus, the topoisomerase I inhibitor-mediated DNA damage enhanced the physical association of NKX3.1 with γH2AX((S139)) on the chromatin in LNCaP cells, whereas NKX3.1 in the soluble fraction was associated with p-ATM((S1981)) and RAD50 in these cells. Overall, the data suggest that androgens and NKX3.1 expression regulate the progression of the cell cycle and concurrently activate the DDR. Therefore, androgen withdrawal may augment the development of an error-prone phenotype and, subsequently, the loss of DNA damage control during prostate cancer progression.
Insights
NKX3.1 protein influences DNA double-strand break repair and the DNA damage response (DDR). Androgen signaling and NKX3.1 regulate cell cycle progression and DDR activation, impacting prostate cancer progression.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- NKX3.1 is an androgen-regulated homeobox gene in prostate and testicular tissues.
- NKX3.1 regulates oxidative damage responses and interacts with ATM protein in prostate cells.
- The role of NKX3.1 in DNA double-strand break (DSB) repair remains to be fully elucidated.
Purpose of the Study:
- To investigate the role of NKX3.1 in DNA double-strand break (DSB) repair.
- To determine how NKX3.1 expression affects the DNA damage response (DDR).
- To explore the relationship between NKX3.1, cell cycle progression, and androgen signaling in prostate cancer.
Main Methods:
- Treatment of prostate cancer cells (PC-3 and LNCaP) with DNA damaging agents (CPT-11, doxorubicin, H2O2, etoposide).
- Assessment of DNA damage by monitoring γH2AX foci formation.
- Analysis of protein levels and interactions, including p-ATM, γH2AX, RAD50, and E2F stabilization.
- NKX3.1 gene silencing and overexpression studies.
Main Results:
- NKX3.1 expression negatively influenced DNA damage induced by CPT-11, doxorubicin, and H2O2.
- Overexpression of NKX3.1 decreased γH2AX foci formation, indicating reduced DSB signaling.
- NKX3.1 depletion led to decreased p-ATM and γH2AX levels and promoted G1/S cell cycle progression.
- NKX3.1 physically associated with γH2AX, p-ATM, and RAD50 upon DNA damage induction.
Conclusions:
- NKX3.1 plays a significant role in modulating the DNA damage response, potentially by affecting topoisomerase I re-ligation.
- NKX3.1 and androgen signaling coordinate cell cycle progression and DDR activation.
- Androgen withdrawal may lead to impaired DNA damage control and an error-prone phenotype in prostate cancer progression.
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