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.

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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