CHD1L Regulates Cell Survival in Breast Cancer and Its Inhibition by OTI-611 Impedes the DNA Damage Response and

Rita Sala1, Hector Esquer1,2,3, Timothy Kellett1

  • 1Department of Pharmaceutical Sciences, The Skaggs School of Pharmacy and Pharmaceutical Sciences, Aurora, CO 80045, USA.

Insights

Pharmacological inhibition of Chromodomain helicase DNA-binding protein 1-like (CHD1L) with OTI-611 shows cytotoxicity in triple-negative breast cancer. This CHD1L inhibitor synergizes with PARPi and chemotherapy, offering a novel therapeutic strategy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Therapeutics

Background:

  • Chromodomain helicase DNA-binding protein 1-like (CHD1L) is crucial for chromatin relaxation in DNA damage response.
  • Previous studies indicated gene deletion sensitizes cells to PARP inhibitors (PARPi), but pharmacological inhibition effects were unknown.

Purpose of the Study:

  • To investigate the mechanism of action and therapeutic potential of the CHD1L inhibitor OTI-611 in triple-negative breast cancer (TNBC).
  • To evaluate OTI-611's efficacy as a single agent and in combination with standard treatments.

Main Methods:

  • Cytotoxicity assays in TNBC cell lines (SUM149PT, HCC1937, MDA-MB-231) and tumor organoids.
  • Immunofluorescence to assess PAR and AIF translocation, DNA damage, and apoptosis markers.
  • In situ subcellular fractionation and Western blot to evaluate protein trapping on chromatin.

Main Results:

  • OTI-611 demonstrated cytotoxicity against TNBC organoids and synergized with PARPi and chemotherapy, irrespective of BRCA mutation status.
  • CHD1L inhibition blocked H2AX phosphorylation, trapped CHD1L on chromatin, and promoted PAR hydrolysis.
  • PAR hydrolysis led to PARP1/2 trapping, PAR translocation, AIF release, and PARthanatos induction.

Conclusions:

  • Targeted inhibition of CHD1L's oncogenic function via OTI-611 presents an innovative therapeutic strategy for breast cancer.
  • This approach exploits vulnerabilities in CHD1L-mediated DNA repair and cell survival pathways, creating synergy with existing therapies.

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