Increased chemosensitivity via BRCA2-independent DNA damage in DSS1- and PCID2-depleted breast carcinomas

Naomi Gondo1,2,3, Yasuhiro Sakai4, Zhenhuan Zhang5

  • 1Division of Immunology, Aichi Cancer Center Research Institute, Nagoya, Japan.

Insights

Decreased expression of DSS1 and PCID2 enhances breast cancer chemotherapy sensitivity. DSS1 depletion offers a potential therapeutic target for breast cancer treatment, independent of BRCA2 mutations.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Breast cancer is linked to BRCA tumor suppressor gene mutations.
  • DSS1, part of the TREX-2 complex, influences BRCA2 expression and chemoresistance.
  • PCID2, another TREX-2 component, interacts with BRCA2 to prevent DNA damage.

Purpose of the Study:

  • To investigate the role of TREX-2 components (DSS1, PCID2) and BRCA2 in breast carcinoma chemosensitivity.
  • To determine the prognostic significance of DSS1, PCID2, and BRCA2 expression in breast cancer patients.

Main Methods:

  • Analysis of DSS1 and PCID2 expression in normal and tumor breast tissues.
  • Correlation of DSS1, PCID2, and BRCA2 expression with patient survival.
  • In vitro studies using breast carcinoma cell lines (propidium iodide staining, comet assay, clonogenic survival assay).

Main Results:

  • DSS1 was upregulated in breast carcinoma and correlated with poor prognosis.
  • PCID2 expression was comparable in normal and tumor tissues but inversely correlated with chemosensitivity.
  • DSS1 depletion increased chemosensitivity; overexpression conferred resistance.
  • BRCA2 expression did not impact chemosensitivity.
  • PCID2 depletion also increased chemosensitivity.

Conclusions:

  • DSS1 and PCID2 depletion enhance chemosensitivity in breast cancer, potentially via BRCA2-independent DNA damage.
  • DSS1 depletion represents a druggable target for novel chemotherapeutic strategies in breast cancer, irrespective of BRCA2 status.

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