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Quantifying Replication Stress in Ovarian Cancer Cells Using Single-Stranded DNA Immunofluorescence
Published on: February 10, 2023
Therapeutic Targeting of DNA Replication Stress in Cancer
Long Gu1, Robert J Hickey2, Linda H Malkas1
1Department of Molecular Diagnostics & Experimental Therapeutics, Beckman Research Institute of City of Hope, Duarte, CA 91010, USA.
Abstract:
This article reviews the currently used therapeutic strategies to target DNA replication stress for cancer treatment in the clinic, highlighting their effectiveness and limitations due to toxicity and drug resistance. Cancer cells experience enhanced spontaneous DNA damage due to compromised DNA replication machinery, elevated levels of reactive oxygen species, loss of tumor suppressor genes, and/or constitutive activation of oncogenes. Consequently, these cells are addicted to DNA damage response signaling pathways and repair machinery to maintain genome stability and support survival and proliferation. Chemotherapeutic drugs exploit this genetic instability by inducing additional DNA damage to overwhelm the repair system in cancer cells. However, the clinical use of DNA-damaging agents is limited by their toxicity and drug resistance often arises. To address these issues, the article discusses a potential strategy to target the cancer-associated isoform of proliferating cell nuclear antigen (caPCNA), which plays a central role in the DNA replication and damage response network. Small molecule and peptide agents that specifically target caPCNA can selectively target cancer cells without significant toxicity to normal cells or experimental animals.
Insights
Targeting cancer
Area of Science:
- Oncology and Molecular Biology
- DNA Replication and Repair Mechanisms
Background:
- Cancer cells exhibit increased DNA damage and rely on DNA repair pathways for survival.
- Current DNA-damaging chemotherapies face limitations due to toxicity and drug resistance.
Purpose of the Study:
- To review current therapeutic strategies targeting DNA replication stress in cancer.
- To explore novel approaches for cancer treatment with reduced toxicity.
Main Methods:
- Review of existing literature on DNA replication stress and cancer therapeutics.
- Discussion of targeting the cancer-associated isoform of proliferating cell nuclear antigen (caPCNA).
Main Results:
- Conventional therapies induce DNA damage but suffer from toxicity and resistance.
- Targeting caPCNA offers a selective approach to cancer treatment.
- Small molecule and peptide agents against caPCNA show promise for selective cancer cell targeting.
Conclusions:
- Targeting DNA replication stress is a viable cancer treatment strategy.
- caPCNA-specific agents represent a promising therapeutic avenue with potentially lower toxicity.
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