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Exploiting DNA Damage Repair in Precision Cancer Therapy: BRCA1 as a Prime Therapeutic Target
Liliana Raimundo1, Juliana Calheiros1, Lucília Saraiva1
1LAQV/REQUIMTE, Laboratόrio de Microbiologia, Departamento de Ciências Biolόgicas, Faculdade de Farmácia, Universidade do Porto, 4050-313 Porto, Portugal.
Abstract:
Precision medicine aims to identify specific molecular alterations, such as driver mutations, allowing tailored and effective anticancer therapies. Poly(ADP)-ribose polymerase inhibitors (PARPi) are the prototypical example of targeted therapy, exploiting the inability of cancer cells to repair DNA damage. Following the concept of synthetic lethality, PARPi have gained great relevance, particularly in BRCA1 dysfunctional cancer cells. In fact, BRCA1 mutations culminate in DNA repair defects that can render cancer cells more vulnerable to therapy. However, the efficacy of these drugs has been greatly affected by the occurrence of resistance due to multi-connected DNA repair pathways that may compensate for each other. Hence, the search for additional effective agents targeting DNA damage repair (DDR) is of crucial importance. In this context, BRCA1 has assumed a central role in developing drugs aimed at inhibiting DNA repair activity. Collectively, this review provides an in-depth understanding of the biology and regulatory mechanisms of DDR pathways, highlighting the potential of DDR-associated molecules, particularly BRCA1 and its interconnected partners, in precision cancer medicine. It also affords an overview about what we have achieved and a reflection on how much remains to be done in this field, further addressing encouraging clues for the advance of DDR targeted therapy.
Insights
Targeted therapies like PARP inhibitors exploit cancer
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Precision medicine utilizes molecular alterations for targeted cancer therapies.
- Poly(ADP)-ribose polymerase inhibitors (PARPi) leverage synthetic lethality in DNA repair-deficient cancers, especially those with BRCA1 dysfunction.
- Resistance to PARPi arises from interconnected DNA repair pathways, necessitating novel therapeutic strategies.
Purpose of the Study:
- To review the biology and regulation of DNA damage repair (DDR) pathways.
- To highlight BRCA1 and its partners as key targets for novel DDR-inhibiting drugs.
- To discuss advancements and future directions in DDR-targeted cancer therapy.
Main Methods:
- Literature review of DNA damage repair (DDR) pathways.
- Analysis of BRCA1's role in cancer therapy resistance.
- Exploration of synthetic lethality principles in drug development.
Main Results:
- BRCA1 mutations create vulnerabilities exploitable by PARPi.
- Multi-connected DNA repair pathways contribute to PARPi resistance.
- BRCA1 and its interacting partners are crucial targets for new precision cancer medicines.
Conclusions:
- Understanding DDR pathways is vital for advancing precision cancer medicine.
- Targeting BRCA1 and related DDR molecules offers promising therapeutic avenues.
- Further research into DDR mechanisms is essential for overcoming treatment resistance and improving patient outcomes.
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