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Everything Comes with a Price: The Toxicity Profile of DNA-Damage Response Targeting Agents
Federica Martorana1, Leandro Apolinario Da Silva2, Cristiana Sessa2
1Department of Clinical and Experimental Medicine, University of Catania, 95123 Catania, Italy.
Abstract:
Targeting the inherent vulnerability of cancer cells with an impaired DNA Damage Repair (DDR) machinery, Poly-ADP-Ribose-Polymerase (PARP) inhibitors have yielded significant results in several tumor types, eventually entering clinical practice for the treatment of ovarian, breast, pancreatic and prostate cancer. More recently, inhibitors of other key components of DNA repair, such as ATR, CHK1 and WEE1, have been developed and are currently under investigation in clinical trials. The inhibition of DDR inevitably induces on-target and off-target adverse events. Hematological and gastrointestinal toxicities as well as fatigue are common with all DDR-targeting agents, while other adverse events are drug specific, such as hypertension with niraparib and transaminase elevation with rucaparib. Cases of pneumonitis and secondary hematological malignancies have been reported with PARP inhibitors and, despite being overly rare, they deserve particular attention due to their severity. Safety also represents a crucial issue for the development of combination regimens incorporating DDR-targeting agents with other treatments, such as chemotherapy, anti-angiogenics or immunotherapy. As such, overlapping and cumulative toxicities should be considered, especially when more than two classes of drugs are combined. Here, we review the safety profile of DDR-targeting agents when used as single agents or in combination and we provide principles of toxicity management.
Insights
DNA Damage Repair (DDR) inhibitors, including PARP inhibitors, are effective cancer treatments but can cause toxicities. Managing these side effects is crucial for patient safety, especially in combination therapies.
Area of Science:
- Oncology
- Pharmacology
- Genetics
Background:
- DNA Damage Repair (DDR) inhibitors, such as Poly-ADP-Ribose-Polymerase (PARP) inhibitors, are clinically used for various cancers.
- New DDR inhibitors targeting ATR, CHK1, and WEE1 are in clinical trials.
Purpose of the Study:
- To review the safety profile of DDR-targeting agents.
- To discuss toxicity management principles for single-agent and combination therapies.
Main Methods:
- Literature review of safety data for DDR inhibitors.
- Analysis of adverse events associated with PARP, ATR, CHK1, and WEE1 inhibitors.
- Examination of safety considerations for combination regimens.
Main Results:
- Common toxicities include hematological issues, gastrointestinal problems, and fatigue.
- Drug-specific adverse events and rare but severe events like pneumonitis and secondary malignancies are noted.
- Combination therapies require careful consideration of overlapping toxicities.
Conclusions:
- DDR inhibitors offer therapeutic benefits but necessitate vigilant safety monitoring.
- Effective toxicity management is essential for optimizing patient outcomes and enabling combination strategies.
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