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Published on: April 20, 2017
Rhodium metalloinsertor binding generates a lesion with selective cytotoxicity for mismatch repair-deficient cells
Julie M Bailis1, Alyson G Weidmann2, Natalie F Mariano3
1Department of Oncology Research, Amgen, Inc., South San Francisco, CA 94080; jbailis@amgen.com jkbarton@caltech.edu.
Abstract:
The DNA mismatch repair (MMR) pathway recognizes and repairs errors in base pairing and acts to maintain genome stability. Cancers that have lost MMR function are common and comprise an important clinical subtype that is resistant to many standard of care chemotherapeutics such as cisplatin. We have identified a family of rhodium metalloinsertors that bind DNA mismatches with high specificity and are preferentially cytotoxic to MMR-deficient cells. Here, we characterize the cellular mechanism of action of the most potent and selective complex in this family, [Rh(chrysi)(phen)(PPO)]2+ (Rh-PPO). We find that Rh-PPO binding induces a lesion that triggers the DNA damage response (DDR). DDR activation results in cell-cycle blockade and inhibition of DNA replication and transcription. Significantly, the lesion induced by Rh-PPO is not repaired in MMR-deficient cells, resulting in selective cytotoxicity. The Rh-PPO mechanism is reminiscent of DNA repair enzymes that displace mismatched bases, and is differentiated from other DNA-targeted chemotherapeutics such as cisplatin by its potency, cellular mechanism, and selectivity for MMR-deficient cells.
Insights
A new rhodium compound, Rh-PPO, selectively kills cancer cells lacking DNA mismatch repair (MMR) function. It triggers a DNA damage response that halts cancer cell growth, offering a targeted therapy approach.
Area of Science:
- Molecular Biology
- Cancer Biology
- Medicinal Chemistry
Background:
- The DNA mismatch repair (MMR) pathway is crucial for genomic stability by correcting base pairing errors.
- MMR-deficient cancers are common and exhibit resistance to conventional chemotherapies like cisplatin.
- Targeting MMR-deficient tumors represents a significant clinical need.
Purpose of the Study:
- To elucidate the cellular mechanism of action of a novel rhodium metalloinsertor, Rh-PPO, in MMR-deficient cells.
- To assess the potential of Rh-PPO as a selective chemotherapeutic agent.
Main Methods:
- Characterization of Rh-PPO's interaction with DNA mismatches.
- Investigation of the DNA damage response (DDR) triggered by Rh-PPO.
- Assessment of Rh-PPO's cytotoxicity in MMR-deficient versus MMR-proficient cells.
Main Results:
- Rh-PPO binds specifically to DNA mismatches, inducing a cytotoxic lesion.
- Rh-PPO triggers a robust DDR, leading to cell-cycle arrest and inhibition of DNA/RNA synthesis.
- The induced lesion is unrepaired in MMR-deficient cells, causing selective cell death.
Conclusions:
- Rh-PPO exhibits potent and selective cytotoxicity against MMR-deficient cancer cells.
- Its unique mechanism, involving unrepaired DNA damage, differentiates it from existing chemotherapeutics.
- Rh-PPO holds promise as a targeted therapy for MMR-deficient cancers.
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