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Updated: Dec 21, 2025

Comprehensive Assessment of Germline Chemical Toxicity Using the Nematode Caenorhabditis elegans
Published on: February 22, 2015
A Multimodal Genotoxic Anticancer Drug Characterized by Pharmacogenetic Analysis in Caenorhabditis elegans
Frank B Ye1, Akil Hamza1, Tejomayee Singh1
1Michael Smith Laboratories, University of British Columbia, Vancouver, V6T 1Z4, Canada.
Abstract:
New anticancer therapeutics require extensive in vivo characterization to identify endogenous and exogenous factors affecting efficacy, to measure toxicity and mutagenicity, and to determine genotypes that result in therapeutic sensitivity or resistance. We used Caenorhabditis elegans as a platform with which to characterize properties of the anticancer therapeutic CX-5461. To understand the processes that respond to CX-5461-induced damage, we generated pharmacogenetic profiles for a panel of C. elegans DNA replication and repair mutants with common DNA-damaging agents for comparison with the profile of CX-5461. We found that multiple repair pathways, including homology-directed repair, microhomology-mediated end joining, nucleotide excision repair, and translesion synthesis, were needed for CX-5461 tolerance. To determine the frequency and spectrum of CX-5461-induced mutations, we used a genetic balancer to capture CX-5461-induced mutations. We found that CX-5461 is mutagenic, resulting in both large copy number variations and a high frequency of single-nucleotide variations (SNVs), which are consistent with the pharmacogenetic profile for CX-5461. Whole-genome sequencing of CX-5461-exposed animals found that CX-5461-induced SNVs exhibited a distinct mutational signature. We also phenocopied the CX-5461 photoreactivity observed in clinical trials and demonstrated that CX-5461 generates reactive oxygen species when exposed to UVA radiation. Together, the data from C. elegans demonstrate that CX-5461 is a multimodal DNA-damaging anticancer agent.
Insights
The anticancer drug CX-5461 is a multimodal DNA-damaging agent. Studies in Caenorhabditis elegans reveal it causes mutations and requires multiple DNA repair pathways for tolerance.
Area of Science:
- Genetics
- Molecular Biology
- Pharmacology
Background:
- Anticancer therapeutics require thorough in vivo characterization for efficacy, toxicity, and resistance profiling.
- Caenorhabditis elegans serves as a model organism for in vivo drug studies.
Purpose of the Study:
- To characterize the anticancer therapeutic CX-5461 using Caenorhabditis elegans.
- To understand the DNA damage response pathways involved in CX-5461 tolerance.
- To determine the mutagenicity and mutational signature of CX-5461.
Main Methods:
- Generated pharmacogenetic profiles of C. elegans DNA replication and repair mutants.
- Compared CX-5461's profile with common DNA-damaging agents.
- Used a genetic balancer to capture and analyze CX-5461-induced mutations.
- Performed whole-genome sequencing on CX-5461-exposed animals.
- Assessed CX-5461 photoreactivity and reactive oxygen species generation.
Main Results:
- Multiple DNA repair pathways (homology-directed repair, microhomology-mediated end joining, nucleotide excision repair, translesion synthesis) are necessary for CX-5461 tolerance.
- CX-5461 is mutagenic, inducing copy number variations and single-nucleotide variations (SNVs).
- CX-5461-induced SNVs have a distinct mutational signature.
- CX-5461 exhibits photoreactivity, generating reactive oxygen species under UVA radiation.
Conclusions:
- CX-5461 functions as a multimodal DNA-damaging anticancer agent.
- The C. elegans model effectively characterizes the in vivo properties of CX-5461.

