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Updated: Feb 7, 2026

Resurrection of Dormant Daphnia magna: Protocol and Applications
Published on: January 19, 2018
Toxicogenomic responses of low level anticancer drug exposures in Daphnia magna
Chiara Russo1, Marina Isidori1, Jessica A Deaver2
1Dipartimento di Scienze e Tecnologie Ambientali, Biologiche e Farmaceutiche, Università della Campania L. Vanvitelli, Via Vivaldi 43, I-81100, Caserta, Italy.
Abstract:
The use of anticancer drugs in chemotherapy is increasing, leading to growing environmental concentrations of imatinib mesylate (IMA), cisplatinum (CDDP), and etoposide (ETP) in aquatic systems. Previous studies have shown that these anticancer drugs cause DNA damage in the crustacean Daphnia magna at low, environmentally relevant concentrations. To explore the mechanism of action of these compounds and the downstream effects of DNA damage on D. magna growth and development at a sensitive life stage, we exposed neonates to low level concentrations equivalent to those that elicit DNA damage (IMA: 2000 ng/L, ETP: 300 ng/L, CDDP: 10 ng/L) and performed transcriptomic analysis using an RNA-seq approach. RNA sequencing generated 14 million reads per sample, which were aligned to the D. magna genome and assembled, producing approximately 23,000 transcripts per sample. Over 90% of the transcripts showed homology to proteins in GenBank, revealing a high quality transcriptome assembly, although functional annotation was much lower. RT-qPCR was used to identify robust biomarkers and confirmed the downregulation of an angiotensin converting enzyme-like gene (ance) involved in neuropeptide regulation across all three anticancer drugs and the down-regulation of DNA topoisomerase II by ETP. RNA-seq analysis also allowed for an in depth exploration of the differential splicing of transcripts revealing that regulation of different gene isoforms predicts potential impacts on translation and protein expression, providing a more meaningful assessment of transcriptomic data. Enrichment analysis and investigation of affected biological processes suggested that the DNA damage caused by ETP and IMA influences cell cycle regulation and GPCR signaling. This dysregulation is likely responsible for effects to neurological system processes and development, and overall growth and development. Our transcriptomic approach provided insight into the mechanisms that respond to DNA damage caused by anticancer drug exposure and generated novel hypotheses on how these chemicals may impact the growth and survival of this ecologically important zooplankton species.
Insights
Anticancer drugs like imatinib mesylate, cisplatinum, and etoposide harm aquatic life. DNA damage in Daphnia magna impacts cell cycle and neurological processes, affecting growth and survival.
Area of Science:
- Environmental toxicology
- Ecotoxicogenomics
- Aquatic invertebrate biology
Background:
- Increasing environmental concentrations of chemotherapy drugs (imatinib mesylate, cisplatinum, etoposide) pose risks to aquatic ecosystems.
- Previous research indicates these drugs cause DNA damage in Daphnia magna at environmentally relevant concentrations.
Purpose of the Study:
- To investigate the molecular mechanisms of DNA damage induced by anticancer drugs in Daphnia magna.
- To explore the downstream effects of this DNA damage on crustacean growth and development using transcriptomics.
Main Methods:
- Exposure of Daphnia magna neonates to low concentrations of imatinib mesylate, cisplatinum, and etoposide.
- Transcriptomic analysis using RNA-sequencing (RNA-seq) to assess gene expression and differential splicing.
- Validation of key gene expression changes using quantitative real-time PCR (RT-qPCR).
Main Results:
- RNA-seq revealed high-quality transcriptome assembly, identifying differential splicing and gene isoform regulation.
- Confirmed downregulation of an angiotensin converting enzyme-like gene (ance) and DNA topoisomerase II by specific drugs.
- Enrichment analysis indicated DNA damage influences cell cycle regulation and GPCR signaling pathways.
Conclusions:
- Anticancer drug-induced DNA damage in Daphnia magna disrupts cell cycle and neurological processes, impacting development.
- Transcriptomic insights provide a deeper understanding of the mechanisms underlying ecotoxicological effects of chemotherapy drugs.
- Generated hypotheses on the impact of these contaminants on zooplankton growth, survival, and ecosystem health.
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