Daphnia as a model organism to probe biological responses to nanomaterials—from individual to population effects via adverse outcome pathways

Katie Reilly, Laura Bradford, Hossein Hayat Davoudi, Suffeiya Supian, Marcella T. Maia, Gabriela H. Silva, Zhiling Guo*, Diego Stéfani T. Martinez, Iseult Lynch*

*Corresponding author for this work

Research output: Contribution to journalReview articlepeer-review

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Abstract

The importance of the cladoceran Daphnia as a model organism for ecotoxicity testing has been well-established since the 1980s. Daphnia have been increasingly used in standardised testing of chemicals as they are well characterised and show sensitivity to pollutants, making them an essential indicator species for environmental stress. The mapping of the genomes of D. pulex in 2012 and D. magna in 2017 further consolidated their utility for ecotoxicity testing, including demonstrating the responsiveness of the Daphnia genome to environmental stressors. The short lifecycle and parthenogenetic reproduction make Daphnia useful for assessment of developmental toxicity and adaption to stress. The emergence of nanomaterials (NMs) and their safety assessment has introduced some challenges to the use of standard toxicity tests which were developed for soluble chemicals. NMs have enormous reactive surface areas resulting in dynamic interactions with dissolved organic carbon, proteins and other biomolecules in their surroundings leading to a myriad of physical, chemical, biological, and macromolecular transformations of the NMs and thus changes in their bioavailability to, and impacts on, daphnids. However, NM safety assessments are also driving innovations in our approaches to toxicity testing, for both chemicals and other emerging contaminants such as microplastics (MPs). These advances include establishing more realistic environmental exposures via medium composition tuning including pre-conditioning by the organisms to provide relevant biomolecules as background, development of microfluidics approaches to mimic environmental flow conditions typical in streams, utilisation of field daphnids cultured in the lab to assess adaption and impacts of pre-exposure to pollution gradients, and of course development of mechanistic insights to connect the first encounter with NMs or MPs to an adverse outcome, via the key events in an adverse outcome pathway. Insights into these developments are presented below to inspire further advances and utilisation of these important organisms as part of an overall environmental risk assessment of NMs and MPs impacts, including in mixture exposure scenarios.
Original languageEnglish
Article number1178482
Number of pages21
JournalFrontiers in toxicology
Volume5
DOIs
Publication statusPublished - 14 Apr 2023

Bibliographical note

Funding
This work was financially supported by the EU H2020 projects NanoCommons (731032), NanoSolveIT (Grant Agreement no. 814572) and RiskGONE (Grant Agreement no. 814425). SS acknowledges funding for her PhD studies from Malaysian Government MARA (Majlis Amanah Rakyat). DM. thanks the Sao Paulo Research Foundation (FAPESP) for the visiting research fellowship at GEES/UoB (2018/25140-3) and the National Council for Scientific and Technological Development (CNPq) for the productivity research fellowship and the FAPESP-UoB research grant.

Keywords

  • Toxicology
  • ecotoxicity
  • high throughput
  • microfluidics
  • nanosafety assessment
  • standardised testing
  • nanomaterials (A)

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