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Published on: February 17, 2023
A method for CRISPR/Cas9 mutation of genes in fathead minnow (Pimephales promelas)
Jennifer A Maki1, Jenna E Cavallin2, Kevin G Lott2
1ORISE Research Participation Program, Great Lakes Toxicology and Ecology Division, US Environmental Protection Agency, 6201 Congdon Blvd., Duluth, MN, 55804, USA; Department of Chemistry and Biochemistry, The College of St. Scholastica, 1200 Kenwood Ave., Duluth, MN, 55811, USA.
Abstract:
Clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9 genome editing allows for the disruption or modification of genes in a multitude of model organisms. In the present study, we describe and employ the method for use in the fathead minnow (Pimephales promelas), in part, to assist in the development and validation of adverse outcome pathways (AOPs). The gene coding for an enzyme responsible for melanin production, tyrosinase (tyr), was the initial target chosen for development and assessment of the method since its disruption results in abnormal pigmentation, a phenotype obvious within 3-4 d after injection of fathead minnow embryos. Three tyrosinase-targeting guide strands were generated using the fathead minnow sequence in tandem with the CRISPOR guide strand selection tool. The strands targeted two areas: one stretch of sequence in a conserved region that demonstrated homology to EGF-like or laminin-like domains as determined by Protein Basic Local Alignment Search Tool in concert with the Conserved Domain Database, and a second area in the N-terminal region of the tyrosinase domain. To generate one cell embryos, in vitro fertilization was performed, allowing for microinjection of hundreds of developmentally-synchronized embryos with Cas9 proteins complexed to each of the three guide strands. Altered retinal pigmentation was observed in a portion of the tyr guide strand injected population within 3 d post fertilization (dpf). By 14 dpf, fish without skin and swim bladder pigmentation were observed. Among the three guide strands injected, the guide targeting the EGF/laminin-like domain was most effective in generating mutants. CRISPR greatly advances our ability to directly investigate gene function in fathead minnow, allowing for advanced approaches to AOP validation and development.
Insights
CRISPR/Cas9 genome editing was successfully applied to the fathead minnow, enabling gene function studies. This method aids in validating adverse outcome pathways by observing pigmentation changes in fish.
Area of Science:
- Genomics
- Molecular Biology
- Ecotoxicology
Background:
- CRISPR/Cas9 is a powerful genome editing tool for model organisms.
- Fathead minnow (Pimephales promelas) is a key model for ecotoxicological studies and adverse outcome pathway (AOP) development.
Purpose of the Study:
- To establish and validate CRISPR/Cas9 genome editing in fathead minnow.
- To investigate gene function related to melanin production for AOP research.
Main Methods:
- Targeted disruption of the tyrosinase (tyr) gene using CRISPR/Cas9.
- Microinjection of Cas9 protein-guide strand complexes into one-cell stage embryos.
- Phenotypic analysis of pigmentation defects in developing fish.
Main Results:
- Disruption of the tyr gene resulted in observable pigmentation defects.
- Altered retinal pigmentation was noted within 3 days post fertilization.
- Complete loss of skin and swim bladder pigmentation observed by 14 days post fertilization.
- A guide strand targeting an EGF/laminin-like domain was most effective.
Conclusions:
- CRISPR/Cas9 genome editing is feasible and effective in fathead minnow.
- This technique significantly advances the ability to study gene function in this model organism.
- The method supports the development and validation of AOPs for environmental risk assessment.
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