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Updated: Nov 8, 2025

Enhanced Genome Editing with Cas9 Ribonucleoprotein in Diverse Cells and Organisms
Published on: May 25, 2018
CRISPR/Cas9 Ribonucleoprotein-Based Genome Editing Methodology in the Marine Protozoan Parasite Perkinsus marinus
Raghavendra Yadavalli1, Kousuke Umeda1,2, Hannah A Waugh1,3
1Bigelow Laboratory for Ocean Sciences, East Boothbay, ME, United States.
Abstract:
Perkinsus marinus (Perkinsozoa), a close relative of apicomplexans, is an osmotrophic facultative intracellular marine protozoan parasite responsible for "Dermo" disease in oysters and clams. Although there is no clinical evidence of this parasite infecting humans, HLA-DR40 transgenic mice studies strongly suggest the parasite as a natural adjuvant in oral vaccines. P. marinus is being developed as a heterologous gene expression platform for pathogens of medical and veterinary relevance and a novel platform for delivering vaccines. We previously reported the transient expression of two rodent malaria genes Plasmodium berghei HAP2 and MSP8. In this study, we optimized the original electroporation-based protocol to establish a stable heterologous expression method. Using 20 μg of pPmMOE[MOE1]:GFP and 25.0 × 106 P. marinus cells resulted in 98% GFP-positive cells. Furthermore, using the optimized protocol, we report for the first time the successful knock-in of GFP at the C-terminus of the PmMOE1 using ribonucleoprotein (RNP)-based CRISPR/Cas9 gene editing methodology. The GFP was expressed 18 h post-transfection, and expression was observed for 8 months post-transfection, making it a robust and stable knock-in system.
Insights
Perkinsus marinus, a marine parasite, is now a stable gene expression platform. Researchers achieved robust, long-term expression of GFP using CRISPR/Cas9 gene editing, enabling new vaccine development.
Area of Science:
- Marine biology
- Parasitology
- Molecular biology
Background:
- Perkinsus marinus is a marine protozoan parasite causing Dermo disease in oysters and clams.
- It shows potential as a natural adjuvant for oral vaccines and a platform for heterologous gene expression.
- Previous work demonstrated transient expression of malaria genes in P. marinus.
Purpose of the Study:
- To optimize a stable heterologous gene expression method for P. marinus.
- To establish a robust gene knock-in system using CRISPR/Cas9 technology.
Main Methods:
- Optimized electroporation protocol for P. marinus.
- Utilized ribonucleoprotein (RNP)-based CRISPR/Cas9 gene editing for gene knock-in.
- Introduced Green Fluorescent Protein (GFP) into the PmMOE1 gene.
Main Results:
- Achieved 98% GFP-positive P. marinus cells with optimized electroporation.
- Successfully performed stable knock-in of GFP at the C-terminus of PmMOE1.
- Demonstrated GFP expression 18 hours post-transfection and sustained expression for 8 months.
Conclusions:
- Developed a robust and stable heterologous gene expression and knock-in system in P. marinus.
- This optimized system facilitates advanced applications in vaccine development and pathogen research.
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