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Perkinsus marinus in bioreactor: growth and a cost-reduced growth medium
Caitlin Murphy1, José A Fernández Robledo2, G Peter van Walsum1
1Department of Chemical and Biomedical Engineering, University of Maine, Orono, ME, USA.
Abstract:
Perkinsus marinus (Perkinsea) is an osmotrophic facultative intracellular marine protozoan responsible for "Dermo" disease in the eastern oyster, Crassostrea virginica. In 1993 in vitro culture of P. marinus was developed in the absence of host cells. Compared to most intracellular protozoan parasites, the availability of P. marinus to grow in the absence of host cells has provided the basis to explore its use as a heterologous expression system. As the genetic toolbox is becoming available, there is also the need for larger-scale cultivation and lower-cost media formulations. Here, we took an industrial approach to scaled-up growth from a small culture flask to bioreactors, which required developing new cultivation parameters, including aeration, mixing, pH, temperature control, and media formulation. Our approach also enabled more real-time data collection on growth. The bioreactor cultivation method showed similar or accelerated growth rates of P. marinus compared to culture in T-flasks. Redox measurements indicated sufficient oxygen availability throughout the cultivation. Replacing fetal bovine serum with chicken serum showed no differences in the growth rate and a 60% reduction in the medium cost. This study opens the door to furthering P. marinus as a valid heterologous expression system by showing the ability to grow in bioreactors.
One-Sentence Summary:
Perkinsus marinus, a microbial parasite of oysters that could be useful for developing vaccines for humans, has been shown to grow well in laboratory equipment that can be expanded to commercial scale using a less expensive growth formula than usual laboratory practice.
Insights
Perkinsus marinus, an oyster parasite, can now be cultured at scale in bioreactors. This advancement utilizes a cost-effective medium, paving the way for its use as a heterologous expression system.
Area of Science:
- Marine microbiology
- Parasitology
- Biotechnology
Background:
- Perkinsus marinus causes Dermo disease in oysters.
- In vitro culture of P. marinus exists but requires optimization for large-scale use.
- P. marinus is a potential heterologous expression system.
Purpose of the Study:
- To scale up cultivation of P. marinus from flasks to bioreactors.
- To develop new cultivation parameters for large-scale growth.
- To reduce the cost of media formulation for P. marinus culture.
Main Methods:
- Industrial scale-up from T-flasks to bioreactors.
- Optimization of aeration, mixing, pH, and temperature control.
- Evaluation of media formulation, including serum replacement.
Main Results:
- Bioreactor cultivation achieved similar or accelerated growth rates compared to T-flasks.
- Redox measurements confirmed adequate oxygen availability.
- Replacing fetal bovine serum with chicken serum reduced medium cost by 60% without impacting growth.
Conclusions:
- Scalable bioreactor cultivation of P. marinus is feasible.
- Cost-effective media formulations are achievable.
- This work supports the development of P. marinus as a heterologous expression system.
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