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Simple Fed-Batch Strategy for Production of Capsular Polysaccharide by Haemophilus influenzae b at Pilot Scale
Mateus Ribeiro da Silva1,2, Silvia Maria Ferreira Albani1, Joaquin Cabrera-Crespo1
1Process Development Laboratory, Development and Innovation Center, Butantan Institute, São Paulo 05503-900, SP, Brazil.
Insights
A simplified fed-batch strategy for Haemophilus influenzae type b (Hib) polysaccharide antigen (PRP) production was developed. This method enhances yield and is suitable for cost-effective vaccine manufacturing in non-profit settings.
Area of Science:
- Microbiology
- Biotechnology
- Vaccine Development
Background:
- Haemophilus influenzae type b (Hib) causes bacterial meningitis, primarily in young children.
- The capsular polysaccharide b (PRP) is a crucial antigen for Hib vaccine formulation.
- Current production methods can be complex and costly, limiting accessibility.
Purpose of the Study:
- To develop a high-yield, accessible, and scalable PRP production strategy.
- To identify optimal fed-batch cultivation parameters for Hib.
- To facilitate vaccine manufacturing in non-profit laboratories.
Main Methods:
- Evaluation of various fed-batch cultivation strategies for Hib.
- Investigation of glucose limitation and oxygen availability impacts on PRP yield.
- Comparison of constant fed-batch (Cfb) and exponential fed-batch with cell recycling (EfbCR).
- Scale-up of the optimized process to an 80 L bioreactor.
Main Results:
- Oxygen availability, not glucose limitation, was critical for reducing inhibitory acetic acid.
- Increasing airflow in Cfb increased PRP yield by 33% (1706.40 mg/L).
- EfbCR achieved the highest concentration (1879.28 mg/L), but Cfb was more robust and scalable.
- Scaled-up Cfb process yielded 1885 mg/L in an 80 L bioreactor.
Conclusions:
- A simplified, robust, and scalable constant fed-batch strategy for Hib PRP production was established.
- This method offers an efficient approach for producing a vital vaccine antigen.
- The findings support cost-effective, local vaccine antigen production for public health initiatives.
Abstract:
Haemophilus influenzae b (Hib) is a pathogenic bacterium that causes meningitis worldwide, mainly in children less than two years old. The capsular polysaccharide b (PRP) is an essential antigen for vaccine formulation. This study aimed to develop a high-yield, technically accessible production strategy for PRP production to facilitate vaccine manufacturing in non-profit laboratories. Various fed-batch cultivation strategies were evaluated to address metabolic limitations and identify a robust, simplified process suitable for seamless scale-up to pilot scale. Glucose limitation strategies did not reduce inhibitory acetic acid accumulation due to deficiencies in Hib's respiratory chain, whereas oxygen availability was identified as critical parameter. Increasing the specific air flow from 0.5 to 1.0 vvm in constant fed-batch (Cfb) resulted in a 33% yield increase, reaching 1706.40 mg PRP.L-1. However, the highest PRP concentration was achieved using exponential fed-batch with cell recycling (EfbCR), resulting in 1879.28 mg PRP.L-1. Although EfbCR offered high productivity, the Cfb strategy emerged to be the most technically feasible and robust solution and was successfully scaled up to an 80 L bioreactor, achieving 1885 mg PRP.L-1. These results advance understanding of PRP production by Hib and provides valuable insight into an efficient and simplified strategy for producing this key/vital vaccine antigen. The findings support the potential for cost-effective local production in public health initiatives.
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