Biotechnology and Bioengineering· 2026Q1
Immobilization of Alginate Microbeads With Whole‐Cells Expressing Nitrilase for Continuous Nicotinic Acid Production in Chip Millireactor
- 1citations
- Q1SCImago
- 2026year
Short summary
Whole E. coli cells expressing nitrilase, encapsulated in alginate microbeads (up to 350 µm), achieved stable nicotinic acid conversion rates of ~30% over 7 days in continuous-flow millireactors.
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Key points
- Developed a continuous-flow millireactor for nicotinic acid production using nitrilase-expressing E. coli.
- Whole cells were encapsulated in alginate microbeads (up to 350 µm) using a centrifuge-assisted method.
- Microencapsulated cells achieved stable conversion rates of ~30% over 7 days in both pillar and zigzag millireactors.
- Microencapsulation reduced cell leaching and product contamination compared to direct covalent immobilization.
AI-generated from the title and abstract; the full text is not read.
Abstract
ABSTRACT The biocatalytic production of nicotinic acid using nitrilases has emerged as a promising alternative to conventional chemical synthesis, offering improved selectivity and environmental sustainability. In this study, we developed a continuous‐flow millireactor system employing Escherichia coli cells expressing a nitrilase from Paraburkholderia phymatum (Nit Phym ) for the continuous production of nicotinic acid. To enhance catalytic efficiency and stability, whole cells were immobilized using two different strategies: covalent attachment to the reactor walls and encapsulation in alginate microbeads. The performance of these immobilization techniques was evaluated in millireactors with two different geometries: pillar and zigzag configurations. Encapsulation of Nit Phym ‐expressing E. coli cells in alginate microbeads was achieved through a centrifuge‐assisted microencapsulation method, yielding beads with diameters of up to 350 µm. Continuous‐flow reactions demonstrated that the microencapsulated cells maintained their activity over at least 7 days, achieving stable conversion rates of approximately 30% in both pillar and zigzag millireactors. Compared to direct covalent immobilization, microencapsulation significantly reduced cell leaching and contamination of the reaction product. These findings highlight the potential of whole‐cell microencapsulation for enhancing the stability and efficiency of biocatalytic processes in continuous‐flow millireactors.
The authors' abstract, as published at the source. Biotechnology and Bioengineering, 2026 · DOI ↗
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Field: Molecular Biology
Molecular BiologyBiochemistry, Genetics and Molecular Biology