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Comparison between Lipase Performance Distributed at the O/W Interface by Membrane Emulsification and by Mechanical
Emma Piacentini1, Rosalinda Mazzei1, Lidietta Giorno1
1National Research Council, Institute on Membrane Technology, CNR-ITM, Via P. Bucci 17 C, 87036 Rende, Italy.
Membranes
|March 6, 2021
Summary
Membrane emulsification creates uniform microdroplets for lipase-catalyzed reactions, enhancing enantioselectivity and conversion in pharmaceutical applications. This method offers precise control for biocatalytic microreactor production.
Area of Science:
- Biotechnology and Pharmaceutical Sciences
- Chemical Engineering
- Enzyme Catalysis
Background:
- Multiphase bioreactors utilize interfacial biocatalysts for reactions at liquid-liquid interfaces.
- Microdroplet formation enhances mass transfer in these systems.
- Membrane emulsification offers precise control under mild conditions for stable bioactive components.
Purpose of the Study:
- To produce a microstructured emulsion bioreactor using membrane emulsification with lipase as both catalyst and surfactant.
- To compare the catalytic performance of lipase in membrane-emulsified systems versus stirred systems.
- To investigate the kinetic resolution of (S,R)-naproxen methyl ester using lipase.
Main Methods:
- Utilized membrane emulsification technology for producing microstructured emulsion bioreactors.
- Employed lipase from Candida rugosa for the kinetic resolution of (S,R)-naproxen methyl ester.
- Evaluated and compared catalytic performance in a stirred tank reactor against a stirred method.
Main Results:
- Lipase exhibited maximum enantioselectivity (100%) and conversion using the membrane emulsification technique.
- Uniform and stable droplets allowed for precise evaluation of enzyme distribution and specific activity at the oil/water interface.
- Hydrodynamic radius of the enzyme at the interface was estimated under optimal enantioselectivity conditions.
Conclusions:
- Membrane emulsification is a superior method for producing biocatalytic microdroplets, leading to enhanced enzyme performance.
- The technique enables precise control over droplet characteristics, facilitating detailed analysis of enzyme behavior at interfaces.
- This approach holds significant potential for optimizing enzymatic processes in pharmaceutical and biotechnology industries.

