Improved performance of magnetic cross-linked lipase aggregates by interfacial activation: A robust and magnetically recyclable biocatalyst for transesterification of jatropha oil

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Abstract

Lipases are the most widely employed enzymes in commercial industries. The catalytic mechanism of most lipases involves a step called “interfacial activation”. As interfacial activation can lead to a significant increase in catalytic activity, it is of profound importance in developing lipase immobilization methods. To obtain a potential biocatalyst for industrial biodiesel production, an effective strategy for enhancement of catalytic activity and stability of immobilized lipase was developed. This was performed through the combination of interfacial activation with hybrid magnetic cross-linked lipase aggregates. This biocatalyst was investigated for the immobilization of lipase from Rhizomucor miehei (RML). Under the optimal conditions, the activity recovery of the surfactant-activated magnetic RML cross-linked enzyme aggregates (CLEAs) was as high as 2058%, with a 20-fold improvement over the free RML. Moreover, the immobilized RML showed excellent catalytic performance for the biodiesel reaction at a yield of 93%, and more importantly, could be easily separated from the reaction mixture by simple magnetic decantation, and retained more than 84% of its initial activities after five instances of reuse. This study provides a new and versatile approach for designing and fabricating immobilized lipase with high activation and stability.

Figures

  • Figure 1. Schematic illustration of the immobilization process to produce Rhizomucor miehei (RML) cross-linked enzyme aggregates (CLEAs), magnetic RML CLEAs, and surfactant-activated magnetic RML CLEAs.
  • Figure 2. Schematic of the simple magnetic separation of surfactant-activated magnetic RML CLEAs: (A) immobilized lipase dispersed in reaction mixture; (B) immobilized lipase collected by an external magnet.
  • Figure 3. The FT-IR spectrum of (A) Fe3O4 nanoparticles; (B) (3-aminopropyl)triethoxysilane (APTES)functionalized Fe3O4 nanoparticles; (C) RML CLEAs; (D) magnetic RML CLEAs; (E) AOT-activated magnetic RML CLEAs. (Sodium bis-2-(ethylhexyl) sulfosuccinate, AOT).
  • Figure 4. SEM images of (A) Fe3O4 nanoparticles; (B) APTES-functionalized Fe3O4 nanoparticles; (C) RML CLEAs; (D) magnetic RML CLEAs; (E) AOT-activated magnetic RML CLEAs.
  • Figure 5. Magnetic hysteresis loops of Fe3O4 nanoparticles, APTES-functionalized Fe3O4 nanoparticles, magnetic RML CLEAs and AOT-activated magnetic RML CLEAs.
  • Figure 6. Effect of precipitant type on the activities of magnetic RML CLEAs.
  • Figure 9. Effect of activation of different surfactants on activity of magnetic RML CLEAs.
  • Figure 10. Effect of different solvents on AOT-activated magnetic RML CLEAs catalyzed biodiesel production from jatropha oil.

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Zhang, W., Yang, H., Liu, W., Wang, N., & Yu, X. (2017). Improved performance of magnetic cross-linked lipase aggregates by interfacial activation: A robust and magnetically recyclable biocatalyst for transesterification of jatropha oil. Molecules, 22(12). https://doi.org/10.3390/molecules22122157

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