Magnetic nanocomposite MnFe2O4-SiO2 as an efficient carrier for phospholipase A1 in DHA-rich phosphatidylcholine synthesis

Zhaoding Lang, Luchao Ren, Qin Gao, Ruyi Li, Xuechao Hu, Lujing Ren

Research output: Contribution to journalArticlepeer-review

Abstract

To address the instability and low reusability of free phospholipase A1 (PLA1) in enzymatic synthesis, this study introduces a magnetic nanocomposite, MnFe2O4-SiO2, as an efficient carrier for enzyme immobilization. Synthesized through a hydrothermal method followed by silica coating, this advanced material boasts a high specific surface area, excellent magnetic separability, and robust structural integrity. These characteristics synergistically enhance the immobilization process, resulting in a remarkable 70% immobilization efficiency under optimized conditions. Notably, the immobilized enzyme exhibited significantly improved catalytic activity compared to its free counterpart. In the transesterification reaction, the system achieved impressive incorporation rates of 41.91% for docosahexaenoic acid (DHA) and 13.33% for docosapentaenoic acid (DPA). Furthermore, the immobilized enzyme demonstrated excellent operational stability, retaining 68.75% of its initial activity after five consecutive reaction cycles. This work demonstrates the potential of MnFe2O4-SiO2 for sustainable and efficient enzyme catalysis, offering a scalable solution for the industrial production of DHA-rich phosphatidylcholine.

Original languageEnglish
Article number163429
JournalApplied Surface Science
Volume703
DOIs
StatePublished - 15 Sep 2025

Keywords

  • DHA/DPA Synthesis
  • Enzyme Immobilization
  • Magnetic Nanocomposite
  • MnFeO-SiO
  • Phospholipase A1
  • Reusability

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