TY - JOUR
T1 - Dual role of ionic liquid modified β-Cyclodextrin in dynamic conformational regulation and substrate enrichment for improved lipase immobilization
AU - Ji, Liran
AU - Du, Jiaxiang
AU - Zhang, Wei
AU - Lu, Zeping
AU - Nian, Binbin
AU - Hu, Yi
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/9/15
Y1 - 2025/9/15
N2 - To address the limitations of free enzymes in industrial applications, immobilization technologies have garnered significant attention as a robust strategy for enhancing operational stability and reusability. In this work, a novel-designed immobilized lipase (Fe3O4@β-CD-IL-CRL) was successfully developed via the introduction of β-cyclodextrin (β-CD), Fe3O4 nanoparticles and ionic liquid (IL). The properties studies indicated that Fe3O4@β-CD-IL-CRL exhibited remarkable stability, maintaining 72.8 % residual activity after 7 successive catalytic cycles and retaining more than 80 % of its initial activity following 2 h incubation at 60 °C. Furthermore, to examine the practical applications of Fe3O4@β-CD-IL-CRL, it was used in the synthesis of phytosterol esters. The results suggested that a yield of 95.0 % can be obtained at 50 °C in 48 h, highlighting its exceptional catalytic efficiency. Molecular dynamics (MD) simulations showed that the immobilization of Fe3O4@β-CD-IL maintained an optimal pocket size for CRL, which was advantageous for substrate anchoring. Additionally, analyses of the lid structure distance and tunnel further supported this finding. Beyond the impact on the dynamic conformation of lipase, β-CD was also found to effectively enrich substrates, enhancing catalytic efficiency. This discovery offers new insights into the optimization of biocatalytic systems and highlights the potential of β-CD as a versatile carrier for enzyme immobilization.
AB - To address the limitations of free enzymes in industrial applications, immobilization technologies have garnered significant attention as a robust strategy for enhancing operational stability and reusability. In this work, a novel-designed immobilized lipase (Fe3O4@β-CD-IL-CRL) was successfully developed via the introduction of β-cyclodextrin (β-CD), Fe3O4 nanoparticles and ionic liquid (IL). The properties studies indicated that Fe3O4@β-CD-IL-CRL exhibited remarkable stability, maintaining 72.8 % residual activity after 7 successive catalytic cycles and retaining more than 80 % of its initial activity following 2 h incubation at 60 °C. Furthermore, to examine the practical applications of Fe3O4@β-CD-IL-CRL, it was used in the synthesis of phytosterol esters. The results suggested that a yield of 95.0 % can be obtained at 50 °C in 48 h, highlighting its exceptional catalytic efficiency. Molecular dynamics (MD) simulations showed that the immobilization of Fe3O4@β-CD-IL maintained an optimal pocket size for CRL, which was advantageous for substrate anchoring. Additionally, analyses of the lid structure distance and tunnel further supported this finding. Beyond the impact on the dynamic conformation of lipase, β-CD was also found to effectively enrich substrates, enhancing catalytic efficiency. This discovery offers new insights into the optimization of biocatalytic systems and highlights the potential of β-CD as a versatile carrier for enzyme immobilization.
KW - Candida rugosa lipase immobilization
KW - Ionic liquid
KW - Magnetic β-Cyclodextrin
KW - Molecular dynamics simulation
UR - http://www.scopus.com/inward/record.url?scp=105005578706&partnerID=8YFLogxK
U2 - 10.1016/j.carbpol.2025.123786
DO - 10.1016/j.carbpol.2025.123786
M3 - 文章
AN - SCOPUS:105005578706
SN - 0144-8617
VL - 364
JO - Carbohydrate Polymers
JF - Carbohydrate Polymers
M1 - 123786
ER -