Improvement of enzymatic activity and stability of lipase A from Candida antartica onto halloysite nanotubes with Taguchi method for optimized immobilization

被引:33
作者
Monteiro, Rodolpho R. C. [1 ]
Barros de Oliveira, Andre Luiz [1 ]
de Menezes, Fernando L. [2 ]
Martins de Souza, Maria Cristiane [3 ]
Fechine, Pierre B. A. [2 ]
dos Santos, Jose C. S. [3 ]
机构
[1] Univ Fed Ceara, Dept Engn Quim, Campus Pici,Bloco 709, BR-60455760 Fortaleza, Ceara, Brazil
[2] Univ Fed Ceara, Dept Quim Analit & Fis Quim, Campus Pici,Bloco 940, BR-60455760 Fortaleza, Ceara, Brazil
[3] Univ Integracao Int Lusofonia Afro Brasileira, Inst Engenharias & Desenvolvimento Sustentavel, Campus Auroras, BR-62790970 Redencao, CE, Brazil
关键词
Lipase A from Candida antartica; Halloysite; Immobilization; Taguchi method; ANTARCTICA LIPASE; BIODIESEL PRODUCTION; CATALYZED TRANSESTERIFICATION; BIOTECHNOLOGICAL APPLICATIONS; INTERFACIAL ACTIVATION; SURFACE MODIFICATION; KINETIC RESOLUTION; THERMAL-STABILITY; CLAY NANOTUBES; OPEN FORM;
D O I
10.1016/j.clay.2022.106634
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This research reports the immobilization by ion adsorption and interfacial activation of lipase A from Candida antarctica (CALA) in halloysite nanotubes (Hal) was optimized by the Taguchi method. Under optimized conditions (pH 5 to 5 mM, 5 C-o and 4 h), it was possible to obtain an immobilization yield (IY) of 97.1 +/- 0.10% with a mass activity (AtD) of 83.81 +/- 0 0.50 U/g for the hydrolysis of p-nitrophenyl butyrate. pH and ionic strength were the parameters that most positively influenced the optimization of the enzymatic immobilization process, favoring the activity of the catalytic derivative. At pH 7, CALA-Hal exhibited a half-life 2-8 times longer than CALA at 50-90 C-o. CALA showed maximum activity at pH 7.Especially at pH 9, CALA-Hal was more active than the native lipase at the pHs under study, expect at pH 7. CALA was partially desorbed from HNT after 2 h of incubation in 4% Triton X-100 and fully desorbed after 1 h of incubation in 1.0 M NaCl. Hal and CALA-Hal were characterized by X-Ray Diffraction (XRD), Fourier Transform Infrared (FTIR) spectroscopy, Scanning Electron Microscope (SEM), elemental analysis (CHNS), Thermogravimetry (TG) and Differential Scanning Calorimetry (DSC), showing the immobilization of CALA on HNT and the maintenance of the nanotubes structure after immobilization. Therefore, the strategy employed in this study to immobilize CALA onto Hal allowed us to obtain promising results. Biocatalysts showed potential for use in diverse reactions of industrial interest.
引用
收藏
页数:12
相关论文
共 121 条
  • [1] Toxic influence of pristine and surfactant modified halloysite nanotubes on phytopathogenic bacteria
    Abhinayaa, R.
    Jeevitha, G.
    Mangalaraj, D.
    Ponpandian, N.
    Meena, P.
    [J]. APPLIED CLAY SCIENCE, 2019, 174 : 57 - 68
  • [2] Immobilisation and application of lipases in organic media
    Adlercreutz, Patrick
    [J]. CHEMICAL SOCIETY REVIEWS, 2013, 42 (15) : 6406 - 6436
  • [3] Biocatalytic and biomimetic aminolysis reactions: useful tools for selective transformations on polyfunctional substrates
    Alfonso, I
    Gotor, V
    [J]. CHEMICAL SOCIETY REVIEWS, 2004, 33 (04) : 201 - 209
  • [4] Assay optimization: A statistical design of experiments approach
    Altekar, Maneesha
    Homon, Carol A.
    Kashem, Mohammed A.
    Mason, Steven W.
    Nelson, Richard M.
    Patnaude, Lori A.
    Yingling, Jeffrey
    Taylor, Paul B.
    [J]. CLINICS IN LABORATORY MEDICINE, 2007, 27 (01) : 139 - +
  • [5] Potential applications of enzymes immobilized on/in nano materials: A review
    Ansari, Shakeel Ahmed
    Husain, Qayyum
    [J]. BIOTECHNOLOGY ADVANCES, 2012, 30 (03) : 512 - 523
  • [6] New applications of glyoxyl-octyl agarose in lipases co-immobilization: Strategies to reuse the most stable lipase
    Arana-Pena, Sara
    Mendez-Sanchez, Carmen
    Rios, Nathalia S.
    Ortiz, Claudia
    Goncalves, Luciana R. B.
    Fernandez-Lafuente, Roberto
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2019, 131 : 989 - 997
  • [7] Immobilization on octyl-agarose beads and some catalytic features of commercial preparations of lipase a from Candida antarctica (Novocor ADL): Comparison with immobilized lipase B from Candida antarctica
    Arana-Pena, Sara
    Lokha, Yuliya
    Fernandez-Lafuente, Roberto
    [J]. BIOTECHNOLOGY PROGRESS, 2019, 35 (01)
  • [8] Biodiesel production through lipase catalyzed transesterification: An overview
    Bajaj, Akhil
    Lohan, Purva
    Jha, Prabhat N.
    Mehrotra, Rajesh
    [J]. JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 2010, 62 (01) : 9 - 14
  • [9] Strategies for the one-step immobilization-purification of enzymes as industrial biocatalysts
    Barbosa, Oveimar
    Ortiz, Claudia
    Berenguer-Murcia, Angel
    Torres, Rodrigo
    Rodrigues, Rafael C.
    Fernandez-Lafuente, Roberto
    [J]. BIOTECHNOLOGY ADVANCES, 2015, 33 (05) : 435 - 456
  • [10] Heterofunctional Supports in Enzyme Immobilization: From Traditional Immobilization Protocols to Opportunities in Tuning Enzyme Properties
    Barbosa, Oveimar
    Torres, Rodrigo
    Ortiz, Claudia
    Berenguer-Murcia, Angel
    Rodrigues, Rafael C.
    Fernandez-Lafuente, Roberto
    [J]. BIOMACROMOLECULES, 2013, 14 (08) : 2433 - 2462