Development of protease nanobiocatalysts and their application in hydrolysis of sunflower meal protein isolate

被引:6
作者
Katic, Katarina [1 ]
Banjanac, Katarina [2 ]
Simovic, Milica [3 ]
Corovic, Marija [3 ]
Milivojevic, Ana [2 ]
Marinkovic, Aleksandar [4 ]
Bezbradica, Dejan [3 ]
机构
[1] Inst Meat Hyg & Technol, Kacanskog 13, Belgrade 11000, Serbia
[2] Univ Belgrade, Fac Technol & Met, Innovat Ctr, Karnegijeva 4, Belgrade 11000, Serbia
[3] Univ Belgrade, Fac Technol & Met, Dept Biochem Engn & Biotechnol, Karnegijeva 4, Belgrade 11000, Serbia
[4] Univ Belgrade, Fac Technol & Met, Dept Organ Chem, Karnegijeva 4, Belgrade 11000, Serbia
关键词
Alcalase; covalent immobilisation; Flavourzyme; nanobiocatalyst; protein hydrolysates; sunflower meal; FUMED SILICA NANOPARTICLES; SUBTILISIN CARLSBERG; IMMOBILIZATION; PURIFICATION; TOOL;
D O I
10.1111/ijfs.15189
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
In this study, the suitability of fumed silica nanoparticles (FNS) and its derivatives (amino-modified FNS (AFNS), cyanuric chloride-activated AFNS (CCAFNS) and epoxy-modified FNS (GFNS)), for covalent immobilisation of two commercial protease preparations Alcalase(R) and Flavourzyme(R) was investigated. The highest hydrolytic activities of immobilised preparations were 25 IU g(-1) support (Alcalase-GFNS) and 2.95 IU g(-1) support (Flavourzyme-CCAFNS). Furthermore, the immobilised preparations showed 43% and 20% of initial specific activities of commercial protease preparations, respectively. Flavourzyme-CCAFNS also exhibited the highest exopeptidase activity of 22.83 L-pNAU g(-1) support. Finally, these two nanobiocatalysts were successfully applied for hydrolysis of sunflower meal protein isolate (SMPI), providing two times higher hydrolysis yields in comparison to free enzymes, justifying the applied immobilisation process. Namely, the highest hydrolysis yield (30%) was gained by the sequential hydrolysis with Alcalase-GFNS and Flavourzyme-CCAFNS, which resulted in the formation of small hydrophobic and hydrophilic peptides, <= 5 kDa, confirmed by HPLC analysis and electrophoretic separation.
引用
收藏
页码:4287 / 4297
页数:11
相关论文
共 36 条
[11]   Influence of different silica derivatives in the immobilization and stabilization of a Bacillus licheniformis protease (Subtilisin Carlsberg) [J].
Ferreira, L ;
Ramos, MA ;
Dordick, JS ;
Gil, MH .
JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 2003, 21 (4-6) :189-199
[12]   Applications of the ninhydrin reaction for analysis of amino acids, peptides, and proteins to agricultural and biomedical sciences [J].
Friedman, M .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2004, 52 (03) :385-406
[13]   Circular dichroism studies of subtilisin Carlsberg immobilised on micron sized silica particles [J].
Ganesan, Ashok ;
Price, Nicholas C. ;
Kelly, Sharon M. ;
Petry, Inga ;
Moore, Barry D. ;
Halling, Peter J. .
BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS, 2006, 1764 (06) :1119-1125
[14]   Nanomaterials as Matrices for Enzyme Immobilization [J].
Gupta, Munishwar N. ;
Kaloti, Mandeep ;
Kapoor, Manali ;
Solanki, Kusum .
ARTIFICIAL CELLS BLOOD SUBSTITUTES AND BIOTECHNOLOGY, 2011, 39 (02) :98-109
[15]   Nanocarriers Immobilized Proteases and Their Industrial Applications: An Overview [J].
Husain, Qayyum .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2018, 18 (01) :486-499
[16]   Further Stabilization of Alcalase Immobilized on Glyoxyl Supports: Amination Plus Modification with Glutaraldehyde [J].
Hussain, Fouzia ;
Arana-Pena, Sara ;
Morellon-Sterling, Roberto ;
Barbosa, Oveimar ;
Ait Braham, Sabrina ;
Kamal, Shagufta ;
Fernandez-Lafuente, Roberto .
MOLECULES, 2018, 23 (12)
[17]   Enhancement of Alkaline Protease Activity and Stability via Covalent Immobilization onto Hollow Core-Mesoporous Shell Silica Nanospheres [J].
Ibrahim, Abdelnasser Salah Shebl ;
Al-Salamah, Ali A. ;
El-Toni, Ahmed M. ;
Almaary, Khalid S. ;
El-Tayeb, Mohamed A. ;
Elbadawi, Yahya B. ;
Antranikian, Garabed .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2016, 17 (02)
[18]   Immobilized protease on the magnetic nanoparticles used for the hydrolysis of rapeseed meals [J].
Jin, Xin ;
Li, Ju-Fang ;
Huang, Ping-Ying ;
Dong, Xu-Yan ;
Guo, Lu-Lu ;
Yang, Liang ;
Cao, Yuan-Cheng ;
Wei, Fang ;
Zhao, Yuan-Di ;
Chen, Hong .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2010, 322 (14) :2031-2037
[19]   Immobilization of the Magnetic Nanoparticles with Alkaline Protease Enzyme Produced by Enterococcus hirae and Pseudomonas aeruginosa Isolated from Dairy Effluents [J].
Masi, Chandran ;
Chandramohan, C. ;
Ahmed, M. Fazil .
BRAZILIAN ARCHIVES OF BIOLOGY AND TECHNOLOGY, 2017, 60
[20]   Epoxy-amino groups:: A new tool for improved immobilization of proteins by the epoxy method [J].
Mateo, C ;
Torres, R ;
Fernández-Lorente, G ;
Ortiz, C ;
Fuentes, M ;
Hidalgo, A ;
López-Gallego, F ;
Abian, O ;
Palomo, JM ;
Betancor, L ;
Pessela, BCC ;
Guisan, JM ;
Fernández-Lafuente, R .
BIOMACROMOLECULES, 2003, 4 (03) :772-777