Comparison of the synthesis of the alpha-amylase enzyme by the native strain Bacillus licheniformis in immobilized and immersed cells
Abstract
Background and Objectives: The study focused on the amylase enzyme, widely used in the industrial starch liquefaction process. We looked into the best way to immobilize the native strain Bacillus licheniformis, which is the only alpha-amylase-producing bacterium, by trapping it in calcium alginate gel. This is a promising way to increase enzyme output.
Materials and Methods: We examined the effects of alginate content, biomass age, initial cell loading (ICL), bead size, and solidification duration in calcium chloride solution on enzyme synthesis. We conducted batch fermentations using both immobilized and free cells.
Results: Alpha-amylase production significantly increased with the alginate concentration ratio, achieving a maximum enzyme yield of 23.5 U/mL at a 30 g/l alginate concentration, utilizing an initial cell loading of 1.5 g in 150-200 beads per flask. These involved cells from a 12-hour culture with a bead size of 5.0 mm, were solidified for 24 hours in a 2.5% (w/v) calcium chloride solution. The yield of the immobilized cells was approximately 111.71% higher than that of the free cells, which produced 11.1 U/ml. The immobilized cells consistently generated alpha-amylase over five repeated cycles, attaining a peak value of 23.5 U/ml during the first cycle, which was 2.2-fold more than the control (free cells).
Conclusion: We used a basic mass balance analysis to understand the growth of both fractions and the dynamics of amylase production in free cells and cells immobilized in Ca-alginate beads. The production of alpha-amylase in immobilized cells results in enhanced volumetric activities during fermentation. Notable advantages of this technique encompass prolonged stability, reuse and recycling, and the potential for adaptable regeneration.
2. Ikram -ul-Haq, Hamad A, Qadeer MA, Iqbal J. Pearl millet, a source of alpha amylase production by Bacillus licheniformis. Bioresour Technol 2005; 96: 1201-1204.
3. Guo J, Chen C, Chen W, Jiang J, Chen B, Zheng F. Effective immobilization of Bacillus subtilis in chitosan-sodium alginate composite carrier for ammonia removal from anaerobically digested swine wastewater. Chemosphere 2021; 284: 131266.
4. Sharma A, Satyanarayana T. Production of acid-stable and high-maltose-forming α-amylase of Bacillus acidicola by solid-state fermentation and immobilized cells and its applicability in baking. Appl Biochem Biotechnol 2012; 168: 1025-1034.
5. Kumaravel V, Gopal SR. Immobilization of Bacillus amyloliquefaciens MBL27 cells for enhanced antimicrobial protein production using calcium alginate beads. Biotechnol Appl Biochem 2010; 57: 97-103.
6. Shahhoseini M, Ziaee AA, Pourbabai AA, Ghaemi N, Declerck N. A natural variant of Bacillus licheniformis α‐amylase isolated from flour mill wastewaters sheds light on the origin of high thermostability. J Appl Microbiol 2005; 98: 24-32.
7. Sekoai PT, Awosusi AA, Yoro KO, Singo M, Oloye O, Ayeni AO, et al. Microbial cell immobilization in biohydrogen production: a short overview. Crit Rev Biotechnol 2018; 38: 157-171.
8. Blandino A, Macias M, Cantero D. Calcium alginate gel as encapsulation matrix for coimmobilized enzyme systems. Appl Biochem Biotechnol 2003; 110: 53-60.
9. Bano S, Qader SA, Aman A, Azhar A. Partial purification and some properties of-amylase from Bacillus subtilis KIBGE-HAS. Indian J Biochem Biophys 2009; 46: 401-404.
10. Tanaka A, Hoshino E. Calcium-binding parameter of Bacillus amyloliquefaciens α-amylase determined by inactivation kinetics. Biochem J 2002; 364: 635-639.
11. de Alteriis E, Silvestro G, Poletto M, Romano V, Capitanio D, Compagno C, et al. Kluyveromyces lactis cells entrapped in Ca-alginate beads for the continuous production of a heterologous glucoamylase. J Biotechnol 2004; 109: 83-92.
12. Chia SM, Wan AC, Quek CH, Mao HQ, Xu X, Shen L, et al. Multi-layered microcapsules for cell encapsulation. Biomaterials 2002; 23: 849-856.
13. Adinarayana K, Jyothi B, Ellaiah P. Production of alkaline protease with immobilized cells of Bacillus subtilis PE-11 in various matrices by entrapment technique. AAPS PharmSciTech 2005; 6(3): E391-E397.
14. Le‐Tien C, Millette M, Lacroix M, Mateescu MA. Modified alginate matrices for the immobilization of bioactive agents. Biotechnol Appl Biochem 2004; 39: 189-198.
15. Pucci EFQ, Buffo MM, Del Bianco Sousa M, Tardioli PW, Badino AC. An innovative multi-enzymatic system for gluconic acid production from starch using Aspergillus niger whole-cells. Enzyme Microb Technol 2023; 171: 110309.
16. El-Banna TE, Abd-Aziz AA, Abou-Dobara MI, Ibrahim RI. Production and immobilization of alpha-amylase from Bacillus subtilis. Pak J Biol Sci 2007; 10: 2039-2047.
17. Martínez D, Menéndez C, Echemendia FM, Pérez ER, Trujillo LE, Sobrino A, et al. Complete sucrose hydrolysis by heat-killed recombinant Pichia pastoris cells entrapped in calcium alginate. Microb Cell Fact 2014; 13: 87.
18. Ahmed SA. Invertase production by Bacillus macerans immobilized on calcium alginate beads. J Appl Sci Res 2008; 4: 1777-1781.
19. Oliveira AF, Bastos RG, de la Torre LG. Bacillus subtilis immobilization in alginate microfluidic-based microparticles aiming to improve lipase productivity. Biochem Eng J 2019; 143: 110-120.
20. Mrudula S, Shyam N. Immobilization of Bacillus megaterium MTCC 2444 by Ca-alginate entrapment method for enhanced alkaline protease production. Brazil Arch Biol Technol 2012; 55: 135-144.
21. Potumarthi R, Subhakar Ch, Pavani A, Jetty A. Evaluation of various parameters of calcium-alginate immobilization method for enhanced alkaline protease production by Bacillus licheniformis NCIM-2042 using statistical methods. Bioresour Technol 2008; 99: 1776-1786.
22. Seifan M, Khajeh Samani A, Hewitt S, Berenjian A. The effect of cell immobilization by calcium alginate on bacterially induced calcium carbonate precipitation. Fermentation 2017; 3: 57.
23. Konsoula Z, Liakopoulou-Kyriakides M. Thermostable α-amylase production by Bacillus subtilis entrapped in calcium alginate gel capsules. Enzyme Microb Technol 2006; 39: 690-696.
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Issue | Vol 16 No 6 (2024) | |
Section | Original Article(s) | |
DOI | https://doi.org/10.18502/ijm.v16i6.17261 | |
Keywords | ||
Enzyme; Bacterial proteins; Alpha-amylase; Bacillus licheniformis; Immobilization; Entrapment; Alginate |
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