Screening and Characterization of Tyrosinase Producing Bacteria from Sauce Prepared Using Rohu and Sardine by Enzymatic and Fermentative Method


78 / 117

Authors

  • G. S. Siddegowda "Maharani`s Science College for Women", Mysuru-570 005, India
  • Shubha Gopal "University of Mysore", Mysuru, 570 006, India
  • Bhaskar Narayan "CSIR-Central Food Technological Research Institute", Mysuru 570 020 India Presently Advisor, "FSSAI", New Delhi, India

https://doi.org/10.56093/ft.v60i2.123014

Keywords:

Rohu, sardine, fish sauce, tyrosinase producing bacteria, proteolytic, Bacillus aquimaris

Abstract

Fish sauce was prepared from Rohu (Labeo rohita) and Sardine (Sardinella longiceps) by enzymatic and fermentative method using papain and Pediococcus pentosaceus FSBP4-40. Total tyrosinase producing bacteria counts of enzymatically and fermentatively produced rohu sauce samples were found to be in the range of 1.70 to 3.65 log cfu/ml and 1.95 to 3.64 log cfu/ml respectively. The enzyme treated and LAB fermented sardine sauce samples were found to be in the range of 2.00 to 3.28 and 1.78 to 3.63 log cfu/ml during the storage period of 120 days. Over 60 brown to black coloured colonies on tyrosinase screening medium were screened for the Gram‘s reaction, cell morphology, proteolytic property catalase and oxidase activities. Of these, 5 isolates coded as PTRS-8, PTSS-3, LTRS-11, LTRS-18 and LTSS-5 were characterized by biochemical and molecular methods. The isolate PTRS-8 (Bacillus endophyticus) exhibited excellent antibacterial activity against Listeria monocytogenes Scott A and the isolate PTSS-3 (Bacillus aquimaris) showed higher proteolytic activity. All the isolates were able to produce alkaline phosphatase and naphthol-AS-B1- phosphohydrolase, esterase (C4), esterase lipase (C8) and α-chymotrypsin. The isolate PTSS-3 exhibited excellent leucine arylamidase activity. The melanogenic nature of the isolates is one of the probable properties responsible for the development of color in fish sauce.

Downloads

Download data is not yet available.

References

Bergey, D.H., Holt, J.G., Kreig, N.R. and Sneath, P.H.A. (2002) Bergey`s manual of determinative bacteriology. Springer-Verlag, New York

Bris, C.L., Cudennec, B., Dhulster, P., Drider, D., Duflos, G. and Grard, T. (2016) Melanosis in Penaeus monodon: Involvement of the Laccase-like Activity of Hemocyanin. J. Agric. Food Chem 64 (3): 663-670

Byun, H-D., Hyun, S.B., Bae, S. Han, J-M. and Hyun, C-G. (2020) Bacillus subtilis JNUCC isolated from galchisokjeot: draft genome sequence and α-glucosidase and tyrosinase inhibitory activities, J. Pure Appl. Microbiol. 14(1):189-193

Cheng, Y., Liu, Y., Huang, J., LI, K., Xian, Y., Zhang, W. and Jin, L. (2009) Amperometric tyrosinase biosensor based on Fe3O4 nanoparticles-coated carbon nanotubes nanocomposite for rapid detection of coliforms. Electrochim. Acta. 54: 2588-2594

Dalfard, A.B., Khajeh, K., Soudi, M.R., Naderi-Manesh, H., Ranjbar, B. and Sajedi, R.H. (2006) Isolation and biochemical characterization of laccase and tyrosinase activities in a novel melanogenic soil bacterium. Enzyme Microb. Technol. 39: 1409-1416

Danial, N.E. and Al-Bishri W.M. (2018) Optimization of medium composition for increased production of tyrosinase enzyme in recombinant Bacillus megaterium. Res. J. Pharm. Biol. Chem. Sci. 9(1): 480-486

El-Enshasy, H.A. and Elsayed, E.A. (2017) Kinetics of cell growth and invertase production by the biotherapeutic yeast, Saccharomyces boulardii. J Sci. Ind. Res. 76(8):477-484

Elsayed, E.A. and Danial, E.N. (2018) Isolation, identification and medium optimization for tyrosinase production by a newly isolated Bacillus subtilis NA2 strain. J. Appl. Pharm. Sci. 8(9): 093-101

Geis, A.J., Singh, R. and Teuber, M.J. (1983) Potential of lactic streptococci to produce bacteriocin. Appl. Environ. Microbiol. 45: 205-211

Greggio, E., Bergantino, E., Carter, D., Ahmad, R., Costin, G.E., Hearing, V.J., Claromon, J., Singleton, A., Eerola, J., Hellstrom, O., Tienari, P.T., Miller, D.W., Beilina, A., Bubacco, L. and Cookson, M.R. (2005). Tyrosinase exacerbates dopamine toxicity but is not genetically associated with Parkinson`s disease. J. Neurochem. 93: 246-256

Halami, P.M., Ramesh, A. and Chandrashekhar, A. (2005) Fermenting cucumber, a potential source for the isolation of pediocin-type Bacteriocin producer. World J. Microbiol. Biotechnol. 21: 1351-1358

Halaouili, S., Asther, M., Sigoillot, J.C., Hamdi, M. and Lomascolo, A. (2006) Fungal tyrosinase: new prospects in molecular characteristics, bioengineering and biotechnological applications. J. Appl. Microbiol. 100: 219-232

Holt, J.G., Krieg, N.R., Sneath, P.H.A., Staley, J.T. and Williams, S.T. (1994). Bergey`s manual of determinative bacteriology, pp. 559-564. 9th edn.William and Wikkins, MD

https://sciencebusiness.net/news/68164/EMPA%3A-Bacterial-tyrosinase-for-biomaterials: EMPA, Technology offer, Bacterial Tyrosinase for Biomaterials

Hwanhlem, N., Buradaleng, S., Wattanachant, S., Benjakul, S., Tani, A. and Maneerat, S. (2011) Isolation and screening of lactic acid bacteria from Thai traditional fermented fish (Plasom) and production of Plasom from selected strains. Food Control. 22: 401-407

Jini, R., Swapna, H.C., Amit Kumar Rai., Vrinda, R., Halami P.M., Sachindra, N.M. and Bhaskar, N. (2011). Isolation and characterization of potential lactic acid bacteria (LAB) from freshwater fish processing wastes for application in fermentative utilization of fish processing waste. Braz. J. Microbiol. 42: 1516-1525

Jones, S.E., and Lock, M.A. (1989). Hydrolytic extracellular enzyme activity in heterotrophic biofilms from contrasting rivers. Freshwater Biol. 22: 289–296

Jordan, A.M., Khan, T.H., Malkin, H., Osborn, H.M., Photion, A. and Riley, P.A. (2001) Melanocyte-directed enzyme producing therapy (MDEPT). Development of second generation prodrugs for targeted treatment of malignant melanoma. Bioorg. Med. Chem. 9: 1549-1558

Lee, K.W., Park, J.Y., Sa, H.D., Jeong, J.H., Jin, D.E., Heo, H.J., and Kim, J.H. (2014) Probiotics properties of Pediococcus strains isolated from jeotgals, salted and fermented Korean sea-food. Anaerobe. 28: 199–206

Liu, N., Zhang, T., Wang, Y.J., Haung, Y.P., Ou, J.H. and Shen, P.A. (2004) A heat inducible tyrosinase with distinct properties from Bacillus thuringiensis. Lett. Appl. Microbiol. 39: 407-412

Mc Mahon, A.M., Doyle, E.M., Brooks, S. and O`Connor, K.E. (2007) Biochemical characterization of the coexisting tyrosinase and laccase in the soil bacterium Pseudomomas putida F6. Enzyme Microb. Technol. 40: 1435-1441

Metwally, M. and El-Shora, H.M. (2008) Use of tyrosinase from Bacillus thuringiensis for the decontamination of water polluted with phenols. Biotechnol. 7: 305-310

Min, K. and Yoo, Y.J. (2009) Amperometric detection of dopamine based on tyrosinase-SWNTs-Ppy composite electrode. Talanta. 80: 1007-1011

Mora, D., Fortina, M.G., Parini, C., Daffonchio, D. and Manachini, P.L. (2000) Genomic subpopulations within the species Pediococcus acidilactici detected by multilocus typing analysis: relationship between pediocin AcHPA-1 producing and non-producing strains. Microbiol. 146: 2027-2038

Sambrook, J. and Russell, D.W. (2001) Molecular cloning- A laboratory manual, 3rd ed. Cold Spring Harbor Laboratory Press, New York, USA

Sendovoski, M., Kanteev, M., Ben-Yosef, V.S., Adir, N. and Fishman, A. (2011) First structures of an active bacterial tyrosinase reveal copper plasticity. J. Mol. Biol. 405: 227-237

Shuster, V. and Fishman, A. (2009) Isolation, cloning and characterization of a tyrosinase with improved activity in organic solvents from Bacillus megaterium. J. Mol. Microbiol. Biotechnol. 17: 188-200

Siddegowda, G.S., Bhaskar, N. and Shubha Gopal. (2017) Fermentative properties of proteolytic Pediococcus strains isolated from salt fermented fish hydrolysate prepared using freshwater fish rohu (Labeo rohita). J. Aquat. Food Prod. Technol. 26(3): 341-355

Subhash, G.S and Kulkarni S.W. (2015) Isolation and characterization of tyrosinase producing Streptomyces luteogriseus. World J. Pharm. Res. 4(4): 1385-1395

Surwase, S.N. and Jadhav, J.P. (2010) Bioconversion of L-tyrosine to L-DOPA by a novel bacterium Bacillus sp. JPJ. Amino acids

Thalmann, C.R. and Lotzbeyer, T. (2002) Enzymatic cross-linking of proteins with tyrosinase. Eur. Food Res. Technol. 214: 276-281

Valipour, E. and Arikan, B. (2015) Optimization of tyrosinase enzyme production from native Bacillus sp. MV29 isolate. J. Appl. Biol. Sci. 9(2): 77-82

Valipour, E. and Arikan, B. (2016) Increased production of tyrosinase from Bacillus megaterium strain M36 by the response surface methods. Arch. Biol. Sci. 68(3): 659-668

Xu, D.Y., Chen, J.Y. and Yang, Z. (2012) Use of cross-linked tyrosinase aggregates as catalyst for synthesis of L-DOPA. Biochem. Eng. J. 63: 88-94

Submitted

2022-04-04

Published

2023-04-30

How to Cite

G. S. Siddegowda, Gopal, S., & Narayan, B. (2023). Screening and Characterization of Tyrosinase Producing Bacteria from Sauce Prepared Using Rohu and Sardine by Enzymatic and Fermentative Method. Fishery Technology, 60(2). https://doi.org/10.56093/ft.v60i2.123014
Citation