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Thermostable alkaline protease production from Bacillus...
Abstract: Proteases due to their wide range of applications in biotechnological processes have been the focus of intense research for many decades. However, from industrial application view point most of the available proteases lack desired properties; therefore, search for better and efficient thermostable alkaline proteases are always on. Bacillus pumilus D-6, isolated from dairy plant soil sample, in the current study produced protease which showed activity and stability at high alkaline pH (8-12) and high temperatures (70˚C-100˚C). Enzyme activity remained unfazed even in presence of inhibitors like Pb2+ and Hg2+ which are considered universal inhibitors of enzyme activity. Besides, the organism successfully utilized crude agriculture based substrates as carbon and nitrogen source and produced substantial enzyme titre. [1]Jaouadi, B., Ellouz-Chaabouni, S., Ali, M.B., Messaoud, E.B., Naili, B., Dhouib, A. and Bejar, S. (2009) Excellent laundry detergent compatibility and high dehairing ability of the Bacillus pumilus CBS alkaline proteinase (SAPB). Biotechnology and Bioprocess Engineering, 14, 503-512.doi:10.1007/s12257-008-0244-8 [2]Rai, S.K., Roy, J.K. and Mukherjee, A.K. (2010) Characterization of a detergent-stable alkaline protease from a novel thermophilic strain Paenibacillus tezpurensis sp. nov. AS-S24-II. Applied Microbiology and Biotechnology, 85, 1437-1450. doi:10.1007/s00253-009-2145-y [3]Kazan, D., Denizci, A.A., Oner, M.N. and Erarslan, A. (2005) Purification and characterization of a serine alkane protease from Bacillus clausii GMBAE 42. Journal of Industrial Microbiology and Biotechnology, 32, 335-344. doi:10.1007/s10295-005-0260-z [4]Bajaj, B.K. and Sharma, P. (2011) An alkali-thermotolerant extracellular protease from a newly isolated Strepmyces sp. DP2. New Biotechnology, 28, 725-732.doi:10.1016/j.nbt.2011.01.001 [5]Wan, M.Y., Wang, H.Y., Zhang, Y.Z. and Feng, H. (2009) Substrate specificity and thermostability of the dehairing alkaline protease from Bacillus pumilus. Applied Bioemistry Biotechnology, 159, 394-403.doi:10.1007/s12010-008-8497-4 [6]Rahman, R.N., Mahamad, S., Salleh, A.B. and Basri, M.A. (2007) A new organic solvent tolerant protease from Bacillus pumilus 115b. Journal of Industrial Microbiology and Biotechnology, 34, 509-517.doi:10.1007/s10295-007-0222-8 [7]Papamichael, E.M., Theodorou, L.G., Perisynakis, A. and Drainas, C. (2010) Purification and characterization of a novel extracellular protease from a halo-alkaliphilic Bacillus sp. 17N-1, active in polar organic solvents. Environmental Technology, 31, 1073-1082.doi:10.1080/09593331003664136 [8]Bajaj, B.K. and Singh, N.P. (2010) Production of xylanase from an alkalitolerant Streptomyces sp. 7b under solid-state fermentation, its purification and characterization. Applied Biochemistry Biotechnology, 162, 1804-1818. doi:10.1007/s12010-010-8960-x [9]Bajaj, B.K. and Abbass, M. (2011) Studies on an alkali-thermostable xylanase from Aspergillus fumigatus MA28. 3Biotech, 1, 161-171. [10]Tremacoldi, C.R., Monti, R., Selis-tre-De-Araujo, H.S. and Carmona, E.C. (2007) Purification and properties of an alkaline protease of Aspergillus clavatus. World Journal of Microbiology and Biotechnology, 23, 295-299.doi:10.1007/s11274-006-9211-8 [11]Haddar, A., Hmidet, N., Ghorbel-Bellaaj, O., Fakhfakh- Zouari, N., Sella-mi-Kamoun, A. and Nasri, M. (2011) Alkaline proteases produced by Bacillus licheniformis RP1 grown on shrimp wastes: Application in chitin extraction, chicken feather degradation and as a dehairing agent. Biotechnology and Bioprocess Engineering, 16, 669-678. doi:10.1007/s12257-010-0410-7 [12]Patel, R.K., Dodia, M.S., Joshi, R.H. and Singh, S.P. (2006) Production of extracellular halo-alkaline protease from a newly isolated haloalkaliphilic Bacillus sp. Isolated from seawater in western India. World Journal of Microbiology and Biotechnology, 22, 375-382.doi:10.1007/s11274-005-9044-x [13]Moradian, F., Khajeh, K., Naderi-Manesh, H. and Sadeghizadeh, M. (2009) Isolation, purification and characterization of a surfactants, laundry detergents and organic solvents resistant alkaline protease from Bacillus sp. HR-08. Applied Biochemistry Biotechnology, 159, 33-45.doi:10.1007/s12010-008-8402-1 [14]Lowry, O.H., Rosenbrough, N.J., Farr, A.L. and Randall, R.J. (1951) Protein measurement with the folin-phenol reagent. Journal of Biological Chemistry, 193, 265-275. [15]Hmidet, N., El Hadj Ali, N., Zouari-Fakhfakh, N., Haddar, A., Nasri, M. and Sellemi-Kamoun, A. (2010) Chicken feathers: A complex substrate for the co-production of α-amylase and proteases by B. licheniformis NH1. Journal of Industrial Microbiology and Biotechnology, 37, 983- 990. doi:10.1007/s10295-010-0792-8 [16]Pillai, P., Mandge, S. and Archana, G. (2011) Statistical optimization of production and tannery applications of a keratinolytic serine protease from Bacillus subtilis P13. Process Biochemistry, 46, 1110-1117. doi:10.1016/j.procbio.2011.01.030 [17]Quadar, S.A., Shireen, E., Iqbal, S. and Anwar, A. (2009) Optimization of protease production from newly isolated strain of Bacillus sp. PCSIR EA-3. Indian Journal Biotechnology, 8, 286-290. [18]Kumar, R., Balaji, S., Uma, T.S., Mandal, A.B. and Shegal, P.K. (2010) Optimization of influential parameters for extracellular keratinase production by Bacillus subtilis (MTCC9102) in solid state fermentation using horn Meal—A biowaste management. Applied Biochemistry Biotechnology, 160, 30-39.doi:10.1007/s12010-008-8452-4 [19]Lazim, H., Mankai, H., Slama, N., Barkallah, I. and Limam, F. (2009) Production and optimization of thermophilic alkaline protease in solid-state fermentation by Streptomyces sp. CN902. Journal of Industrial Microbiology and Biotechnology, 36, 531-537. doi:10.1007/s10295-008-0523-6 [20]Vishalakshi, N., Lingappa, K., Amena, S., Prabakar, M. and Dayanad, A. (2009) Production of alkaline protease from Streptomyces gulbargensis and its application in removal of blood strains. Indian Journal Biotechnology, 8, 280-285. [21]Manni, L., Jellouli, K., Ghorbel-Bellaaj, O., Agrebi, R., Haddar, A., Sellami-Kamoun, A. and Nasri, M. (2010) An oxidantand solvent-stable protease produced by Bacillus cereus SV1: Application in the deproteinization of shrimp wastes and as a laundry detergent additive. Applied Biochemistry Biotechnology, 160, 2308-2321.doi:10.1007/s12010-009-8703-z [22]Chu, W-H. (2007) Optimization of extracellular alkaline protease production from species of Bacillus. Journal of Industrial Microbiology and Biotechnology, 34, 241-245.doi:10.1007/s10295-006-0192-2 [23]Hadj-Ali, N.E., Agrebi, R., Ghorbel-Frikha, B., Sellami- Kamoun, A., Kanoun, S. and Nasri, M. (2007) Biochemical and molecular characterization of a detergent stable alkaline serine-protease from a newly isolated Bacillus licheniformis NH1. Enzyme and Microbial Technology, 40, 515-523. doi:10.1016/j.enzmictec.2006.05.007 [24]Zhu, W., Cha, D., Cheng, G., Peng, Q. and Shen, P. (2007) Purification and characterization of a thermostable protease from a newly isolated Geobacillus sp. YMTC 1049. Enzyme and Microbial Technology, 40, 1592-1597.doi:10.1016/j.enzmictec.2006.11.007 [25]Morikawa, M., Iwaza, Y., Rashid, N., Hoaki, T. and Imanaka, T. (1994) Purification and characterization of a thermostable thiol protease from a newly isolated hyper-thermophilic Pyrococcus sp. Applied and Environmental Microbiology, 60, 4559-4566. [26]Joshi, S. and Satyanarayana T. (2013) Characteristics and applications of a recombinant alkaline serine protease from a novel bacterium Bacillus lehensis. Bioresource Technology, 131, 76-85. doi:10.1016/j.biortech.2012.12.124 [27]Palmer, T. (2001) The chemical nature of enzyme catalysis, enzymes: Biochemistry, biotechnology and clinical chemistry. Horwood Publishing, Westergate.