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Original Articles

Detergent-compatible, organic solvent-tolerant alkaline protease from Bacillus circulans MTCC 7942: Purification and characterization

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References

  • Gupta, R.; Beg, Q.; Lorenz, P. Bacterial Alkaline Protease: Molecular Approaches and Industrial Applications. Appl. Microbial. Biotechnol. 2002, 59, 15–32.
  • Rao, M.B.; Tanksale, A.M.; Ghatge, M.S.; Deshpande, V.V. Molecular and Biotechnological Aspects of Microbial Proteases. Microbial. Mol. Biol. Rev. 1998, 62, 597–635.
  • Sumantha, A.; Larroche, C.; Pandey, A. Microbiology and Industrial Biotechnology of Food-Grade Proteases: A Perspective. Food Technol. Biotechnol. 2006, 44, 211–220.
  • Turk, B. Targeting Proteases: Successes, Failures and Future Prospects. Nat. Rev. Drug Discov. 2006, 5, 785–798.
  • Bordusa, F. Proteases in Organic Synthesis. Chem. Rev. 2002, 102, 4817–4867.
  • Li, Q.; Yi, L.; Marek, P.; Iverson, B.L. Commercial Proteases: Present and Future. FEBS Lett. 2013, 587, 1155–1163.
  • Klibanov, A.M. Improving Enzymes by Using Them in Organic Solvents. Nature 2001, 409, 241–246.
  • Kumar, D.; Bhalla, T.C. Microbial Proteases in Peptide Synthesis: Approaches and Applications. Appl. Microbiol. Biotechnol. 2005, 68, 726–736.
  • Yang, L.; Dordick, J.S.; Garde, S. Hydration of Enzyme in Nonaqueous Media is Consistent with Solvent Dependence of its Activity. J. Biophys. 2004, 87, 812–821.
  • Davis, B.G. Chemical Modification of Biocatalysts. Curr. Opin. Biotechnol. 2003, 14, 379–386.
  • Wolff, A.M.; Showell, M.S.; Venegas, M.G.; Barnett, B.L.; Wertz, W.C. Laundry Performance of Subtilisin Proteases. Adv. Exp. Med. Biol. 1996, 379, 113–120.
  • Noritomi, H.; Suzuki, K.; Kikuta, M.; Kato, S. Catalytic Activity of α-Chymotrypsin in Enzymatic Peptide Synthesis in Ionic Liquids. Biochem. Eng. J. 2009, 47, 27–30.
  • Habulin, M.; Primožič, M.; Knez, Z. Stability of Proteinase From Carica papaya Latex in Dense Gases. J. Supercrit. Fluids. 2005, 33, 27–34.
  • Ru, M.T.; Hirokane, S.Y.; Lo, A.S.; Dordick, J.S.; Reimer, J.A.; Clark, D.S. On the Salt-Induced Activation of Lyophilized Enzymes in Organic Solvents: Effect of Salt Kosmotropicity on Enzyme Activity. J. Am. Chem. Soc. 2000, 122, 1565–1571.
  • Ogino, H.; Yasui, K.K.; Shiotani, T.; Ishihara, T.; Ishikawa, H. Organic Solvent-Tolerant Bacterium Which Secretes an Organic Solvent-Stable Proteolytic Enzyme. Appl. Environ. Microbiol. 1995, 61, 4258–4262.
  • Patil, U.; Chaudhari, A. Purification and Characterization of Solvent-Tolerant, Thermostable, Alkaline Metalloprotease From Alkalophilic Pseudomonas aeruginosa MTCC 7926. J. Chem. Technol. Biotechnol. 2009, 84, 1255–1262.
  • Tang, X.Y.; Wu, B.; Ying, H.J.; He, B.F. Biochemical Properties and Potential Applications of a Solvent-Stable Protease From the High Yield Protease Producer Pseudomonas aeruginosa PT121. Appl. Biochem. Biotechnol. 2010, 160, 1017–1031.
  • Rai, S.K.; Mukherjee, A.K. Ecological Significance and Some Biotechnological Application of an Organic-Solvent Stable Alkaline Serine Protease From Bacillus subtilis strain DM-04. Biores. Technol. 2009, 100, 2642–2645.
  • Jellouli, K.; Ghorbel-Bellaaj, O.; Ayed, H.B.; Manni, L.; Agrebi, R.; Nasri, M. Alkaline-Protease From Bacillus licheniformis MP1: Purification, Characterization and Potential Application as Detergent Additive and for Shrimp Waste Deproteinization. Proc. Biochem. 2011, 46, 1248–1256.
  • Patil, U.; Chaudhari, A. Production of Alkaline Protease by Solvent-Tolerant Alkaliphilic Bacillus circulans MTCC 7942 Isolated From Hydrocarbon Contaminated Habitat: Process Parameters Optimization. ISRN Biochem. doi:http://dx.doi.org/10.1155/2013/942590, 2013.
  • Bose, A.; Chawdhary, V.; Keharia, H.; Subramanian, R.B. Production and Characterization of a Solvent-Tolerant Protease From a Novel Marine Isolate Bacillus tequilensis P15. Ann. Microbiol. 2014, 64, 343–354.
  • Nakanishi, T.; Matsumura, Y.; Minamiura, N.; Yamamoto, T. Action and Specificity of Streptomyes Alkalophilic Proteinase. Agri. Biol. Chem. 1974, 38, 37–44.
  • Pace, C.N.; Vajdos, F.; Fee, L.; Grimsley, G.; Gray, T. How to Measure and Predict the Molar Absorption Coefficient of a Protein. Prot. Sci. 1995, 4, 2411–2423.
  • Laemmli, U.K. Cleavage of Structural Proteins During Assembly of Head of Bacteriophage T4. Nature (London) 1970, 227, 680–687.
  • Sundararajan, S.; Kannan, C.N.; Chittibabu, S. Alkaline Protease From Bacillus cereus VITSN04: Potential Application as a Dehairing Agent. J. Biosci. Bioeng. 2011, 111, 128–133.
  • Maruthiah, T.; Esakkiraj, P.; Prabakaran, G.; Palavesam, A.; Immanuel, G. Purification and Characterization of Moderately Halophilic Alkaline Serine Protease From Marine Bacillus subtilis AP-MSU6. Biocat. Agr. Biotechnol. 2013, 2, 116–119.
  • Subba Rao, C.; Sathish, T.; Ravichandra, P.; Prakasham, R.S. Characterization of Thermo- and Detergent Stable Serine Protease From Isolated Bacillus circulans and Evaluation of Eco-Friendly Applications. Proc. Biochem. 2009, 44, 262–268.
  • Benkiar, A.; Nadia, Z.J.; Badis, A.; Rebzani, F.; Soraya, B.T.; Rekik, H.; Naili, B.; Ferradji, F.Z.; Bejar, S.; Jaouadi, B. Biochemical and Molecular Characterization of a Thermo- and Detergent-Stable Alkaline Serine Keratinolytic Protease From Bacillus circulans Strain DZ100 for Detergent Formulations and Feather-Biodegradation Process. Int. Biodeter. Biodegr. 2013, 83, 129–138.
  • Anbu, P. Characterization of Solvent Stable Extracellular Protease From Bacillus koreensis (BK-P21A). Int. J. Biol. Macromol. 2013, 56, 162–168.
  • Vijayaraghavan, P.; Lazarus, S.; Vincent, S.G.P. De-Hairing Protease Production by an Isolated Bacillus cereus Strain AT Under Solid-State Fermentation Using Cow Dung: Biosynthesis and Properties. Saudi J. Biol. Sci. 2014, 21, 27–34.
  • Joshi, S.; Satyanarayana, T. Characteristics and Applications of a Recombinant Alkaline Serine Protease from a Novel Bacterium Bacillus lehensis. Biores. Technol. 2013, 131, 76–85.
  • Annamalai, N.; Rajeswari, M.V.; Balasubramanian, T. Extraction, Purification and Application of Thermostable and Halostable Alkaline Protease From Bacillus alveayuensis CAS 5 Using Marine Wastes. Food Bioprod. Processing. doi:10.1016/j.fbp.2013.08.009, 2013.
  • Banerjee, U.C.; Sani, R.K.; Azmi, W.; Soni, R. Thermostable Alkaline Protease From Bacillus brevis and Its Characterization as a Laundry Detergent Additive. Proc. Biochem. 1999, 35, 213–219.
  • Genckal, H.; Tari, C. Alkaline Protease Production From Alkalophilic Bacillus sp. Isolated From Natural Habitats. Enzyme Microbial. Technol. 2006, 39, 703–710.
  • Annamalai, N.; Rajeswari, M.V.; Sahu, S.K.; Balasubramanian, T. Purification and Characterization of Solvent Stable, Alkaline Protease From Bacillus firmus CAS 7 by Microbial Conversion of Marine Wastes and Molecular Mechanism Underlying Solvent Stability. Proc. Biochem. 2014, 49, 1012–1019.
  • Reddy, L.V.A.; Wee, Y.J.; Yun, J.S.; Ryu, H.W. Optimization of Alkaline Protease Production by Batch Culture of Bacillus sp. RKY3 Through Plackett–Burman and Response Surface Methodological Approaches. Biores. Technol. 2008, 99, 2242–2249.
  • Yang, J.K.; Shih, I.L.; Tzeng, Y.M.; Wang, S.L. Production and Purification of Protease From a Bacillus subtilis That Can Deproteinize Crustacean Waste. Enzyme Microb. Technol. 2000, 26, 406–411.
  • Bajaj, B.K.; Sharma, N.; Singh, S. Enhanced Production of Fibrinolytic Protease from Bacillus cereus NS-2 Using Cotton Seed Cake as Nitrogen Source. Biocatal. Agric. Biotechnol. 2013, 2, 204–209.
  • Lang, S.; Wullbrandt, D. Rhamnose Lipids–Biosynthesis, Microbial Production and Application Potential. Appl. Microbiol. Biotechnol. 1999, 51, 22–32.
  • Rai, S.K.; Mukherjee, A.K. Statistical Optimization of Production, Purification and Industrial Application of a Laundry Detergent and Organic Solvent-Stable Subtilisin-Like Serine Protease (Alzwiprase) From Bacillus subtilis DM-04. Biochem. Eng. J. 2010, 48, 173–180.
  • Adinarayana, K.; Ellaiah, P.; SivaPrasad, D. Purification and Partial Characterization of Thermostable Serine Alkaline Protease From a Newly Isolated Bacillus subtilis PE-11. AAPS Pharm. Sci. Tech. 2003, 4, 440–448.
  • Baehaki, A.; Suhartono, M.T.; Sukarno, S.D.; Sitanggnag, A.B.; Setyahadi, S.; Meinhardt, F. Purification and Characterization of Collagenase From Bacillus licheniformis F11.4. African J. Microbiol. Res. 2012, 6, 2373–2379.
  • Raval, V.H.; Pillai, S.; Rawal, C.M.; Singh, S.P. Biochemical and Structural Characterization of a Detergent-Stable Serine Alkaline Protease From Seawater Haloalkaliphilic Bacteria. Proc. Biochem. 2014, 49, 955–962.
  • Kazan, D.; Denizci, A.A.; Kerimak Oner, M.N.; Erarslan, A. Purification and Charac-terization of a Serine Alkaline Protease From Bacillus clausii GMBAE 42. J. Ind. Microbiol. Biotechnol. 2005, 32, 335–344.
  • Hun, C.J.; Rahman, R.N.Z.A.; Salleh, A.B.; Basri, M. A Newly Isolated Organic Solvent Tolerant Bacillus sphaericus 205y Producing Organic Solvent-Stable Lipase. Biochem. Eng. J. 2003, 15, 147–151.
  • Ghorbel, B.; Sellami-Kamoun, A.; Nasri, M. Stability Studies of Protease From Bacillus cereus BG1. Enzyme Microb. Technol. 2003, 32, 512–518.
  • Rahman, R.N.Z.A.; Mahamad, S.; Salleh, A.B.; Basri, M. A New Organic Solvent Tolerant Protease From Bacillus pumilis 115b. J. Ind. Microbiol. Biotechnol. 2007, 34, 509–517.
  • Fang, Y.; Liu, S.; Wang, S.; Lv, M.M. Isolation and Screening of a Novel Extracellular Organic Solvent-Stable Protease Producer. Biochem. Eng. J. 2009, 43, 212–215.
  • Karan, R.; Khare, S.K. Stability of Haloalkaliphilic Geomicrobium sp. Protease Modulated by Salt. Biochem. Moscow 2011, 76, 686–693.
  • Doukyua, N.; Ogino, H. Organic Solvent-Tolerant Enzymes. Biochem. Eng. J. 2010, 48, 270–282.
  • Nakiboglu, N.; Toscali, D.; Nisli, G. A Novel Silver Recovery Method From Waste Photographic Films With NaOH Stripping. Turk J. Chem. 2003, 27, 127–133.
  • Masui, A.; Yasuda, M.; Fujiwara, N.; Ishikawa, H. Enzymatic Hydrolysis of Gelatin Layer on Used Lith Film Using Thermostable Alkaline Protease for the Recovery of Silver and PET Film. Biotechnol. Prog. 2004, 20, 1267–1269.
  • Pathak, A.P.; Deshmukh, K.B. Alkaline Protease Production, Extraction and Characterization From Alkaliphilic Bacillus licheniformis KBDL4: A Lonar Soda Lake Isolate. Indian J. Exp. Biol. 2012, 50(8), 569–576.
  • Haddar, A.; Agrebi, R.; Bougatef, A.; Hmidet, N.; Sellami-Kamoun, A.; Nasri, M. Two Detergent Stable Alkaline Serine-Proteases From Bacillus mojavensis A21: Purification, Characterization and Potential Application as a Laundry Detergent Additive. Biores. Technol. 2009, 100, 3366–3373.
  • Niyonzima, F.N.; More, S. Purification and Properties of Detergent-Compatible Extracellular Alkaline Protease From Scopulariopsis spp. Preparative Biochem Biotechnol. 2014, 44, 738–759.

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