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Articles; Agriculture and Environmental Biotechnology

Characterization of alkaline protease produced by Streptomyces griseorubens E44G and its possibility for controlling Rhizoctonia root rot disease of corn

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Pages 457-462 | Received 14 Oct 2014, Accepted 02 Feb 2015, Published online: 25 Feb 2015

References

  • Rashad YM, Abdel-Fattah GM, Hafez EE, El-Haddad SA. Diversity among some Egyptian isolates of Rhizoctonia solani based on anastomosis grouping, molecular identification and virulence on common bean. Afr J Microbiol Res. 2012;6(37):6661–6667.
  • Ithurrart ME, Buttner G, Petersen J. Rhizoctonia root rot in sugar beet (Beta vulgaris ssp. altissima) – epidemiological aspects in relation to maize (Ze mays) as a host plant. J Plant Dis Protec. 2004;111:302–312.
  • Arcury TA, Quandt SA. Pesticides at work and at home: exposure of migrant farmworkers. Lancet. 2003;362:2021.
  • Al-Askar AA, Abdul Khair WM, Rashad, YM. In vitro antifungal activity of Streptomyces spororaveus RDS28 against some phytopathogenic fungi. Afr J Agric Res. 2011;6(12):2835–2842.
  • Gnanamanickam SS. Biological control of crop diseases. New York, NY: Marcel Dekker Inc; 2002.
  • Jayamurthy H, Valappil Sajna K, Dastagar SG, Pandey A. Anti-fungal potentials of extracellular metabolites of Western Ghats isolated Streptomyces sp. NII 1006 against moulds and yeasts. Indian J Exp Biol. 2014;52(11):1138–1146.
  • Viterbo A, Inbar J, Hadar Y, Chet I. Plant disease biocontrol and induced resistance via fungal mycoparasites. In: Kubicek CP, Druzhinina IS, editors. Environmental and microbial relationships. Berlin: Springer Verlag; 2007. p. 325–340.
  • Bhaskar N, Sudeepa ES, Rashmi HN, Selvi AT. Partial purification and characterization of protease of Bacillus proteolyticus CFR3001 isolated from fish processing waste and its antibacterial activities. Bioresour Technol. 2007;98:2758–2764.
  • Jellouli K, Bougatef A, Manni L, Agrebi R, Siala R, Younes I, Nasri M. Molecular and biochemical characterization of an extracellular serine-protease from Vibrio metschnikovii. Microbiol Biotechnol. 2009;36:939–948.
  • Deng A, Wu J, Zhang Y, Zhang G, Wen T. Purification and characterization of a surfactant-stable high-alkaline protease from Bacillus sp. B001. Bioresour Technol. 2010;101:7100–7116.
  • Gupta R, Beg QK, Khan S, Chauhan B. An overview on fermentation, downstream processing and properties of microbial alkaline proteases. Appl Microbiol Biotechnol. 2002;60:381–395.
  • Kocher GS, Mishra S. Immobilization of Bacillus circulans MTCC 7906 for enhanced production of alkaline protease under batch and packed bed fermentation conditions. Internet J Microbiol. 2009;7:359–378.
  • Al-Askar AA, Abdulkhair WM, Rashad YM, Hafez EE, Ghoneem KM, Baka ZA. Streptomyces griseorubens E44G: a potent antagonist isolated from soil in Saudi Arabia. J Pure Appl Microbio. 2014;8(Spl. Edn. 2):221–230.
  • Domsch KW, Gams W, Anderson TH. Compendium of soil fungi. London: Academic Press; 1980.
  • Buchanan RE, Gibbons NE. Bergey's Manual of Determinative bacteriology. Baltimore: Williams and Wilkins; 1974.
  • Larsen MD, Kristiansen KR, Hansen TK. Characterization of the proteolytic activity of starter cultures of Penicillium roqueforti for production of blue veined cheeses. Int J Food Microbiol. 1998;43(3):215–221.
  • Tsuchida O, Yamagota Y, Ishizuka J, Arai J, Yamada J, Takeuchi M, Ichishima E. An alkaline protease of an alkalophilic Bacillus sp. Curr Microbiol. 1986;14:7–12.
  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ. Protein measurement with Folin phenol reagent. J Biol Chem. 1951;193:265–275.
  • Tremacoldi CR, Carmona EC. Production of extracellular alkaline proteases by Aspergillus clavatus. World J Microbiol Biotechnol. 2005;21(2):169–172.
  • Bradford MM. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem. 1976;72:248–254.
  • Laemmli UK. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature. 1970;227:680–685.
  • Fguira LF, Fotso S, Ameur-Mehdi RB, Mellouli L, Laatsch H. Purification and structure elucidation of antifungal and antibacterial activities of newly isolated Streptomyces sp. strain US80. Res Microbiol. 2005;156:341–347.
  • Atta HM. An antifungal agent produced by Streptomyces olivaceiscleroticus, AZ-SH514. World Appl Sci J. 2009;6(11):1495–1505.
  • Mukherjee G, Sen SK. Purification, characterization, and antifungal activity of chitinase from Streptomyces venezuelae P10. Curr Microbiol. 2006;53:265–269.
  • Prapagdee B, Kuekulvong C, Mongkolsuk S. Antifungal potential of extracellular metabolites produced by Streptomyces hygroscopicus against phytopathogenic fungi. Int J Boil Sci. 2008;4(5):330–337.
  • Simkhada JR, Mander P, Cho S, Yoo JC. A novel fibrinolytic protease from Streptomyces sp. CS684. Process Biochem. 2010;45:88–93.
  • Manivasagan P, Venkatesan J, Sivakumar K, Kim S. Production, characterization and antioxidant potential of protease from Streptomyces sp. MAB18 using poultry wastes. BioMed Res Int. 2013;2013:496586. doi:10.1155/2013/496586
  • Rifaat HM, El-Said OH, Hassanein SM, Selim SM. Protease activity of some mesophilic streptomycetes isolated from Egyptian habitats. J Cult Collec. 2007;5:16–24.
  • Kang S, Kim I, Rho Y, Lee K. Production dynamics of extracellular proteases accompanying morphological differentiation of Streptomyces albidoflavus SMF301. Microbiology. 1995;141:3095–3103.
  • Lopes A, Coelho R, Meirelles M, Branquinha M, Vermelho A. Extracellular serine-proteinases isolated from Streptomyces alboniger: partial characterisation and effect of aprotinin on cellular structure. Mem Inst Oswaldo Cruz. 1999;94:763–770.
  • Rifaat HM, Hassanein SM, El-Said OH, Saleh SA, Selim MSM. Purification and characterization of extracellular neutral protease from Streptomyces microflavus. Arab J Biotech. 2006;9:51–60.
  • Prasad MP, Rekha S, Arthirajan J. Optimization studies of Protease enzyme in in-vitro conditions from Bacillus licheniformis. Int Res J Biological Sci. 2014;3(2):34–39.
  • Abdelwahed NAM, Danial EN, El-Naggar NE, Mohamed AA. Optimization of alkaline protease production by Streptomyces ambofaciens in free and immobilized form. Am J Biochem Biotechnol. 2014;10(1):1–13.
  • Hatanaka T, Yoshiko Uesugi JA, Iwabuchi M. Purification, characterisation cloning, and sequencing ofmetalloendopeptidase from Streptomycesseptatus TH-2. Arch Biochem Biophys. 2005;434:289–298.
  • Azeredo LA, Freire DM, Soares RM, Leite SG, Coelho RR. Production and partial characterisation of thermophilic proteases from Streptomyces sp. isolated from Brazilian cerrado soil. Enz Microbiol Technol. 2004;34:354–358.
  • Aftab S, Ahmed S, Saeed S, Rasool SA. Screening, isolation and characterization of alkaline protease producing bacteria from soil. Pak J Biol Sci. 2006;9(11):2122–2126.
  • Awad HM, Mostafa EE, Saad MM, Selim MH, Hassan HM. Partial purification and characterization of extracellular protease from a halophilic and thermotolerant strain Streptomyces pseudogrisiolus NRC-15. Indian J Biochem Biophys. 2013;50(4):305–311.