Screening and Characterization of Cold-Active β-Galactosidase Producing Psychrotrophic Enterobacter ludwigii from the Sediments of Arctic Fjord

被引:21
作者
Alikkunju, Aneesa P. [1 ]
Sainjan, Neethu [1 ]
Silvester, Reshma [1 ]
Joseph, Ajith [1 ]
Rahiman, Mujeeb [2 ]
Antony, Ally C. [1 ]
Kumaran, Radhakrishnan C. [1 ]
Hatha, Mohamed [1 ]
机构
[1] Cochin Univ Sci & Technol, Dept Marine Biol Microbiol & Biochem, Lakeside Campus, Cochin 682016, Kerala, India
[2] MES Ponnani Coll, Dept Aquaculture & Fishery Microbiol, Ponnani 679586, Kerala, India
关键词
Psychrotrophs; Cold-active beta-galactosidase; Enterobacter sp; Lactoseintolerance; Whey; Bioremediation; PURIFICATION; CLONING; STRAIN; ENZYMES; COPRODUCTION; ENVIRONMENT; BACTERIUM; AMYLASE; GROWTH; MILK;
D O I
10.1007/s12010-016-2111-y
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Low-temperature-tolerant microorganisms and their cold-active enzymes could be an innovative and invaluable tool in various industrial applications. In the present study, bacterial isolates from the sediment samples of Kongsfjord, Norwegian Arctic, were screened for beta-galactosidase production. Among the isolates, KS25, KS85, KS60, and KS92 have shown good potential in beta-galactosidase production at 20 A degrees C. 16SrRNA gene sequence analysis revealed the relatedness of the isolates to Enterobacter ludwigii. The optimum growth temperature of the isolate was 25 A degrees C. The isolate exhibited good growth and enzyme production at a temperature range of 15-35 A degrees C, pH 5-10. The isolate preferred yeast extract and lactose for the maximum growth and enzyme production at conditions of pH 7.0, temperature of 25 A degrees C, and agitation speed of 100 rpm. The growth and enzyme production was stimulated by Mn2+ and Mg2+ and strongly inhibited by Zn2+, Ni2+, and Cu+. beta-Galactosidases with high specific activity at low temperatures are very beneficial in food industry to compensate the nutritional problem associated with lactose intolerance. The isolate exhibited a remarkable capability to utilize clarified whey, an industrial pollutant, for good biomass and enzyme yield and hence could be well employed in whey bioremediation.
引用
收藏
页码:477 / 490
页数:14
相关论文
共 50 条
[1]   Maximization of β-Galactosidase Production: A Simultaneous Investigation of Agitation and Aeration Effects [J].
Alves, Fernanda Germano ;
Maugeri Filho, Francisco ;
de Medeiros Burkert, Janaina Fernandes ;
Kalil, Susana Juliano .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2010, 160 (05) :1528-1539
[2]  
[Anonymous], 2013, ADV STUD BIOL
[3]   Psychrotrophic proteolytic bacteria from cold environment of Gangotri glacier, Western Himalaya, India [J].
Baghel, VS ;
Tripathi, RD ;
Ramteke, PW ;
Gopal, K ;
Dwivedi, S ;
Jain, RK ;
Rai, UN ;
Singh, SN .
ENZYME AND MICROBIAL TECHNOLOGY, 2005, 36 (5-6) :654-659
[4]   Bioremediation of Heavy Metals by a Novel Bacterial Strain Enterobacter cloacae and Its Antioxidant Enzyme Activity, Flocculant Production, and Protein Expression in Presence of Lead, Cadmium, and Nickel [J].
Banerjee, Goutam ;
Pandey, Shubhant ;
Ray, Arun Kumar ;
Kumar, Ravi .
WATER AIR AND SOIL POLLUTION, 2015, 226 (04)
[5]  
Beniwal V., 2010, J AM SCI, V6, P389
[6]   A new β-galactosidase with a low temperature optimum isolated from the Antarctic Arthrobacter sp 20B: gene cloning, purification and characterization [J].
Bialkowska, Aneta Monika ;
Cieslinski, Hubert ;
Nowakowska, Karolina Maria ;
Kur, Jozef ;
Turkiewicz, Marianna .
ARCHIVES OF MICROBIOLOGY, 2009, 191 (11) :825-835
[7]   Biotechnological uses of enzymes from psychrophiles [J].
Cavicchioli, R. ;
Charlton, T. ;
Ertan, H. ;
Omar, S. Mohd ;
Siddiqui, K. S. ;
Williams, T. J. .
MICROBIAL BIOTECHNOLOGY, 2011, 4 (04) :449-460
[8]  
Chan V., 2002, J. Exp. Microbiol. Immunol, V2, P130
[9]   Permeabilization of Ochrobactrum anthropi SY509 cells with organic solvents for whole cell biocatalyst [J].
Choi, KO ;
Song, SH ;
Yoo, YJ .
BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2004, 9 (03) :147-150
[10]   Biochemical characterization of a β-galactosidase with a low temperature optimum obtained from an Antarctic Arthrobacter isolate [J].
Coker, JA ;
Sheridan, PP ;
Loveland-Curtze, J ;
Gutshall, KR ;
Auman, AJ ;
Brenchley, JE .
JOURNAL OF BACTERIOLOGY, 2003, 185 (18) :5473-5482