Maltose phosphorylase from a deep-sea Paenibacillus sp.:: Enzymatic properties and nucleotide and amino-acid sequences

被引:16
作者
Hidaka, Y
Hatada, Y
Akita, M
Yoshida, M
Nakamura, N
Takada, M
Nakakuki, T
Ito, S
Horikoshi, K
机构
[1] Japan Agcy Marine Earth Sci & Technol, JAMSTEC, Extremobiosphere Res Ctr, Yokosuka, Kanagawa 2370061, Japan
[2] Nihon Shokuhin Kako Co Ltd, Fuji, Shizuoka 4178530, Japan
关键词
maltose phosphorylase; Paenibacillus; synthetic activity;
D O I
10.1016/j.enzmictec.2005.02.010
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The gene for a maltose phosphorylase (MapA) from a novel species of Paenibacillus (strain SH-55), which was isolated from a sediment in Sagami Bay, Japan, at a depth of 1174 m, was cloned and sequenced. It encodes a protein of 768 amino acids with a calculated molecular mass of 87,748 Da. The deduced amino-acid sequence showed 45-51% identity to sequences of known maltose phosphorylases in glycoside hydrolase family 65. The recombinant enzyme, overexpressed in Escherichia coli cells, was purified and biochemically characterized. The enzyme occurs as a homodimer (180 kDa), as judged by gel chromatography. The enzyme was found to catalyze reversible reactions, and its maximal activity was observed at pH 7 and 50 degrees C for phosphorolysis and at pH 6 and 40 degrees C for glycosynthesis. It was stable up to 50 degrees C after heating for 15 min. The homology modeling of MapA using the tertiary structure of Lb-MP from Lactobacillus brevis as a template suggested that the Y351, E487, S634, and S635 mutants of MapA were involved in the catalysis. By site-directed mutagenesis, the Y351F, S634V, S635V and E487A mutants lost both the phosphorolytic and the synthetic activity. Interestingly, the E487Q mutant lost the phosphorolytic activity, but retained the synthetic activity (13% of the activity of wild-type MapA). (c) 2005 Elsevier Inc. All rights reserved.
引用
收藏
页码:185 / 194
页数:10
相关论文
共 31 条
[1]  
BENZVI R, 1961, J BIOL CHEM, V236, P2186
[2]  
BIRNBOIM HC, 1979, NUCLEIC ACIDS RES, V7, P1513
[3]   Maltose/maltodextrin system of Escherichia coli:: Transport, metabolism, and regulation [J].
Boos, W ;
Shuman, H .
MICROBIOLOGY AND MOLECULAR BIOLOGY REVIEWS, 1998, 62 (01) :204-+
[4]  
CLEVELAND DW, 1977, J BIOL CHEM, V252, P1102
[5]   DIRECTIONAL CLONING OF DNA FRAGMENTS AT A LARGE DISTANCE FROM AN INITIAL PROBE - A CIRCULARIZATION METHOD [J].
COLLINS, FS ;
WEISSMAN, SM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1984, 81 (21) :6812-6816
[6]   Crystal structure of maltose phosphorylase from Lactobacillus brevis:: Unexpected evolutionary relationship with glucoamylases [J].
Egloff, MP ;
Uppenberg, J ;
Haalck, L ;
van Tilbeurgh, H .
STRUCTURE, 2001, 9 (08) :689-697
[7]  
FITTING C, 1952, J BIOL CHEM, V199, P153
[8]   STUDIES ON TRANSFORMATION OF ESCHERICHIA-COLI WITH PLASMIDS [J].
HANAHAN, D .
JOURNAL OF MOLECULAR BIOLOGY, 1983, 166 (04) :557-580
[9]   Purification and some properties of maltose phosphorylase from Enterococcus hirae IFO 3181 [J].
Hiruma, M ;
Shirokane, Y ;
Suzuki, M .
NIPPON NOGEIKAGAKU KAISHI-JOURNAL OF THE JAPAN SOCIETY FOR BIOSCIENCE BIOTECHNOLOGY AND AGROCHEMISTRY, 1996, 70 (07) :773-780
[10]   Maltose phosphorylase from Lactobacillus brevis: Purification, characterization, and application in a biosensor for ortho-phosphate [J].
Huwel, S ;
Haalck, L ;
Conrath, N ;
Spener, F .
ENZYME AND MICROBIAL TECHNOLOGY, 1997, 21 (06) :413-420