ISOLATION AND CHARACTERIZATION OF THE ESCHERICHIA-COLI MSBB GENE, A MULTICOPY SUPPRESSOR OF NULL MUTATIONS IN THE HIGH-TEMPERATURE REQUIREMENT GENE HTRB

被引:99
作者
KAROW, M
GEORGOPOULOS, C
机构
[1] Department of Cellular, Viral and Molecular Biology, School of Medicine/Univ of UT, Salt Lake City
关键词
D O I
10.1128/jb.174.3.702-710.1992
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Previous work established that the htrB gene of Escherichia coli is required for growth in rich media at temperatures above 32.5-degrees-C but not at lower temperatures. In an effort to determine the functional role of the htrB gene product, we have isolated a multicopy suppressor of htrB, called msbB. The msbB gene has been mapped to 40.5 min on the E. coli genetic map, in a 12- to 15-kb gap of the genomic library made by Kohara et al. (Y. Kohara, K. Akiyama, and K. Isono, Cell 50:495-508, 1987). Mapping data show that the order of genes in the region is eda-edd-zwf-pykA-msbB. The msbB gene codes for a protein of 37,410 Da whose amino acid sequences is similar to that of HtrB and, like HtrB, the protein is very basic in nature. The similarity of the HtrB and MsbB proteins could indicate that they play functionally similar roles. Mutational analysis of msbB shows that the gene is not essential for E. coli growth; however, the htrB msbB double mutant exhibits a unique morphological phenotype at 30-degrees-C not seen with either of the single mutants. Analysis of both msbB and htrB mutants shows that these bacteria are resistant to four times more deoxycholate than wild-type bacteria but not to other hydrophobic substances. The addition of quaternary ammonium compounds rescues the temperature-sensitive phenotype of htrB bacteria, and this rescue is abolished by the simultaneous addition of Mg2+ or Ca2+. These results suggest that MsbB and HtrB play an important role in outer membrane structure and/or function.
引用
收藏
页码:702 / 710
页数:9
相关论文
共 38 条
[1]   CELL-SHAPE AND DIVISION IN ESCHERICHIA-COLI - EXPERIMENTS WITH SHAPE AND DIVISION MUTANTS [J].
BEGG, KJ ;
DONACHIE, WD .
JOURNAL OF BACTERIOLOGY, 1985, 163 (02) :615-622
[2]   COSMID-DERIVED MAP OF ESCHERICHIA-COLI STRAIN BHB2600 IN COMPARISON TO THE MAP OF STRAIN W3110 [J].
BIRKENBIHL, RP ;
VIELMETTER, W .
NUCLEIC ACIDS RESEARCH, 1989, 17 (13) :5057-5069
[3]   CONSTRUCTION AND CHARACTERIZATION OF NEW CLONING VEHICLES .2. MULTIPURPOSE CLONING SYSTEM [J].
BOLIVAR, F ;
RODRIGUEZ, RL ;
GREENE, PJ ;
BETLACH, MC ;
HEYNEKER, HL ;
BOYER, HW ;
CROSA, JH ;
FALKOW, S .
GENE, 1977, 2 (02) :95-113
[4]   TRANSPOSITION AND FUSION OF LAC GENES TO SELECTED PROMOTERS IN ESCHERICHIA-COLI USING BACTERIOPHAGE-LAMBDA AND BACTERIOPHAGE-MU [J].
CASADABAN, MJ .
JOURNAL OF MOLECULAR BIOLOGY, 1976, 104 (03) :541-555
[5]   A PSC101-DERIVED PLASMID WHICH SHOWS NO SEQUENCE HOMOLOGY TO OTHER COMMONLY USED CLONING VECTORS [J].
CHURCHWARD, G ;
BELIN, D ;
NAGAMINE, Y .
GENE, 1984, 31 (1-3) :165-171
[6]   LOCATIONS OF THE ZWF, EDD, AND EDA GENES ON THE ESCHERICHIA-COLI PHYSICAL MAP [J].
CONWAY, T ;
YI, KC ;
EGAN, SE ;
WOLF, RE ;
ROWLEY, DL .
JOURNAL OF BACTERIOLOGY, 1991, 173 (17) :5247-5248
[7]  
DAME JB, 1976, J BACTERIOL, V27, P961
[8]   INTERPOSON MUTAGENESIS OF SOIL AND WATER BACTERIA - A FAMILY OF DNA FRAGMENTS DESIGNED FOR INVITRO INSERTIONAL MUTAGENESIS OF GRAM-NEGATIVE BACTERIA [J].
FELLAY, R ;
FREY, J ;
KRISCH, H .
GENE, 1987, 52 (2-3) :147-154
[9]   ALIGNING AMINO-ACID SEQUENCES - COMPARISON OF COMMONLY USED METHODS [J].
FENG, DF ;
JOHNSON, MS ;
DOOLITTLE, RF .
JOURNAL OF MOLECULAR EVOLUTION, 1985, 21 (02) :112-125
[10]  
FRAENKEL DG, 1972, GENETICS, V71, P481