Cloning, sequencing, and disruption of the Bacillus subtilis psd gene coding for phosphatidylserine decarboxylase

被引:45
作者
Matsumoto, K
Okada, M
Horikoshi, Y
Matsuzaki, H
Kishi, T
Itaya, M
Shibuya, I
机构
[1] Saitama Univ, Fac Sci, Dept Biochem & Mol Biol, Urawa, Saitama 338, Japan
[2] Mitsubishi Kasei Inst Life Sci, Tokyo 194, Japan
[3] Natl Inst Genet, Shizuoka 411, Japan
关键词
D O I
10.1128/JB.180.1.100-106.1998
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The psd gene of Bacillus subtilis Marburg, encoding phosphatidylserine decarboxylase, has been cloned and sequenced, It encodes a polypeptide of 263 amino acid residues (deduced molecular weight of 29,689) and is located just downstream of pss, the structural gene for phosphatidylserine synthase that catalyzes the preceding reaction in phosphatidylethanolamine synthesis (M. Okada, H. Matsuzaki, I. Shibuya, and K. Matsumoto, J. Bacteriol. 176:7456-7461, 1994). Introduction of a plasmid containing the psd gene into temperature-sensitive Escherichia coli psd-2 mutant cells allowed growth at otherwise restrictive temperature, Phosphatidylserine was not detected in the psd-2 mutant cells harboring the plasmid; it accumulated ire the mutant pip to 29% of the total phospholipids without the plasmid, An enzyme activity that catalyzes decarboxylation of C-14-labeled phosphatidylserine to form phosphatidylethanolamine was detected in E. coli psd-2 cells harboring a Bacillus psd plasmid. E. coli cells harboring the psd plasmid, the expression of which was under the control of the T7 phi 10 promoter, produced proteins of 32 and 29 kDa upon induction, A pulse-labeling experiment suggested that the 32-kDa protein is the primary translation product and is processed into the 29-kDa protein. The psd gene, together with pss, was located by Southern hybridization to the 238- to 306-k6 SfiI-NotI fragment of the chromosome, A B. subtilis strain harboring an interrupted psn allele, psd1::neo, was constructed, The null psd mutant contained no phosphatidylethanolamine and accumulated phosphatidylserine, It grew well without supplementation of divalent cations which are essential for the E. coli pssA null mutant lacking phosphatidylethanolamine. In both the B. subtilis null pss and psd mutants, glucosyldiacylglycerol content increased two- to fourfold. The results suggest that the lack of phosphatidylethanolamine in the B. subtilis membrane mag be compensated for by the increases in the contents of glucosyldiacylglycerols by an unknown mechanism.
引用
收藏
页码:100 / 106
页数:7
相关论文
共 51 条
[11]   CHARACTERIZATION OF A MEMBRANE-ASSOCIATED CYTIDINE DIPHOSPHATE-DIACYLGLYCEROL-DEPENDENT PHOSPHATIDYLSERINE SYNTHASE IN BACILLI [J].
DUTT, A ;
DOWHAN, W .
JOURNAL OF BACTERIOLOGY, 1981, 147 (02) :535-542
[12]   PURIFICATION AND CHARACTERIZATION OF A MEMBRANE-ASSOCIATED PHOSPHATIDYLSERINE SYNTHASE FROM BACILLUS-LICHENIFORMIS [J].
DUTT, A ;
DOWHAN, W .
BIOCHEMISTRY, 1985, 24 (05) :1074-1079
[13]  
GRAVES MC, 1986, J BIOL CHEM, V261, P1409
[14]   Antibiotic-resistance cassettes for Bacillus subtilis [J].
GueroutFleury, AM ;
Shazand, K ;
Frandsen, N ;
Stragier, P .
GENE, 1995, 167 (1-2) :335-336
[15]   BIOGENESIS OF MEMBRANE LIPIDS - MUTANTS OF ESCHERICHIA-COLI WITH TEMPERATURE-SENSITIVE PHOSPHATIDYLSERINE DECARBOXYLASE [J].
HAWROT, E ;
KENNEDY, EP .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1975, 72 (03) :1112-1116
[16]   CONDITIONAL LETHAL PHOSPHATIDYLSERINE DECARBOXYLASE MUTANTS OF ESCHERICHIA-COLI - MAPPING OF STRUCTURAL GENE FOR PHOSPHATIDYLSERINE DECARBOXYLASE [J].
HAWROT, E ;
KENNEDY, EP .
MOLECULAR & GENERAL GENETICS, 1976, 148 (03) :271-279
[17]  
HAWROT E, 1978, J BIOL CHEM, V253, P8213
[18]  
HENNER DJ, 1993, METHOD ENZYMOL, V68, P243
[19]   COMPLETE PHYSICAL MAP OF THE BACILLUS-SUBTILIS 168-CHROMOSOME CONSTRUCTED BY A GENE-DIRECTED MUTAGENESIS METHOD [J].
ITAYA, M ;
TANAKA, T .
JOURNAL OF MOLECULAR BIOLOGY, 1991, 220 (03) :631-648
[20]   A NEOMYCIN RESISTANCE GENE CASSETTE SELECTABLE IN A SINGLE COPY STATE IN THE BACILLUS-SUBTILIS CHROMOSOME [J].
ITAYA, M ;
KONDO, K ;
TANAKA, T .
NUCLEIC ACIDS RESEARCH, 1989, 17 (11) :4410-4410