MOLECULAR ASPECTS OF PHOSPHATE-TRANSPORT IN ESCHERICHIA-COLI

被引:150
作者
RAO, NN [1 ]
TORRIANI, A [1 ]
机构
[1] MIT,DEPT BIOL,ROOM 16-713,CAMBRIDGE,MA 02139
关键词
D O I
10.1111/j.1365-2958.1990.tb00682.x
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
Escherichia coli transports inorganic phosphate (Pi) by the low‐affinity transport system, Pit. When the level of the external Pi is lower than 20μM, another transport system, Pst, is induced with a Kt of 0.25μM. An outer‐membrane porin, PhoE, with a Km of about 1μM is also induced. The outer membrane allows the intake of organic phosphates which are degraded to Pi by phosphatases in the periplasm. The Pi‐binding protein will capture the free Pi produced in the periplasm and direct it to the transmembrane channel of the cytoplasmic membrane. The channel consists of two proteins, PstA and PstC, which have six and five transmembrane helices, respectively. On the cytoplasmic side of the membrane the channel is linked to the PstB protein, which carries a nucleotide (probably ATP)‐binding site. PstB probably provides the energy required by the channel to free Pi. The Pst system has two functions in E. coli: (i) the transport of Pi, and (ii) the negative regulation of the phosphate regulon (a complex of 20 proteins mostly related to organic phosphate transport). It is remarkable that these two functions are not related, since the repressibility of the regulon depends on the integral structure of Pst (PiBP + PstA + PstC + PstB) and not on the Pi transported. Another gene of the pst operon, phoU, produces a protein involved in the negative regulation of the Pho regulon, but the mechanism of this function has not been explained. Thus the regulatory function of the Pst system remains obscure. Its basal level, present when Pi is abundant, is sufficient to repress the Pho regulon but the negative regulatory function is lost upon Pi starvation. Copyright © 1990, Wiley Blackwell. All rights reserved
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页码:1083 / 1090
页数:8
相关论文
共 49 条
[1]   NUCLEOTIDE-SEQUENCE OF THE GENES INVOLVED IN PHOSPHATE-TRANSPORT AND REGULATION OF THE PHOSPHATE REGULON IN ESCHERICHIA-COLI [J].
AMEMURA, M ;
MAKINO, K ;
SHINAGAWA, H ;
KOBAYASHI, A ;
NAKATA, A .
JOURNAL OF MOLECULAR BIOLOGY, 1985, 184 (02) :241-250
[3]  
BAUER K, 1989, J BIOL CHEM, V264, P16393
[4]  
BAUER K, 1988, J BIOL CHEM, V263, P13406
[5]  
BEACHAM IR, 1980, J GEN MICROBIOL, V119, P31
[6]   GENETIC LOCATION OF GENE (USH) SPECIFYING PERIPLASMIC URIDINE 5'-DIPHOSPHATE GLUCOSE HYDROLASE (5'-NUCLEOTIDASE) IN ESCHERICHIA-COLI K-12 [J].
BEACHAM, IR ;
YAGIL, E .
JOURNAL OF BACTERIOLOGY, 1976, 128 (01) :487-489
[7]   PORIN FROM BACTERIAL AND MITOCHONDRIAL OUTER MEMBRANES [J].
BENZ, R .
CRC CRITICAL REVIEWS IN BIOCHEMISTRY, 1985, 19 (02) :145-190
[8]   MOLECULAR-BASIS OF PORIN SELECTIVITY - MEMBRANE EXPERIMENTS WITH OMPC-PHOE AND OMPF-PHOE HYBRID PROTEINS OF ESCHERICHIA-COLI-K-12 [J].
BENZ, R ;
SCHMID, A ;
VANDERLEY, P ;
TOMMASSEN, J .
BIOCHIMICA ET BIOPHYSICA ACTA, 1989, 981 (01) :8-14
[9]   RECONSTITUTION OF A BACTERIAL PERIPLASMIC PERMEASE IN PROTEOLIPOSOMES AND DEMONSTRATION OF ATP HYDROLYSIS CONCOMITANT WITH TRANSPORT [J].
BISHOP, L ;
AGBAYANI, R ;
AMBUDKAR, SV ;
MALONEY, PC ;
AMES, GFL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1989, 86 (18) :6953-6957
[10]  
BRZOSKA P, 1987, PHOSPHATE METABOLISM, P170