Functional characterization of cysteine residues in GlpT, the glycerol 3-phosphate transporter of Escherichia coli

被引:17
作者
Fann, MC [1 ]
Busch, A [1 ]
Maloney, PC [1 ]
机构
[1] Johns Hopkins Univ, Sch Med, Dept Physiol, Baltimore, MD 21205 USA
关键词
D O I
10.1128/JB.185.13.3863-3870.2003
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
In Escherichia coli, the GlpT transporter, a member of the major facilitator superfamily, moves external glycerol 3-phosphate (G3P) into the cytoplasm in exchange for cytoplasmic phosphate. Study of intact cells showed that both GlpT and HisGlpT, a variant with an N-terminal six-histidine tag, are inhibited (50% inhibitory concentration approximate to 35 muM) by the hydrophilic thiol-specific agent p-mercurichlorobenzosulfonate (PCMBS) in a substrate-protectable fashion; by contrast, two other thiol-directed probes, N-maleimidylpropionylbiocytin (MPB) and [2-(trimethylammonium) ethyl] methanethiosulfonate (MTSET), have no effect. Use of variants in which the HisGlpT native cysteines are replaced individually by serine or glycine implicates Cys-176, on transmembrane helix 5 (TM5), as the major target for PCMBS. The inhibitor sensitivity of purified and reconstituted HisGlpT or its cysteine substitution derivatives was found to be consistent with the findings with intact cells, except that a partial response to PCMBS was found for the C176G mutant, suggesting the presence of a mixed population of both right-side-out (RSO) (resistant) and inside-out (ISO) (sensitive) orientations after reconstitution. To clarify this issue, we studied a derivative (P290C) in which the RSO molecules can be blocked independently due to an MPB-responsive cysteine in an extracellular loop. In this derivative, comparisons of variants with (P290C) and without (P290C/C176G) Cys-176 indicated that this residue shows substrate-protectable inhibition by PCMBS in the ISO orientation in proteoliposomes. Since PCMBS gains access to Cys-176 from both periplasmic and cytoplasmic surfaces of the protein (in intact cells and in a reconstituted ISO orientation, respectively) and since access is unavailable when the substrate is present, we propose that Cys-176 is located on the transport pathway and that TM5 has a role in lining this pathway.
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页码:3863 / 3870
页数:8
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共 36 条
[1]   The genome sequence of Drosophila melanogaster [J].
Adams, MD ;
Celniker, SE ;
Holt, RA ;
Evans, CA ;
Gocayne, JD ;
Amanatides, PG ;
Scherer, SE ;
Li, PW ;
Hoskins, RA ;
Galle, RF ;
George, RA ;
Lewis, SE ;
Richards, S ;
Ashburner, M ;
Henderson, SN ;
Sutton, GG ;
Wortman, JR ;
Yandell, MD ;
Zhang, Q ;
Chen, LX ;
Brandon, RC ;
Rogers, YHC ;
Blazej, RG ;
Champe, M ;
Pfeiffer, BD ;
Wan, KH ;
Doyle, C ;
Baxter, EG ;
Helt, G ;
Nelson, CR ;
Miklos, GLG ;
Abril, JF ;
Agbayani, A ;
An, HJ ;
Andrews-Pfannkoch, C ;
Baldwin, D ;
Ballew, RM ;
Basu, A ;
Baxendale, J ;
Bayraktaroglu, L ;
Beasley, EM ;
Beeson, KY ;
Benos, PV ;
Berman, BP ;
Bhandari, D ;
Bolshakov, S ;
Borkova, D ;
Botchan, MR ;
Bouck, J ;
Brokstein, P .
SCIENCE, 2000, 287 (5461) :2185-2195
[2]  
AMBUDKAR SV, 1986, J BIOL CHEM, V261, P9083
[3]   The genome sequence of Rickettsia prowazekii and the origin of mitochondria [J].
Andersson, SGE ;
Zomorodipour, A ;
Andersson, JO ;
Sicheritz-Pontén, T ;
Alsmark, UCM ;
Podowski, RM ;
Näslund, AK ;
Eriksson, AS ;
Winkler, HH ;
Kurland, CG .
NATURE, 1998, 396 (6707) :133-140
[4]  
[Anonymous], 1998, NATURE, DOI DOI 10.1038/35140
[5]   High-yield expression and functional analysis of Escherichia coli glycerol-3-phosphate transporter [J].
Auer, M ;
Kim, MJ ;
Lemieux, MJ ;
Villa, A ;
Song, JM ;
Li, XD ;
Wang, DN .
BIOCHEMISTRY, 2001, 40 (22) :6628-6635
[6]   Cloning and characterization of a putative human glycerol 3-phosphate permease gene (SLC37A1 ou G3PP) on 21q22.3: Mutation analysis in two candidate phenotypes, DFNB10 and a glycerol kinase deficiency [J].
Bartoloni, L ;
Wattenhofer, M ;
Kudoh, J ;
Berry, A ;
Shibuya, K ;
Kawasaki, K ;
Wang, J ;
Asakawa, S ;
Talior, I ;
Bonne-Tamir, B ;
Rossier, C ;
Michaud, J ;
McCabe, ERB ;
Minoshima, S ;
Shimizu, N ;
Scott, HS ;
Antonarakis, SE .
GENOMICS, 2000, 70 (02) :190-200
[7]   NUCLEOTIDE-SEQUENCE AND TRANSCRIPTIONAL STARTPOINT OF THE GLPT GENE OF ESCHERICHIA-COLI - EXTENSIVE SEQUENCE HOMOLOGY OF THE GLYCEROL-3-PHOSPHATE TRANSPORT PROTEIN WITH COMPONENTS OF THE HEXOSE-6-PHOSPHATE TRANSPORT-SYSTEM [J].
EIGLMEIER, K ;
BOOS, W ;
COLE, ST .
MOLECULAR MICROBIOLOGY, 1987, 1 (03) :251-258
[8]   Identification of two essential arginine residues in UhpT, the sugar phosphate antiporter of Escherichia coli [J].
Fann, MC ;
Davies, AH ;
Varadhachary, A ;
Kuroda, T ;
Sevier, C ;
Tsuchiya, T ;
Maloney, PC .
JOURNAL OF MEMBRANE BIOLOGY, 1998, 164 (02) :187-195
[9]   Functional symmetry of UhpT, the sugar phosphate transporter of Escherichia coli [J].
Fann, MC ;
Maloney, PC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (50) :33735-33740
[10]   Structure/function relationships in OxlT, the oxalate-formate transporter of Oxalobacter formigenes -: Assignment of transmembrane helix 11 to the translocation pathway [J].
Fu, DX ;
Sarker, RI ;
Abe, K ;
Bolton, E ;
Maloney, PC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (12) :8753-8760