Any feedback?
Please rate this page
(literature.php)
(0/150)

BRENDA support

Literature summary for 7.5.2.1 extracted from

  • Bordignon, E.; Grote, M.; Schneider, E.
    The maltose ABC transporter in the 21(st) century - towards a structural-dynamic perspective on its mode of action (2010), Mol. Microbiol., 77, 1354-1366.
    View publication on PubMed

Application

Application Comment Organism
analysis the maltose/maltodextrin transport system of Escherichia coli/Salmonella serves as a model for canonical ATP-binding cassette importers in general Salmonella enterica subsp. enterica serovar Typhimurium
analysis the maltose/maltodextrin transport system of Escherichia coli/Salmonella serves as a model for canonical ATP-binding cassette importers in general Escherichia coli

Cloned(Commentary)

Cloned (Comment) Organism
the type I maltose ABC importer is encoded within the maltose regulon Salmonella enterica subsp. enterica serovar Typhimurium
the type I maltose ABC importer is encoded within the maltose regulon Escherichia coli

Crystallization (Commentary)

Crystallization (Comment) Organism
crystal structure analysis Salmonella enterica subsp. enterica serovar Typhimurium
crystal structure analysis, e.g. of the crystal structure of the complex in the presence of ATP and MalE, containing MalK mutant E159Q, is resolved at 2.8 A, revealing that MalFG are in a periplasmically open state Escherichia coli

Protein Variants

Protein Variants Comment Organism
E159 the E159Q substitution in MalK prevents ATP from being hydrolysed. This results in an ATP-bound structure, which is thought to represent the transition state for ATP hydrolysis. The crystal shows an open (unliganded) MalE bound to the periplasmic side of the complex, a maltose molecule bound solely to a transmembrane region of MalF, and a closed conformation of the ATP-bound MalK(E59Q)2 subunits Escherichia coli

Localization

Localization Comment Organism GeneOntology No. Textmining
membrane
-
Salmonella enterica subsp. enterica serovar Typhimurium 16020
-
membrane
-
Escherichia coli 16020
-

Natural Substrates/ Products (Substrates)

Natural Substrates Organism Comment (Nat. Sub.) Natural Products Comment (Nat. Pro.) Rev. Reac.
ATP + H2O + maltose/out Salmonella enterica subsp. enterica serovar Typhimurium
-
ADP + phosphate + maltose/in
-
?
ATP + H2O + maltose/out Escherichia coli
-
ADP + phosphate + maltose/in
-
?

Organism

Organism UniProt Comment Textmining
Escherichia coli P68187
-
-
Salmonella enterica subsp. enterica serovar Typhimurium
-
-
-

Substrates and Products (Substrate)

Substrates Comment Substrates Organism Products Comment (Products) Rev. Reac.
ATP + H2O + maltose/out
-
Salmonella enterica subsp. enterica serovar Typhimurium ADP + phosphate + maltose/in
-
?
ATP + H2O + maltose/out
-
Escherichia coli ADP + phosphate + maltose/in
-
?
ATP + H2O + maltose/out the MalK dimer complex component provides the energy for maltose transport by hydrolysing ATP Salmonella enterica subsp. enterica serovar Typhimurium ADP + phosphate + maltose/in
-
?
ATP + H2O + maltose/out the MalK dimer complex component provides the energy for maltose transport by hydrolysing ATP Escherichia coli ADP + phosphate + maltose/in
-
?
additional information the maltose transporter solubilized in detergent micelles hydrolyses ATP independently of the presence of liganded MalE, ATP-induced MalK dimer closure occurs in absence of MalK. The isolated MalK2 domains are also known to exhibit a spontaneous but low ATPase activity Salmonella enterica subsp. enterica serovar Typhimurium ?
-
?
additional information the maltose transporter solubilized in detergent micelles hydrolyses ATP independently of the presence of liganded MalE, ATP-induced MalK dimer closure occurs in absence of MalK. The isolated MalK2 domains are also known to exhibit a spontaneous but low ATPase activity Escherichia coli ?
-
?

Subunits

Subunits Comment Organism
More the maltose/maltodextrin transport system is composed of periplasmic maltose-binding protein, MalE, the pore-forming subunits MalF and MalG, and a homodimer of the nucleotide-binding subunit, MalK, overall structure, component interactions, and comparison, detailed overview. Structure modelling. The MalK dimer provides the energy for maltose transport by hydrolysing ATP. The structure of MalK is solved in two (nucleotide-free) apo-states, one ADP-bound and one ATP-bound state, representing two open, a semi-open and a closed conformation of the dimer, respectively, dynamics, overview Escherichia coli
More the maltose/maltodextrin transport system is composed of periplasmic maltose-binding protein, MalE, the pore-forming subunits MalF and MalG, and a homodimer of the nucleotide-binding subunit, MalK, overall structure, component interactions, and comparison, detailed overview. Structure modelling.. The MalK dimer provides the energy for maltose transport by hydrolysing ATP Salmonella enterica subsp. enterica serovar Typhimurium

Synonyms

Synonyms Comment Organism
maltose ABC transporter
-
Salmonella enterica subsp. enterica serovar Typhimurium
maltose ABC transporter
-
Escherichia coli
More the enzyme belongs to the type I canonical ABC importers of the ATP-binding cassette, ABC, transporters Salmonella enterica subsp. enterica serovar Typhimurium
More the enzyme belongs to the type I canonical ABC importers of the ATP-binding cassette, ABC, transporters Escherichia coli

General Information

General Information Comment Organism
metabolism the type I maltose ABC importer is encoded within the maltose regulon, which enables the bacteria to feed on maltose and maltodextrins, alpha-1,4-linked oligosaccharides up to seven glucose units, formed by enzymatic cleavage of starch or glycogen Escherichia coli
metabolism the type I maltose ABC importer is encoded within the maltose regulon, which enables the bacteria to feed on maltose and maltodextrins, alpha-1,4-linked oligosaccharides up to seven glucose units, formed by enzymatic cleavage of starch or glycogen. The C-terminal domain of MalK has a dual regulatory function: it controls the activity of MalT, the positive transcriptional regulator of the maltose regulon, and it is the primary site at which dephosphorylated enzyme IIAGlc of the phosphoenolpyruvate phosphotransferase system binds, preventing maltose uptake Salmonella enterica subsp. enterica serovar Typhimurium