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Structural basis for substrate binding and specificity of a sodium–alanine symporter AgcS
by
Sarhan, Maen F.
, Sanchez-Martinez, Silvia
, Hattne, Johan
, Ma, Jinming
, Lei, Hsiang-Ting
, Reyes, Francis E.
, Gonen, Tamir
in
Alanine
/ Amino Acid Transport Systems, Neutral - chemistry
/ Amino Acid Transport Systems, Neutral - genetics
/ Amino Acid Transport Systems, Neutral - metabolism
/ Amino Acids
/ BASIC BIOLOGICAL SCIENCES
/ Binding Sites
/ Biological Sciences
/ Biophysics and Computational Biology
/ Cell membranes
/ Crystal structure
/ D-Alanine
/ Glycine
/ Leucine
/ membrane protein
/ Membrane proteins
/ Models, Molecular
/ Mutation
/ Organic chemistry
/ Protein Binding
/ Protein Conformation
/ Proteins
/ Recombinant Proteins
/ secondary transporter
/ Selectivity
/ Site-directed mutagenesis
/ Sodium
/ specificity
/ Structural analysis
/ Structure-Activity Relationship
/ substrate binding
/ Substrate Specificity
/ Substrates
/ Symporters - chemistry
/ Symporters - genetics
/ Symporters - metabolism
/ Valine
2019
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Structural basis for substrate binding and specificity of a sodium–alanine symporter AgcS
by
Sarhan, Maen F.
, Sanchez-Martinez, Silvia
, Hattne, Johan
, Ma, Jinming
, Lei, Hsiang-Ting
, Reyes, Francis E.
, Gonen, Tamir
in
Alanine
/ Amino Acid Transport Systems, Neutral - chemistry
/ Amino Acid Transport Systems, Neutral - genetics
/ Amino Acid Transport Systems, Neutral - metabolism
/ Amino Acids
/ BASIC BIOLOGICAL SCIENCES
/ Binding Sites
/ Biological Sciences
/ Biophysics and Computational Biology
/ Cell membranes
/ Crystal structure
/ D-Alanine
/ Glycine
/ Leucine
/ membrane protein
/ Membrane proteins
/ Models, Molecular
/ Mutation
/ Organic chemistry
/ Protein Binding
/ Protein Conformation
/ Proteins
/ Recombinant Proteins
/ secondary transporter
/ Selectivity
/ Site-directed mutagenesis
/ Sodium
/ specificity
/ Structural analysis
/ Structure-Activity Relationship
/ substrate binding
/ Substrate Specificity
/ Substrates
/ Symporters - chemistry
/ Symporters - genetics
/ Symporters - metabolism
/ Valine
2019
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Structural basis for substrate binding and specificity of a sodium–alanine symporter AgcS
by
Sarhan, Maen F.
, Sanchez-Martinez, Silvia
, Hattne, Johan
, Ma, Jinming
, Lei, Hsiang-Ting
, Reyes, Francis E.
, Gonen, Tamir
in
Alanine
/ Amino Acid Transport Systems, Neutral - chemistry
/ Amino Acid Transport Systems, Neutral - genetics
/ Amino Acid Transport Systems, Neutral - metabolism
/ Amino Acids
/ BASIC BIOLOGICAL SCIENCES
/ Binding Sites
/ Biological Sciences
/ Biophysics and Computational Biology
/ Cell membranes
/ Crystal structure
/ D-Alanine
/ Glycine
/ Leucine
/ membrane protein
/ Membrane proteins
/ Models, Molecular
/ Mutation
/ Organic chemistry
/ Protein Binding
/ Protein Conformation
/ Proteins
/ Recombinant Proteins
/ secondary transporter
/ Selectivity
/ Site-directed mutagenesis
/ Sodium
/ specificity
/ Structural analysis
/ Structure-Activity Relationship
/ substrate binding
/ Substrate Specificity
/ Substrates
/ Symporters - chemistry
/ Symporters - genetics
/ Symporters - metabolism
/ Valine
2019
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Structural basis for substrate binding and specificity of a sodium–alanine symporter AgcS
Journal Article
Structural basis for substrate binding and specificity of a sodium–alanine symporter AgcS
2019
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Overview
The amino acid, polyamine, and organocation (APC) superfamily is the second largest superfamily of membrane proteins forming secondary transporters that move a range of organic molecules across the cell membrane. Each transporter in the APC superfamily is specific for a unique subset of substrates, even if they possess a similar structural fold. The mechanism of substrate selectivity remains, by and large, elusive. Here, we report two crystal structures of an APC member from Methanococcus maripaludis, the alanine or glycine:cation symporter (AgcS), with L- or D-alanine bound. Structural analysis combined with site-directed mutagenesis and functional studies inform on substrate binding, specificity, and modulation of the AgcS family and reveal key structural features that allow this transporter to accommodate glycine and alanine while excluding all other amino acids. Mutation of key residues in the substrate binding site expand the selectivity to include valine and leucine. These studies provide initial insights into substrate selectivity in AgcS symporters.
Publisher
National Academy of Sciences
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