4nmc

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== Structural highlights ==
== Structural highlights ==
<table><tr><td colspan='2'>[[4nmc]] is a 2 chain structure with sequence from [https://en.wikipedia.org/wiki/Geobacter_sulfurreducens_PCA Geobacter sulfurreducens PCA]. Full crystallographic information is available from [http://oca.weizmann.ac.il/oca-bin/ocashort?id=4NMC OCA]. For a <b>guided tour on the structure components</b> use [https://proteopedia.org/fgij/fg.htm?mol=4NMC FirstGlance]. <br>
<table><tr><td colspan='2'>[[4nmc]] is a 2 chain structure with sequence from [https://en.wikipedia.org/wiki/Geobacter_sulfurreducens_PCA Geobacter sulfurreducens PCA]. Full crystallographic information is available from [http://oca.weizmann.ac.il/oca-bin/ocashort?id=4NMC OCA]. For a <b>guided tour on the structure components</b> use [https://proteopedia.org/fgij/fg.htm?mol=4NMC FirstGlance]. <br>
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</td></tr><tr id='ligand'><td class="sblockLbl"><b>[[Ligand|Ligands:]]</b></td><td class="sblockDat" id="ligandDat"><scene name='pdbligand=2OP:(2S)-2-HYDROXYPROPANOIC+ACID'>2OP</scene>, <scene name='pdbligand=C15:N-DODECYL-N,N-DIMETHYL-3-AMMONIO-1-PROPANESULFONATE'>C15</scene>, <scene name='pdbligand=FAD:FLAVIN-ADENINE+DINUCLEOTIDE'>FAD</scene>, <scene name='pdbligand=K:POTASSIUM+ION'>K</scene>, <scene name='pdbligand=PG4:TETRAETHYLENE+GLYCOL'>PG4</scene></td></tr>
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</td></tr><tr id='method'><td class="sblockLbl"><b>[[Empirical_models|Method:]]</b></td><td class="sblockDat" id="methodDat">X-ray diffraction, [[Resolution|Resolution]] 1.901&#8491;</td></tr>
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<tr id='ligand'><td class="sblockLbl"><b>[[Ligand|Ligands:]]</b></td><td class="sblockDat" id="ligandDat"><scene name='pdbligand=2OP:(2S)-2-HYDROXYPROPANOIC+ACID'>2OP</scene>, <scene name='pdbligand=C15:N-DODECYL-N,N-DIMETHYL-3-AMMONIO-1-PROPANESULFONATE'>C15</scene>, <scene name='pdbligand=FAD:FLAVIN-ADENINE+DINUCLEOTIDE'>FAD</scene>, <scene name='pdbligand=K:POTASSIUM+ION'>K</scene>, <scene name='pdbligand=PG4:TETRAETHYLENE+GLYCOL'>PG4</scene></td></tr>
<tr id='resources'><td class="sblockLbl"><b>Resources:</b></td><td class="sblockDat"><span class='plainlinks'>[https://proteopedia.org/fgij/fg.htm?mol=4nmc FirstGlance], [http://oca.weizmann.ac.il/oca-bin/ocaids?id=4nmc OCA], [https://pdbe.org/4nmc PDBe], [https://www.rcsb.org/pdb/explore.do?structureId=4nmc RCSB], [https://www.ebi.ac.uk/pdbsum/4nmc PDBsum], [https://prosat.h-its.org/prosat/prosatexe?pdbcode=4nmc ProSAT]</span></td></tr>
<tr id='resources'><td class="sblockLbl"><b>Resources:</b></td><td class="sblockDat"><span class='plainlinks'>[https://proteopedia.org/fgij/fg.htm?mol=4nmc FirstGlance], [http://oca.weizmann.ac.il/oca-bin/ocaids?id=4nmc OCA], [https://pdbe.org/4nmc PDBe], [https://www.rcsb.org/pdb/explore.do?structureId=4nmc RCSB], [https://www.ebi.ac.uk/pdbsum/4nmc PDBsum], [https://prosat.h-its.org/prosat/prosatexe?pdbcode=4nmc ProSAT]</span></td></tr>
</table>
</table>
== Function ==
== Function ==
[https://www.uniprot.org/uniprot/Q746X3_GEOSL Q746X3_GEOSL]
[https://www.uniprot.org/uniprot/Q746X3_GEOSL Q746X3_GEOSL]
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<div style="background-color:#fffaf0;">
 
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== Publication Abstract from PubMed ==
 
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Proline utilization A (PutA) proteins are bifunctional peripheral membrane flavoenzymes that catalyze the oxidation of l-proline to l-glutamate by the sequential activities of proline dehydrogenase and aldehyde dehydrogenase domains. Located at the inner membrane of Gram-negative bacteria, PutAs play a major role in energy metabolism by coupling the oxidation of proline imported from the environment to the reduction of membrane-associated quinones. Here, we report seven crystal structures of the 1,004-residue PutA from Geobacter sulfurreducens, along with determination of the protein oligomeric state by small-angle X-ray scattering and kinetic characterization of substrate channeling and quinone reduction. The structures reveal an elaborate and dynamic tunnel system featuring a 75-A-long tunnel that links the two active sites and six smaller tunnels that connect the main tunnel to the bulk medium. The locations of these tunnels and their responses to ligand binding and flavin reduction suggest hypotheses about how proline, water, and quinones enter the tunnel system and where l-glutamate exits. Kinetic measurements show that glutamate production from proline occurs without a lag phase, consistent with substrate channeling and implying that the observed tunnel is functionally relevant. Furthermore, the structure of reduced PutA complexed with menadione bisulfite reveals the elusive quinone-binding site. The benzoquinone binds within 4.0 A of the flavin si face, consistent with direct electron transfer. The location of the quinone site implies that the concave surface of the PutA dimer approaches the membrane. Altogether, these results provide insight into how PutAs couple proline oxidation to quinone reduction.
 
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Structures of the PutA peripheral membrane flavoenzyme reveal a dynamic substrate-channeling tunnel and the quinone-binding site.,Singh H, Arentson BW, Becker DF, Tanner JJ Proc Natl Acad Sci U S A. 2014 Mar 4;111(9):3389-94. doi:, 10.1073/pnas.1321621111. Epub 2014 Feb 18. PMID:24550478<ref>PMID:24550478</ref>
 
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From MEDLINE&reg;/PubMed&reg;, a database of the U.S. National Library of Medicine.<br>
 
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</div>
 
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<div class="pdbe-citations 4nmc" style="background-color:#fffaf0;"></div>
 
==See Also==
==See Also==
*[[Proline utilization A|Proline utilization A]]
*[[Proline utilization A|Proline utilization A]]
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== References ==
 
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<references/>
 
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</StructureSection>
</StructureSection>

Current revision

Crystal structure of oxidized proline utilization A (PutA) from Geobacter sulfurreducens PCA complexed with Zwittergent 3-12

PDB ID 4nmc

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