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'''Tertiary structure''' | '''Tertiary structure''' | ||
Each <scene name='82/829347/Monomerg6pd/1'>monomer</scene> is composed of 2 domains, <scene name='82/829347/Homodimer_g6pd/5'>1 red and 1 green</scene>. | Each <scene name='82/829347/Monomerg6pd/1'>monomer</scene> is composed of 2 domains, <scene name='82/829347/Homodimer_g6pd/5'>1 red and 1 green</scene>. | ||
| - | Depending on several conditions, it can dimerize to form tetramers. Each monomer is composed of a small domain localized in the amino terminal part which constitute the coenzyme binding domain and a larger domain in the carboxy terminal part which constitute the substrate binding domain. the complex has a substrate binding site that binds to G6P, and a catalytic coenzyme binding site that binds to | + | Depending on several conditions, it can dimerize to form tetramers. Each monomer is composed of a small domain localized in the amino terminal part which constitute the coenzyme binding domain and a larger domain in the carboxy terminal part which constitute the substrate binding domain. the complex has a substrate binding site that binds to G6P, and a catalytic coenzyme binding site that binds to NAD(P)+ using the Rossman fold.<ref name="struc">PMID: 7881907</ref> |
*''Coenzyme binding domain'' | *''Coenzyme binding domain'' | ||
| - | The coenzyme binding domain binds the [ | + | The coenzyme binding domain binds the [https://en.wikipedia.org/wiki/Nicotinamide_adenine_dinucleotide NAD] or [https://en.wikipedia.org/wiki/Nicotinamide_adenine_dinucleotide_phosphate NADP] which participes in the dehydrogenation of '''G6P'''. |
It is defined by a typical [https://scop.berkeley.edu/sunid=30074 β-α-β dinucleotide-binding fold] corresponding to a [https://en.wikipedia.org/wiki/Rossmann_fold Rossman fold]. | It is defined by a typical [https://scop.berkeley.edu/sunid=30074 β-α-β dinucleotide-binding fold] corresponding to a [https://en.wikipedia.org/wiki/Rossmann_fold Rossman fold]. | ||
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Glucose-6-Phosphate Dehydrogenase from Leuconostoc mesenteroides
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References
- ↑ Ravera S, Calzia D, Morelli A, Panfoli I. Oligomerization studies of Leuconostoc mesenteroides G6PD activity after SDS-PAGE and blotting. Mol Biol (Mosk). 2010 May-Jun;44(3):472-6. PMID:20608171
- ↑ GeneID:29577449
- ↑ Cosgrove MS, Naylor C, Paludan S, Adams MJ, Levy HR. On the mechanism of the reaction catalyzed by glucose 6-phosphate dehydrogenase. Biochemistry. 1998 Mar 3;37(9):2759-67. PMID:9485426 doi:10.1021/bi972069y
- ↑ Cosgrove MS, Loh SN, Ha JH, Levy HR. The catalytic mechanism of glucose 6-phosphate dehydrogenases: assignment and 1H NMR spectroscopy pH titration of the catalytic histidine residue in the 109 kDa Leuconostoc mesenteroides enzyme. Biochemistry. 2002 Jun 4;41(22):6939-45. doi: 10.1021/bi0255219. PMID:12033926 doi:http://dx.doi.org/10.1021/bi0255219
- ↑ Vought V, Ciccone T, Davino MH, Fairbairn L, Lin Y, Cosgrove MS, Adams MJ, Levy HR. Delineation of the roles of amino acids involved in the catalytic functions of Leuconostoc mesenteroides glucose 6-phosphate dehydrogenase. Biochemistry. 2000 Dec 12;39(49):15012-21. PMID:11106479
- ↑ Rowland P, Basak AK, Gover S, Levy HR, Adams MJ. The three-dimensional structure of glucose 6-phosphate dehydrogenase from Leuconostoc mesenteroides refined at 2.0 A resolution. Structure. 1994 Nov 15;2(11):1073-87. PMID:7881907
Proteopedia page contributors and editors
DONATI Quentin, LOGEREAU Lucie, PROST Loana

