Sandbox Reserved 1508

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At the active site of the enzyme, a pyrodoxal-phosphate cofactor is covalently linked to the Lysine 51 <scene name='80/802682/Lys_51/1'>Lys 51</scene>, an invariant residue. A parallel β-sheet associated with three α-helices are part of the N terminal domain (residues 46 to 153). Two of those α-helices are part of the dimer interface and the third one is partly forming the entrance of the active site as on the other side of the β-sheet. On the other hand the C-terminal domain is made of 6-stranded mixed β-sheets surrounded by four α-helices (two on each sides) and of residues with a unique insertion of eight amino acids within them. (Ågren et al, 2008)
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At the active site of the enzyme, a pyrodoxal-phosphate cofactor is covalently linked to the Lysine 51 an invariant residue. A parallel β-sheet associated with three α-helices are part of the N terminal domain (residues 46 to 153). Two of those α-helices are part of the dimer interface and the third one is partly forming the entrance of the active site as on the other side of the β-sheet. On the other hand the C-terminal domain is made of 6-stranded mixed β-sheets surrounded by four α-helices (two on each sides) and of residues with a unique insertion of eight amino acids within them. (Ågren et al, 2008)
All those compounds allow the enzyme to have several conformations : an open one, a closed one (when a substrate is bound to the enzyme) and an inhibited form (when there is a chlorite bound at an allosteric site). (Ågren et al, 2008)
All those compounds allow the enzyme to have several conformations : an open one, a closed one (when a substrate is bound to the enzyme) and an inhibited form (when there is a chlorite bound at an allosteric site). (Ågren et al, 2008)

Revision as of 14:46, 11 January 2019

This Sandbox is Reserved from 06/12/2018, through 30/06/2019 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1480 through Sandbox Reserved 1543.
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==The protein 5C04

Headline text

==

Caption for this structure

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References

Ågren, Daniel, Robert Schnell, Wulf Oehlmann, Mahavir Singh, et Gunter Schneider. « Cysteine Synthase (CysM) of Mycobacterium Tuberculosis Is an O -Phosphoserine Sulfhydrylase: EVIDENCE FOR AN ALTERNATIVE CYSTEINE BIOSYNTHESIS PATHWAY IN MYCOBACTERIA ». Journal of Biological Chemistry 283, nᵒ 46 (14 novembre 2008): 31567‑74. https://doi.org/10.1074/jbc.M804877200.

Burns, Kristin E., Sabine Baumgart, Pieter C. Dorrestein, Huili Zhai, Fred W. McLafferty, et Tadhg P. Begley. « Reconstitution of a New Cysteine Biosynthetic Pathway in Mycobacterium t Uberculosis ». Journal of the American Chemical Society 127, nᵒ 33 (août 2005): 11602‑3. https://doi.org/10.1021/ja053476x.

Pedre, Brandán, Laura A. H. van Bergen, Anna Palló, Leonardo A. Rosado, Veronica Tamu Dufe, Inge Van Molle, Khadija Wahni, et al. « The Active Site Architecture in Peroxiredoxins: A Case Study on Mycobacterium Tuberculosis AhpE ». Chemical Communications 52, nᵒ 67 (2016): 10293‑96. https://doi.org/10.1039/C6CC02645A.

Rhee, Sue Goo, et Hyun Ae Woo. « Multiple Functions of Peroxiredoxins: Peroxidases, Sensors and Regulators of the Intracellular Messenger H 2 O 2 , and Protein Chaperones ». Antioxidants & Redox Signaling 15, nᵒ 3 (août 2011): 781‑94. https://doi.org/10.1089/ars.2010.3393.

Zeida, Ari, Aníbal M. Reyes, Pablo Lichtig, Martín Hugo, Diego S. Vazquez, Javier Santos, F. Luis González Flecha, Rafael Radi, Dario A. Estrin, et Madia Trujillo. « Molecular Basis of Hydroperoxide Specificity in Peroxiredoxins: The Case of AhpE from Mycobacterium Tuberculosis ». Biochemistry 54, nᵒ 49 (15 décembre 2015): 7237‑47. https://doi.org/10.1021/acs.biochem.5b00758.

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