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= Structure<ref name="zheng">doi:10.1038/nature09088</ref> =
= Structure<ref name="zheng">doi:10.1038/nature09088</ref> =
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The AceK structure contains two functional domains: a Kinase domain (KD) where the kinase, phosphatase and ATPase reactions occur, and a regulatory (RD) that helps form allosteric binding pockets involved in regulating the catalytic domain’s function. The <scene name='78/783138/Amp_binding/7'>AMP molecule</scene> is situated in a pocket at the interface between the KD and RD and acts as a bridge.
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The AceK structure contains two functional domains: a Kinase domain (KD) where the kinase, phosphatase and ATPase reactions occur, and a regulatory (RD) that helps form allosteric binding pockets involved in regulating the catalytic domain’s function. The <scene name='78/783138/Amp_binding/8'>AMP molecule</scene>, is situated in a pocket at the interface between the KD and RD and acts as a bridge.
The <scene name='78/783138/Regulation_domain/4'>regulatory domain</scene>, which comprises the amino-terminal half of the AceK sequence, is mainly composed of a-helices and hairpin structures.This domain represents a unique protein fold with no structural homologues. The regulatory domain is linked to the kinase domain by a 27-residue-long a-helix. The <scene name='78/783138/Kinase_domain/13'>kinase domain</scene>, which makes up the carboxy-terminal half of AceK, has a classic bi-lobe protein kinase fold with the <scene name='78/783138/Atp_binding_site/1'>ATP-binding cleft</scene> located at the interface between the two lobes. The N-terminal lobe consists mainly of a twisted, five-stranded, antiparallel b-sheet and two a-helices. The larger C-terminal lobe is predominantly a-helical with some stretches of antiparallel b-strands. The ATP molecule is under the cover of the five-stranded b-sheet and is shielded by <scene name='78/783138/Loopb/3'>loop-b3aC</scene>. Loop-b3aC shifts upwards or downwards to controls access to the ATP-binding site. The <scene name='78/783138/Srl/1'>substrate recognition loop</scene> (SRL) stretches out of the C-terminal lobe. This loop, together with loop-b3aC, forms a large cleft that is the <scene name='78/783138/Icdh_binding_cleft/1'>IDH binding site</scene>.
The <scene name='78/783138/Regulation_domain/4'>regulatory domain</scene>, which comprises the amino-terminal half of the AceK sequence, is mainly composed of a-helices and hairpin structures.This domain represents a unique protein fold with no structural homologues. The regulatory domain is linked to the kinase domain by a 27-residue-long a-helix. The <scene name='78/783138/Kinase_domain/13'>kinase domain</scene>, which makes up the carboxy-terminal half of AceK, has a classic bi-lobe protein kinase fold with the <scene name='78/783138/Atp_binding_site/1'>ATP-binding cleft</scene> located at the interface between the two lobes. The N-terminal lobe consists mainly of a twisted, five-stranded, antiparallel b-sheet and two a-helices. The larger C-terminal lobe is predominantly a-helical with some stretches of antiparallel b-strands. The ATP molecule is under the cover of the five-stranded b-sheet and is shielded by <scene name='78/783138/Loopb/3'>loop-b3aC</scene>. Loop-b3aC shifts upwards or downwards to controls access to the ATP-binding site. The <scene name='78/783138/Srl/1'>substrate recognition loop</scene> (SRL) stretches out of the C-terminal lobe. This loop, together with loop-b3aC, forms a large cleft that is the <scene name='78/783138/Icdh_binding_cleft/1'>IDH binding site</scene>.

Revision as of 21:22, 19 March 2018

Isocitrate dehydrogenase kinase/phosphatase

The AMP-bound AceK structure

Drag the structure with the mouse to rotate

3D structures of Isocitrate dehydrogenase kinase/phosphatase

  • 3lc6, 3eps – EcIDHK/P+ADP+AMP+Mg - Escherichia coli
  • 3lcb – EcIDHK/P+EcIDH+ADP+AMP+Mg
  • 4p69 - EcIDHK/P (mutant) + IDH

References

  1. 1.0 1.1 Laporte DC, Stueland CS, Ikeda TP. Isocitrate dehydrogenase kinase/phosphatase. Biochimie. 1989 Sep-Oct;71(9-10):1051-7. PMID:2557093
  2. 2.0 2.1 Cozzone AJ. Regulation of acetate metabolism by protein phosphorylation in enteric bacteria. Annu Rev Microbiol. 1998;52:127-64. doi: 10.1146/annurev.micro.52.1.127. PMID:9891796 doi:http://dx.doi.org/10.1146/annurev.micro.52.1.127
  3. 3.0 3.1 3.2 3.3 Zheng J, Jia Z. Structure of the bifunctional isocitrate dehydrogenase kinase/phosphatase. Nature. 2010 Jun 17;465(7300):961-5. Epub 2010 May 26. PMID:20505668 doi:10.1038/nature09088
  4. 4.0 4.1 4.2 Zheng J, Yates SP, Jia Z. Structural and mechanistic insights into the bifunctional enzyme isocitrate dehydrogenase kinase/phosphatase AceK. Philos Trans R Soc Lond B Biol Sci. 2012 Sep 19;367(1602):2656-68. doi:, 10.1098/rstb.2011.0426. PMID:22889914 doi:http://dx.doi.org/10.1098/rstb.2011.0426
  5. Li Q, Zheng J, Tan H, Li X, Chen G, Jia Z. Unique kinase catalytic mechanism of AceK with a single magnesium ion. PLoS One. 2013 Aug 19;8(8):e72048. doi: 10.1371/journal.pone.0072048. eCollection, 2013. PMID:23977203 doi:http://dx.doi.org/10.1371/journal.pone.0072048
  6. 6.0 6.1 6.2 Wang S, Shen Q, Chen G, Zheng J, Tan H, Jia Z. The phosphatase mechanism of bifunctional kinase/phosphatase AceK. Chem Commun (Camb). 2014 Nov 25;50(91):14117-20. doi: 10.1039/c4cc05375c. PMID:25272278 doi:http://dx.doi.org/10.1039/c4cc05375c
  7. Miller SP, Chen R, Karschnia EJ, Romfo C, Dean A, LaPorte DC. Locations of the regulatory sites for isocitrate dehydrogenase kinase/phosphatase. J Biol Chem. 2000 Jan 14;275(2):833-9. PMID:10625615

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