Aconitase: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
Michal Harel (talk | contribs)
No edit summary
 
(20 intermediate revisions by 4 users not shown)
Line 1: Line 1:
<StructureSection load='' size='450' side='right' scene='Aconitase/Cv/1' caption='Bovine aconitase showing FeS4 cluster complex with sulfate (PDB code [[1amj]])'>
<StructureSection load='' size='350' side='right' scene='Aconitase/Cv/1' caption='Bovine aconitase showing FeS4 cluster complex with sulfate (PDB code [[1amj]])'>


[[Aconitase]] (ACO, EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=4.2.1.3 4.2.1.3]) is an enzymatic domain that confers the ability to catalyse the equilibrium
==Function==
 
[[Aconitase]] (ACO, EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=4.2.1.3 4.2.1.3]) is an enzymatic domain that confers the ability to catalyse the equilibrium
:citrate = aconitate + H<sub>2</sub>O = L-isocitrate
:citrate = aconitate + H<sub>2</sub>O = L-isocitrate
This reaction is part of the citrate (TCA-, Krebs-)cycle.
This reaction is part of the citrate (TCA-, Krebs-)cycle.
The image at at the right corresponds to one representative Aconitase, ''i.e.'' the crystal structure of Bovine Aconitase ([[1amj]]).
In most organisms, there is a cytosolic enzyme with an ACO domain (cAc), and in eukaryotes, a second copy of it was introduced with mitochondria (mAc). Plants developed even more copies in mitochondria.
In most organisms, there is a cytosolic enzyme with an ACO domain (cAc), and in eukaryotes, a second copy of it was introduced with mitochondria (mAc). Plants developed even more copies in mitochondria.
Aconitase contains a Fe4S4 cluster which converts to Fe3S4 when the enzyme is inactive.  In humans, two types of ACO are expressed: the soluble '''ACO1''' and the mitochondrial '''ACO2'''.
Aconitase contains a Fe4S4 cluster which converts to Fe3S4 when the enzyme is inactive.  In humans, two types of ACO are expressed: the soluble '''ACO1''' and the mitochondrial '''ACO2'''.  Two types of '''ACO X''' were characterized as '''mevalonate 5-phosphate dehydratase''' and '''cis-3-hydroxy-L-proline dehydrates'''.
Aconitase from pig (PDB [[7acn]]) is a single polypeptide (M<sub>r</sub> 83kD) that catalyzes the reversible isomerization of citrate and isocitrate.<ref name="Zheng">PMID 1313811</ref> It is the second enzyme in the Citric acid cycle, which is a series of enzyme-catalysed chemical reactions that is crucial to aerobic cellular respiration and the production of ATP.  
Aconitase from pig (PDB [[7acn]]) is a single polypeptide (M<sub>r</sub> 83kD) that catalyzes the reversible isomerization of citrate and isocitrate.<ref name="Zheng">PMID 1313811</ref> It is the second enzyme in the Citric acid cycle, which is a series of enzyme-catalysed chemical reactions that is crucial to aerobic cellular respiration and the production of ATP. See also:<br />
 
*[[Citric Acid Cycle]]
*[[Krebs cycle step 2]]
*[[Glyoxylate cycle]]


==Structure==
==Structure==
Line 16: Line 21:


== Catalytic mechanism of mitochondrial ACO ==
== Catalytic mechanism of mitochondrial ACO ==
Both mAc and cAc are quite similar in their ACO function. Studies, however, concentrated on <scene name='Aconitase/7acn-sf4/1'>the mitochondrial ACO</scene>. ACO is an excellent system for understanding the role of iron-sulfur-clusters in catalysis. The <scene name='Aconitase/7acn-sf4/2'>(4Fe-4S) cofactor is held in place</scene> by three sulfur atoms belonging to the cysteins-385, -448, and -451 <scene name='Aconitase/7acn-morph/3'>which are bound to three of the four</scene> cluster iron atoms. On activation of the enzyme, <scene name='Aconitase/7acn-morph/4'>a fourth iron atom is included in the cluster</scene> together with a water molecule.This Fe4 is free to bind one, two, or three partners, in this reaction always oxygen atoms belonging to other molecules.<ref>PMID:8151704</ref>
Both mAc and cAc are quite similar in their ACO function. Studies, however, concentrated on <scene name='Aconitase/7acn-sf4/1'>the mitochondrial ACO</scene>. ACO is an excellent system for understanding the role of iron-sulfur-clusters in catalysis. The <scene name='Aconitase/7acn-sf4/2'>(4Fe-4S) cofactor is held in place</scene> by three sulfur atoms belonging to the cysteins-385, -448, and -451 <scene name='33/338089/7acn-morph/5'>which are bound to three of the four</scene> cluster iron atoms. On activation of the enzyme, <scene name='33/338089/7acn-morph/8'>a fourth iron atom is included in the cluster</scene> together with a water molecule.This Fe4 is free to bind one, two, or three partners, in this reaction always oxygen atoms belonging to other molecules.<ref>PMID:8151704</ref>
<!--It is clear that, in order to synthesize L-isocitrate, stereoselective catalysis must occur.-->
<!--It is clear that, in order to synthesize L-isocitrate, stereoselective catalysis must occur.-->
Substrate-free aconitase contains a [4Fe-4S]<sup>2+</sup> cluster with hydroxyl bound to one of the Fe. Upon binding of substrate the bound hydroxyl is protonated. A hydrogen bond from <scene name='Anthony_Noles_Sandbox/His101/3'>His101</scene> to the isocitrate hydroxyl is donated to form water. Alternatively, the proton could be donated by <scene name='Anthony_Noles_Sandbox/His167/3'>His167</scene> as this histidine is hydrogen bonded to a H<sub>2</sub>O molecule. His167 is also hydrogen bonded to the bound H<sub>2</sub>O in the [4Fe-4S] cluster. Both <scene name='Anthony_Noles_Sandbox/His_101_and_167/4'>His101 and His167</scene> are paired with carboxylates (<scene name='Anthony_Noles_Sandbox/Asp100_and_glu262/3'>Asp100 and Glu262</scene>, respectively) and are likely to be protonated. The conformational change associated with substrate binding reorients the cluster. <ref name="Beinert" />  The residue which removes a proton from citrate or isocitrate is <scene name='Anthony_Noles_Sandbox/Ser642/4'>Ser642</scene>. <ref name="Beinert" /> This causes the cis-Aconitate intermediate (seen below), which consists of a double bond, which is a direct result of the deprotonation. Then, there is a rehydration of the double bond of cis-aconitate to form isocitrate (if the original substrate was citrate). To better understand this, consider this process as stages, seen below.  
Substrate-free aconitase contains a [4Fe-4S]<sup>2+</sup> cluster with hydroxyl bound to one of the Fe. Upon binding of substrate the bound hydroxyl is protonated. A hydrogen bond from <scene name='Anthony_Noles_Sandbox/His101/3'>His101</scene> to the isocitrate hydroxyl is donated to form water. Alternatively, the proton could be donated by <scene name='Anthony_Noles_Sandbox/His167/3'>His167</scene> as this histidine is hydrogen bonded to a H<sub>2</sub>O molecule. His167 is also hydrogen bonded to the bound H<sub>2</sub>O in the [4Fe-4S] cluster. Both <scene name='Anthony_Noles_Sandbox/His_101_and_167/4'>His101 and His167</scene> are paired with carboxylates (<scene name='Anthony_Noles_Sandbox/Asp100_and_glu262/3'>Asp100 and Glu262</scene>, respectively) and are likely to be protonated. The conformational change associated with substrate binding reorients the cluster. <ref name="Beinert" />  The residue which removes a proton from citrate or isocitrate is <scene name='Anthony_Noles_Sandbox/Ser642/4'>Ser642</scene>. <ref name="Beinert" /> This causes the cis-Aconitate intermediate (seen below), which consists of a double bond, which is a direct result of the deprotonation. Then, there is a rehydration of the double bond of cis-aconitate to form isocitrate (if the original substrate was citrate). To better understand this, consider this process as stages, seen below.  
Line 39: Line 44:
{{Clear}}
{{Clear}}
== Cytosolic aconitase and its other function ==
== Cytosolic aconitase and its other function ==
A specialty of cAc is that in mammals it has developed a <scene name='Aconitase/2ipy-total/2'>second function</scene> as inhibitor of <scene name='Aconitase/2ipy-rna/1'>those mRNA</scene> that carry an <scene name='Aconitase/2ipy-rna-ire/1'>iron-responsive element (IRE)</scene>. Therefore, the cytosolic cAc is named IREBP for IRE-binding protein when this function is talked about. Only one of the two functions is active, depending on whether <scene name='Aconitase/2b3x-cluster/1'>the (4Fe-4S) cofactor</scene> is present in the molecule: it's essential for <scene name='Aconitase/2b3x-total/1'>the ACO function</scene>. You can see, by <scene name='Aconitase/Morph/2'>looking at the morph</scene>, how much the enzyme structure differs between those two functions.
A specialty of cAc is that in mammals it has developed a <scene name='33/338089/Cv/2'>second function</scene> as inhibitor of <scene name='33/338089/Cv/3'>those mRNA</scene> that carry an <scene name='33/338089/Cv/4'>iron-responsive element (IRE)</scene>. Therefore, the cytosolic cAc is named IREBP for IRE-binding protein when this function is talked about. Only one of the two functions is active, depending on whether <scene name='Aconitase/2b3x-cluster/1'>the (4Fe-4S) cofactor</scene> is present in the molecule: it's essential for <scene name='Aconitase/2b3x-total/1'>the ACO function</scene>. You can see, by <scene name='Aconitase/Morph/2'>looking at the morph</scene>, how much the enzyme structure differs between those two functions.


Along with serving as a catalyst, aconitase is a member of the iron regulatory protien-1 (IRP-1) family. These enzymes have been found to play a role in regulatory RNA-binding proteins. This suggests a novel role for Fe-S clusters as post-translational regulatory switches.<ref name="Frishman" />
Along with serving as a catalyst, aconitase is a member of the iron regulatory protien-1 (IRP-1) family. These enzymes have been found to play a role in regulatory RNA-binding proteins. This suggests a novel role for Fe-S clusters as post-translational regulatory switches.<ref name="Frishman" />
</StructureSection>


== 3D structures of Aconitase==
== 3D structures of Aconitase==
Updated on {{REVISIONDAY2}}-{{MONTHNAME|{{REVISIONMONTH}}}}-{{REVISIONYEAR}}
[[Aconitase 3D structures]]
{{#tree:id=OrganizedByTopic|openlevels=0|


* ACO
</StructureSection>
 
__NOTOC__
**[[1b0k]] – pACO (mutant) – pig<br />
**[[5acn]] – pACO+Fe3S4<br />
**[[6acn]] - pACO+Fe4S4<br />
**[[1amj]], [[1nit]] – cACO - cow<br />
 
*ACO+citrate
 
**[[1c96]] - pACO (mutant)+citrate<br />
**[[1b0m]] - pACO (mutant)+fluorocitrate<br />
 
*ACO+aconitate
 
**[[1fgh]] – cACO+4-hydroxy-aconitate <br />
**[[1aco]] – cACO+transaconitate<br />
**[[1nis]] - cACO+transaconitate+nitrocitrate<br />
 
*ACO+isocitrate
 
**[[7acn]] - pACO +isocitrate<br />
**[[1c97]], [[1b0j]] - pACO (mutant)+isocitrate<br />
**[[1ami]], [[8acn]] – cACO+isocitrate<br />
 
* ACO1
 
**[2b3x]], [[2b3y]] – hACO1 – human<br />
**[[2ipy]], [[3snp]] – rACO1 (mutant)+ferritin H IRE-RNA – rabbit<br />
**[[3sn2]] - rACO1 (mutant)+ transferrin receptor iron regulatory RNA<br />
 
* ACO2


**[[1l5j]] – ACO2 – ''Escherichia coli''<br />
}}
<!--== Available structures ==
In the PDB, nearly all deposited structures are from mammals, [[1l5j]] is from ''E.coli''. Also, only [[2ipy]] shows the IREBP function of cAc---it's also the only from rabbit. There are only two other cAc structures, with and without citrate, also the only from human. All other structures are either cow or pig, and a mutant from pig; all three proteins with several different ligands and inhibitors.


*[[1aco]] - mAc (''Bos taurus'') with ''trans''-aconitate (inhibitor)
*[[1ami]] - mAc (''Bos taurus'') with methylisocitrate
*[[1amj]] - mAc (''Bos taurus'') with sulfate and hydroxide
*[[1b0j]] - S642 mutant of mAc (''Sus scrofa'') with isocitrate (substrate)
*[[1b0k]] - S642 mutant of mAc (''Sus scrofa'') with fluorocitrate (inhibitor)
*[[1b0m]] - S642 mutant of mAc (''Sus scrofa'') with fluorocitrate (inhibitor) and oxygen
*[[1c96]] - S642 mutant of mAc (''Sus scrofa'') with citrate
*[[1c97]] - S642 mutant of mAc (''Sus scrofa'') with isocitrate and oxygen
*[[1fgh]] - mAc (''Bos taurus'') with 4-hydroxy-''trans''-aconitate (inhibitor)
*[[1l5j]] - aconitase B (''E. coli'') with Fe3S4 and aconitate
*[[1nis]] - mAc (''Bos taurus'') with nitrocitrate (inhibitor)
*[[1nit]] - mAc (''Bos taurus'') with sulfate
*[[2b3x]] - cAc (human) as aconitase with Fe4S4
*[[2b3y]] - cAc (human) as aconitase with Fe4S4 and citrate
*[[2ipy]] - cAc (''Oryctolagus cuniculus'') as IRP1 with ferritin RNA
*[[5acn]] - mAc (''Sus scrofa'') with Fe3S4 (missing a Fe)
*[[6acn]] - mAc (''Sus scrofa'') with tricarballylic acid
*[[7acn]] - mAc (''Sus scrofa'') with isocitrate
*[[8acn]] - mAc (''Sus scrofa'') with nitroisocitrate
-->
== Literature ==
== Literature ==
* M. Claire Kennedy and Helmut Beinert: ''IX.4. Aconitase.'' in Ivano Bertini, Harry B. Gray, Edward I. Stiefel, Joan Selverstone Valentine (eds.): ''Biological Inorganic Chemistry: Structure and Reactivity.''  University Science Books, Herndon 2006. ISBN 1891389432 pp.209--
* M. Claire Kennedy and Helmut Beinert: ''IX.4. Aconitase.'' in Ivano Bertini, Harry B. Gray, Edward I. Stiefel, Joan Selverstone Valentine (eds.): ''Biological Inorganic Chemistry: Structure and Reactivity.''  University Science Books, Herndon 2006. ISBN 1891389432 pp.209--

Latest revision as of 09:00, 11 January 2023

Bovine aconitase showing FeS4 cluster complex with sulfate (PDB code 1amj)

Drag the structure with the mouse to rotate


Literature

  • M. Claire Kennedy and Helmut Beinert: IX.4. Aconitase. in Ivano Bertini, Harry B. Gray, Edward I. Stiefel, Joan Selverstone Valentine (eds.): Biological Inorganic Chemistry: Structure and Reactivity. University Science Books, Herndon 2006. ISBN 1891389432 pp.209--

Additional Resources

For additional information, see: 7acn; Citric Acid Cycle.

References


External links