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New page: == Histidyl-tRNA Synthetase == '''Histidyl tRNA Synthetase''' (HisRS) is a 94kD <scene name='User:Jamie_Abbott/Sandbox2/Hisrsdimer/2'>homodimer</scene> that belongs to the class II of a...
 
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== Histidyl-tRNA Synthetase ==
== Histidyl-tRNA Synthetase ==
 
<StructureSection load='1KMM' size='500' side='right' caption='Structure of ''Escherichia coli'' Histidyl-tRNA Synthetase' scene=''> 
 
'''Histidyl tRNA Synthetase''' (HisRS) is a 94kD <scene name='User:Jamie_Abbott/Sandbox2/Hisrsdimer/2'>homodimer</scene> that belongs to the class II of aminoacyl-tRNA synthetases (aaRS).  [http://www.pdb.org/pdb/101/motm.do?momID=16 Aminoacyl-tRNA synthetases] play a key role in protein synthesis and are classified as ligases.  Aminoacyl tRNA synthetases use high energy ATP to attach a specific amino acid to its cognate tRNA<ref name="Eriani" />. This family of enzymes have been partitioned into two classes, containing 10 members, on the basis of sequence comparisons<ref name="Eriani">PMID: 2203971</ref>. Class I and class II enzymes differ mainly with respect to the topology of the catalytic fold and site of esterification on cognate tRNA<ref name="Eriani" />. Class I aaRS enzymes contain a conserved [http://en.wikipedia.org/wiki/Rossmann_fold Rossmann fold] catalytic domain and often monomeric.  Furthermore, class I enzymes attach the activated amino acid to the 2'OH of the tRNA molecule during catalysis, which then migrates to the 3'OH.  Class II enzymes have a <scene name='User:Jamie_Abbott/Sandbox2/Catalytic_domain/1'>catalytic domain</scene> composed of anti-parallel <scene name='User:Jamie_Abbott/Sandbox2/Catalytic_domainab/1'>β-sheets and α-helices</scene> (residues 1-325).  Additionally, class II enzymes can be further divided into three subgroups: class IIa, distinguished by an N-terminal catalytic domain and C-terminal accessory domain (later shown to be the <scene name='User:Jamie_Abbott/Sandbox2/Anticodon_binding_domain/1'>anticodon binding domain</scene>); class IIb, whose anticodon binding domain is located in the N-terminal region; and class IIc, encompassing the tetrameric PheRS and GlyRS class II synthetases <ref name="Cusack91">PMID: 1852601</ref>.  
'''Histidyl tRNA Synthetase''' (HisRS) is a 94kD <scene name='User:Jamie_Abbott/Sandbox2/Hisrsdimer/2'>homodimer</scene> that belongs to the class II of aminoacyl-tRNA synthetases (aaRS).  [http://www.pdb.org/pdb/101/motm.do?momID=16 Aminoacyl-tRNA synthetases] play a key role in protein synthesis and are classified as ligases.  Aminoacyl tRNA synthetases use high energy ATP to attach a specific amino acid to its cognate tRNA<ref name="Eriani" />. This family of enzymes have been partitioned into two classes, containing 10 members, on the basis of sequence comparisons<ref name="Eriani">PMID: 2203971</ref>. Class I and class II enzymes differ mainly with respect to the topology of the catalytic fold and site of esterification on cognate tRNA<ref name="Eriani" />. Class I aaRS enzymes contain a conserved [http://en.wikipedia.org/wiki/Rossmann_fold Rossmann fold] catalytic domain and often monomeric.  Furthermore, class I enzymes attach the activated amino acid to the 2'OH of the tRNA molecule during catalysis, which then migrates to the 3'OH.  Class II enzymes have a <scene name='User:Jamie_Abbott/Sandbox2/Catalytic_domain/1'>catalytic domain</scene> composed of anti-parallel <scene name='User:Jamie_Abbott/Sandbox2/Catalytic_domainab/1'>β-sheets and α-helices</scene> (residues 1-325).  Additionally, class II enzymes can be further divided into three subgroups: class IIa, distinguished by an N-terminal catalytic domain and C-terminal accessory domain (later shown to be the <scene name='User:Jamie_Abbott/Sandbox2/Anticodon_binding_domain/1'>anticodon binding domain</scene>); class IIb, whose anticodon binding domain is located in the N-terminal region; and class IIc, encompassing the tetrameric PheRS and GlyRS class II synthetases <ref name="Cusack91">PMID: 1852601</ref>.  




[http://www.brenda-enzymes.org/php/result_flat.php4?ecno=6.1.1.21 Histidyl-tRNA synthetases] catalyze the transfer of histidine to a histidinyl transfer RNA molecule (tRNAHis).  As HisRS is a class II aaRS enzyme it attaches the amino acid histidine to the 3’OH of the terminal ribose of tRNA<ref name="aaRSbk" />.  Histidine is often an important amino acid in the active site of other enzymes and is unique as it can behave as either an acid or a base.  The overall secondary structure of a HisRS monomer consist of 20% beta sheets and 37% helical character.  It is structurally classified by CATH as an α-β layered sandwich.  The CATH hierarchy of structural classification is based on: Class, Architecture, Topology, Homologous superfamily.  Each <scene name='User:Jamie_Abbott/Sandbox2/Hisrsdimer_to_monomer/2'>monomer</scene> of HisRS contains a N-terminal catalytic domain, C-terminal anticodon binding domain, a <scene name='User:Jamie_Abbott/Sandbox2/Motif_i/3'>Motif I</scene>, II, and III, an insertion domain, a HisA and HisB loop, as well as an insertion domain.  These structural elements are essential in assisting the two step mechanism carried out to aminoacylate tRNA<sup>His</sup> with high fidelity.
[http://www.brenda-enzymes.org/php/result_flat.php4?ecno=6.1.1.21 Histidyl-tRNA synthetases] catalyze the transfer of histidine to a histidinyl transfer RNA molecule (tRNAHis).  As HisRS is a class II aaRS enzyme it attaches the amino acid histidine to the 3’OH of the terminal ribose of tRNA<ref name="aaRSbk" />.  Histidine is often an important amino acid in the active site of other enzymes and is unique as it can behave as either an acid or a base.  The overall secondary structure of a HisRS monomer consist of 20% beta sheets and 37% helical character.  It is structurally classified by CATH as an α-β layered sandwich.  The CATH hierarchy of structural classification is based on: Class, Architecture, Topology, Homologous superfamily.  Each <scene name='User:Jamie_Abbott/Sandbox2/Hisrsdimer_to_monomer/2'>monomer</scene> of HisRS contains a N-terminal catalytic domain, C-terminal anticodon binding domain, a <scene name='User:Jamie_Abbott/Sandbox2/Motif_i/3'>Motif I</scene>, II, and III, an insertion domain, a HisA and HisB loop, as well as an insertion domain.  These structural elements are essential in assisting the two step mechanism carried out to aminoacylate tRNA<sup>His</sup> with high fidelity.


== Substrate Specificity ==
== Substrate Specificity ==
<StructureSection load='1KMM' size='500' side='right' caption='Structure of ''Escherichia coli'' Histidyl-tRNA Synthetase' scene=''>The first crystal structure solved for histidyl tRNA-synthetase was of E.coli.  To date structures of E.coli HisRS complexed with ATP, AMP, histidine, competitive inhibitor (histidinol),  histidyl-adenylate, and 5’-O-[(L-histidinylamino)sulfonyl] adenosine have been extensively explored.  Many residues involved in substrate specificity and binding were identified.  Not only have residues important for substrate binding been identified but also residues essential for catalysis.   
The first crystal structure solved for histidyl tRNA-synthetase was of E.coli.  To date structures of E.coli HisRS complexed with ATP, AMP, histidine, competitive inhibitor (histidinol),  histidyl-adenylate, and 5’-O-[(L-histidinylamino)sulfonyl] adenosine have been extensively explored.  Many residues involved in substrate specificity and binding were identified.  Not only have residues important for substrate binding been identified but also residues essential for catalysis.   




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'''A Role for Coordinated Metal Ions'''
'''A Role for Coordinated Metal Ions'''


Thus far, residues of HisRS have been described for the binding of substrates histidine and ATP.  However, HisRS also requires two magnesium ions to carry out catalysis.  Most importantly, the β and γ phosphates of ATP are neutralized by two coordinated magnesium ions that are positioned by water molecules and conserved Glu115.  Weak electron density, consistent with a bound Mg<sup>2+</sup> ion, was observed in an electron density map for the HisRS:histidinol:ATP complex <ref name="Arnez97" />.  This particular Mg<sup>2+</sup> ion coordinates the β and γ phosphates of ATP.  Arnez et al. further defined the locations of magnesium ions by taking a crystal of HisRS:histidinol:ATP complex and soaking it in manganese(II) chloride MnCl2.  These data showed that two Mn<sup>2+</sup> ions coordinate the β and γ phosphates of ATP.  Furthermore, interatomic distances between the Mn<sup>2+</sup> principal ion and the β phosphate oxygen is approximately 0.5 Å, which would be expected to contribute to catalysis by weakening the bond between the α and β phosphates of ATP.  In similar manganese soaking experiments with another classIIa aaRS, SerRS, the principal metal ion was shown to coordinate the α and β phosphates<ref name="belrhali">PMID: 7613865</ref>.  The functional role for the metal ion coordination between the α and β phosphates for SerRS is a metal-catalyzed mechanism for the adenylation reaction.  Interestingly, Arg259 in the HisRS:ATP complex resides in the position occupied by the metal catalyst Mg<sup>2+</sup>, in classIIa SerRS.  Arg259 and Arg113 serving in place of a Mg<sup>2+</sup> ion is unique to HisRS compared to other classII aaRS.  Other classII aaRS enzymes have conserved carboxylate groups to assist coordination of metal ions to carry out catalysis, while HisRS has in place residues Glu270 and Thr281 that have poor geometry for metal coordination but participate in the arginine salt bridge switch<ref name="Arnez97" />.[[Image:HisRShisolATP.jpg |thumb|left|upright=3.0|450px|'''Active Site Residues''']]</StructureSection>  
Thus far, residues of HisRS have been described for the binding of substrates histidine and ATP.  However, HisRS also requires two magnesium ions to carry out catalysis.  Most importantly, the β and γ phosphates of ATP are neutralized by two coordinated magnesium ions that are positioned by water molecules and conserved Glu115.  Weak electron density, consistent with a bound Mg<sup>2+</sup> ion, was observed in an electron density map for the HisRS:histidinol:ATP complex <ref name="Arnez97" />.  This particular Mg<sup>2+</sup> ion coordinates the β and γ phosphates of ATP.  Arnez et al. further defined the locations of magnesium ions by taking a crystal of HisRS:histidinol:ATP complex and soaking it in manganese(II) chloride MnCl2.  These data showed that two Mn<sup>2+</sup> ions coordinate the β and γ phosphates of ATP.  Furthermore, interatomic distances between the Mn<sup>2+</sup> principal ion and the β phosphate oxygen is approximately 0.5 Å, which would be expected to contribute to catalysis by weakening the bond between the α and β phosphates of ATP.  In similar manganese soaking experiments with another classIIa aaRS, SerRS, the principal metal ion was shown to coordinate the α and β phosphates<ref name="belrhali">PMID: 7613865</ref>.  The functional role for the metal ion coordination between the α and β phosphates for SerRS is a metal-catalyzed mechanism for the adenylation reaction.  Interestingly, Arg259 in the HisRS:ATP complex resides in the position occupied by the metal catalyst Mg<sup>2+</sup>, in classIIa SerRS.  Arg259 and Arg113 serving in place of a Mg<sup>2+</sup> ion is unique to HisRS compared to other classII aaRS.  Other classII aaRS enzymes have conserved carboxylate groups to assist coordination of metal ions to carry out catalysis, while HisRS has in place residues Glu270 and Thr281 that have poor geometry for metal coordination but participate in the arginine salt bridge switch<ref name="Arnez97" />.[[Image:HisRShisolATP.jpg |thumb|left|upright=3.0|450px|'''Active Site Residues''']]
 
</StructureSection>  


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<Structure load='1kmn' name='HisRS' size='500' frame='true' align='left' caption='Histidyl-tRNA Synthetase' < scene='User:Jamie_Abbott/Sandbox2/Hisrsabd_cd/1' />
<StructureSection load='1kmn' size='500' side='right' caption='Histidyl-tRNA Synthetase' scene='User:Jamie_Abbott/Sandbox2/Hisrsabd_cd/1'>
 
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=== Electrophilic Catalysis ===
=== Electrophilic Catalysis ===
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More recently a crystal structures for eukaryotic ''Trypanosomal brucei'' and ''Trypanosomal cruzi'' histidyl-tRNA synthetase was solved<ref>PMID: 20132829</ref>.    While both the human and trypanosomal HisRS sequences are part of the same eukaryotic branch on the HisRS phylogenetic tree<ref>PMID: 17182897</ref> there is less than 30% sequence identity shared between them.  Similarly, the sequence identity between trypanosoaml HisRS and bacterial HisRS is less than 30% <ref>PMID: 20132829</ref>.  Furthermore, many higher eukaryotes, more specifically mammals, have separate cytosolic and mitochondrial HisRS enzymes.  The human HisRS genes, which arose from inverted gene duplication<ref>PMID: 12056811</ref><ref>PMID: 7755634</ref>, HARS and HARS2 encode for the cytosolic and mitochondrial HisRS enzymes respectively.  The gene products of HARS and HARS2 share approximately 79% sequence identity.
More recently a crystal structures for eukaryotic ''Trypanosomal brucei'' and ''Trypanosomal cruzi'' histidyl-tRNA synthetase was solved<ref>PMID: 20132829</ref>.    While both the human and trypanosomal HisRS sequences are part of the same eukaryotic branch on the HisRS phylogenetic tree<ref>PMID: 17182897</ref> there is less than 30% sequence identity shared between them.  Similarly, the sequence identity between trypanosoaml HisRS and bacterial HisRS is less than 30% <ref>PMID: 20132829</ref>.  Furthermore, many higher eukaryotes, more specifically mammals, have separate cytosolic and mitochondrial HisRS enzymes.  The human HisRS genes, which arose from inverted gene duplication<ref>PMID: 12056811</ref><ref>PMID: 7755634</ref>, HARS and HARS2 encode for the cytosolic and mitochondrial HisRS enzymes respectively.  The gene products of HARS and HARS2 share approximately 79% sequence identity.
</StructureSection>
{|  
{|  
| [[Image:HisRSeukaryotic+prokaryotic.jpg|center|400px|'''Adenylation reaction catalyzed by HisRS.''']]  
| [[Image:HisRSeukaryotic+prokaryotic.jpg|center|400px|'''Adenylation reaction catalyzed by HisRS.''']]  

Revision as of 16:51, 9 June 2015

Histidyl-tRNA Synthetase

Structure of

Drag the structure with the mouse to rotate

Mechanism of the Adenylation Reaction

Adenylation reaction catalyzed by HisRS.
Adenylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.

Histidyl-tRNA Synthetase

Drag the structure with the mouse to rotate
Adenylation reaction catalyzed by HisRS.
Adenylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.
Adenylation reaction catalyzed by HisRS.
Adenylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.
Aminoacylation reaction catalyzed by HisRS.

3D Structures of Histidyl-tRNA Synthetase

Bacteria

1KMN

1KMM

1HTT

2EL9

Eukaryota

3LCO

3HRK

Archara

1WU7


References

Proteopedia Page Contributors and Editors (what is this?)

Joseph M. Steinberger