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PDBsum entry 3zfx

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protein ligands Protein-protein interface(s) links
Transferase PDB id
3zfx

 

 

 

 

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Contents
Protein chains
267 a.a.
254 a.a.
Ligands
SO4
Waters ×134
PDB id:
3zfx
Name: Transferase
Title: Crystal structure of ephb1
Structure: Ephrin type-b receptor 1. Chain: a, b, c, d, e, f, g, h, i. Fragment: kinase domain. Synonym: 2.7.10.1, elk, eph tyrosine kinase 2, eph-like kinase 6, ek6, hek6, neuronally-expressed eph-related tyrosine kinase, net, tyrosine-protein kinase receptor eph-2, ephb1. Engineered: yes
Source: Homo sapiens. Human. Organism_taxid: 9606. Expressed in: escherichia coli. Expression_system_taxid: 469008. Expression_system_variant: star.
Resolution:
2.50Å     R-factor:   0.190     R-free:   0.217
Authors: J.E.Debreczeni,R.Overman,C.Truman,M.Mcalister,T.K.Attwood
Key ref: R.C.Overman et al. (2014). Completing the structural family portrait of the human EphB tyrosine kinase domains. Protein Sci, 23, 627-638. PubMed id: 24677421 DOI: 10.1002/pro.2445
Date:
12-Dec-12     Release date:   08-Jan-14    
PROCHECK
Go to PROCHECK summary
 Headers
 References

Protein chains
Pfam   ArchSchema ?
P54762  (EPHB1_HUMAN) -  Ephrin type-B receptor 1 from Homo sapiens
Seq:
Struc:
 
Seq:
Struc:
984 a.a.
267 a.a.
Protein chains
Pfam   ArchSchema ?
P54762  (EPHB1_HUMAN) -  Ephrin type-B receptor 1 from Homo sapiens
Seq:
Struc:
 
Seq:
Struc:
984 a.a.
254 a.a.
Key:    PfamA domain  Secondary structure  CATH domain

 Enzyme reactions 
   Enzyme class: Chains A, B, C, D, E, F, G, H, I: E.C.2.7.10.1  - receptor protein-tyrosine kinase.
[IntEnz]   [ExPASy]   [KEGG]   [BRENDA]
      Reaction: L-tyrosyl-[protein] + ATP = O-phospho-L-tyrosyl-[protein] + ADP + H+
L-tyrosyl-[protein]
+ ATP
= O-phospho-L-tyrosyl-[protein]
+ ADP
+ H(+)
Molecule diagrams generated from .mol files obtained from the KEGG ftp site

 

 
    Added reference    
 
 
DOI no: 10.1002/pro.2445 Protein Sci 23:627-638 (2014)
PubMed id: 24677421  
 
 
Completing the structural family portrait of the human EphB tyrosine kinase domains.
R.C.Overman, J.E.Debreczeni, C.M.Truman, M.S.McAlister, T.K.Attwood.
 
  ABSTRACT  
 
The EphB receptors have key roles in cell morphology, adhesion, migration and invasion, and their aberrant action has been linked with the development and progression of many different tumor types. Their conflicting expression patterns in cancer tissues, combined with their high sequence and structural identity, present interesting challenges to those seeking to develop selective therapeutic molecules targeting this large receptor family. Here, we present the first structure of the EphB1 tyrosine kinase domain determined by X-ray crystallography to 2.5Å. Our comparative crystalisation analysis of the human EphB family kinases has also yielded new crystal forms of the human EphB2 and EphB4 catalytic domains. Unable to crystallize the wild-type EphB3 kinase domain, we used rational engineering (based on our new structures of EphB1, EphB2, and EphB4) to identify a single point mutation which facilitated its crystallization and structure determination to 2.2 Å. This mutation also improved the soluble recombinant yield of this kinase within Escherichia coli, and increased both its intrinsic stability and catalytic turnover, without affecting its ligand-binding profile. The partial ordering of the activation loop in the EphB3 structure alludes to a potential cis-phosphorylation mechanism for the EphB kinases. With the kinase domain structures of all four catalytically competent human EphB receptors now determined, a picture begins to emerge of possible opportunities to produce EphB isozyme-selective kinase inhibitors for mechanistic studies and therapeutic applications.
 

 

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